Wednesday, September 2, 2020

The Host Chapter 9: Discovered

I passed rapidly through the I-10 intersection as the sun fell behind me. I didn't see much other than the white and yellow lines on the asphalt, and the intermittent enormous green sign pointing me farther east. I was in a rush at this point. I didn't know precisely what I was in a rush for, however. To be out of this, I assumed. Out of agony, out of pity, out of hurting for lost and sad loves. Did that mean out of this body? I was unable to think about some other answer. I would in any case pose my inquiries of the Healer, however it felt as if the choice was made. Captain. Weakling. I tried the words in my mind, attempting to deal with them. In the event that I could discover a way, I would keep Melanie out of the Seeker's hands. It would be hard. No, it would be unimaginable. I would attempt. I guaranteed her this, yet she wasn't tuning in. She was all the while dreaming. Surrendering, I thought, since it was past the point of no return for offering up to help. I attempted to avoid the red ravine in her mind, however I was there, as well. Regardless of how enthusiastically I attempted to see the vehicles zooming close to me, the buses coasting in toward the port, the couple of, fine mists floating overhead, I was unable to pull totally liberated from her fantasies. I retained Jared's face from a thousand distinct points. I watched Jamie shoot up in an unexpected development spray, consistently excessively skinny. My arms hurt for them both-no, the inclination was more honed than a throb, edge edged and brutal. It was heinous. I needed to get out. I drove aimlessly along the thin two-path road. The desert was, on the off chance that anything, more dull and dead than previously. Compliment, increasingly boring. I would make it to Tucson some time before dinnertime. Supper. I hadn't eaten at this point today, and my stomach thundered as I understood that. The Seeker would be hanging tight for me there. My stomach moved at that point, hunger immediately supplanted with sickness. Consequently, my foot dialed down the gas. I checked the guide on the front seat. Before long I would arrive at a little refueling break at a spot called Picacho Peak. Possibly I would stop to eat something there. Put off observing the Seeker a couple of valuable minutes. As I suspected of this new name-Picacho Peak-there was a weird, smothered response from Melanie. I was unable to make it out. Had she been here previously? I looked for a memory, a sight or a smell that related, yet discovered nothing. Picacho Peak. Once more, there was that spike of intrigue that Melanie stifled. What did the words intend to her? She withdrew into faraway recollections, dodging me. This intrigued me. I drove somewhat quicker, thinking about whether seeing the spot would trigger something. A singular mountain top not enormous by typical principles, yet transcending over the low, unpleasant slopes nearer to me-was starting to come to fruition not too far off. It had a strange, unmistakable shape. Melanie watched it develop as we voyaged, imagining lack of concern to it. For what reason did she claim not to mind when she so clearly did? I was upset by her quality when I attempted to discover. I was unable to perceive any route around the old clear divider. It felt thicker than expected, however I'd thought it was nearly gone. I attempted to disregard her, not having any desire to consider that-that she was becoming more grounded. I watched the top rather, following its shape against the pale, hot sky. There was something recognizable about it. Something I was certain I perceived, even as I was sure that neither of us had been here previously. As though she was attempting to divert me, Melanie dove into a distinctive memory of Jared, getting me off guard. I shudder in my coat, stressing my eyes to see the quieted glare of the sun biting the dust behind the thick, bristly trees. I reveal to myself that it isn't as cold as I might suspect it may be. My body simply isn't utilized to this. The hands that are out of nowhere there on my shoulders don't frighten me, however I fear this new spot and I didn't hear his quiet methodology. Their weight is excessively recognizable. â€Å"You're anything but difficult to sneak up on.† Indeed, even now, there is a grin in his voice. â€Å"I saw you preceding you took the first step,† I state without turning. â€Å"I have eyes in the rear of my head.† Warm fingers stroke my face from my sanctuary to my jawline, hauling fire along my skin. â€Å"You seem as though a dryad covered up here in the trees,† he murmurs in my ear. â€Å"One of them. So delightful that you should be fictional.† â€Å"We should plant more trees around the cabin.† He laughs, and the sound makes my eyes close and my lips stretch into a smile. â€Å"Not necessary,† he says. â€Å"You consistently look that way.† â€Å"Says the keep going man on Earth including every person on Earth, just before their separation.† My grin blurs as I talk. Grins can't last today. He moans. His breath on my cheek is warm contrasted with the chill woods air. â€Å"Jamie may despise that implication.† â€Å"Jamie's as yet a kid. It would be ideal if you please keep him safe.† â€Å"I'll make you a deal,† Jared offers. â€Å"You guard yourself, and I'll give a valiant effort. Something else, no deal.† Only a joke, yet I can't mess with it. When we are separated, there are no assurances. â€Å"No matter what happens,† I demand. â€Å"Nothing will occur. Don't worry.† The words are about useless. A misuse of exertion. Be that as it may, his voice merits hearing, regardless of the message. â€Å"Okay.† He pulls me around to confront him, and I lean my head against his chest. I don't have the foggiest idea what to contrast his aroma with. It is his own, as one of a kind as the smell of juniper or the desert downpour. â€Å"You and I won't lose each other,† he guarantees. â€Å"I will consistently discover you again.† Being Jared, he can't be totally genuine for in excess of a heartbeat or two. â€Å"No matter how well you cover up. I'm relentless at stow away and-seek.† â€Å"Will you offer me to the tally of ten?† â€Å"Without peeking.† â€Å"You're on,† I mutter, attempting to camouflage the way that my throat is thick with tears. â€Å"Don't be apprehensive. You'll be fine. You're solid, you're quick, and you're smart.† He's attempting to persuade himself, as well. For what reason am I leaving him? It's such a since quite a while ago shot, that Sharon is as yet human. In any case, when I saw her face on the news, I was so certain. It was only an ordinary attack, one of a thousand. As normal when we felt confined enough, sufficiently safe, we had the TV on as we wiped out the storeroom and ice chest. Just to get the climate figure; there isn't a lot of amusement in the dead-exhausting everything-is-immaculate reports that go for news among the parasites. It was the hair that grabbed my attention the blaze of profound, practically pink red that I'd just at any point seen on one individual. I can at present consider the to be all over as she looked at the camera from the edge of one eye. The look that stated, I'm attempting to be imperceptible; don't see me. She strolled not exactly gradually enough, taking a stab at keeping an easygoing pace. Attempting frantically to mix in. No body snatcher would feel that need. What is Sharon doing strolling around human in an enormous city like Chicago? Are there others? Attempting to discover her doesn't appear to be a decision, truly. On the off chance that there is an opportunity there are more people out there, we need to find them. What's more, I need to go alone. Sharon will run from anybody yet me-well, she will run from me, as well, yet perhaps she will stop long enough for me to clarify. I am certain I know her mystery place. â€Å"And you?† I ask him in a thick voice. I don't know I can truly hold up under this approaching farewell. â€Å"Will you be safe?† â€Å"Neither paradise nor damnation can keep me separated from you, Melanie.† Without allowing me to regain some composure or wipe away the new tears, she tossed another at me. Jamie twists up under my arm-he doesn't fit the manner in which he used to. He needs to overlay in on himself, his long, bumbling appendages jabbing out in sharp edges. His arms are beginning to turn hard and strong, however at this time he's a youngster, shaking, cringing nearly. Jared is stacking the vehicle. Jamie would not show this dread in the event that he were here. Jamie needs to be valiant, to resemble Jared. â€Å"I'm scared,† he murmurs. I kiss his night-dim hair. Indeed, even here among the sharp, resinous trees, it smells like residue and sun. It feels like he is a piece of me, that to isolate us will tear the skin where we are joined. â€Å"You'll approve of Jared.† I need to sound fearless, regardless of whether I feel that way or not. â€Å"I realize that. I'm frightened for you. I'm frightened you won't return. Like Dad.† I recoil. At the point when Dad didn't return however his body did inevitably, attempting to lead the Seekers to us-it was the most awfulness and the most dread and the most agony I'd at any point felt. Imagine a scenario in which I do that to Jamie once more. â€Å"I'll return. I generally come back.† â€Å"I'm scared,† he says once more. I must be bold. â€Å"I guarantee there is no reason to worry. I'm returning. I guarantee. You realize I won't break a guarantee, Jamie. Not to you.† The shaking eases back. He trusts me. He confides in me. What's more, another: I can hear them on the floor beneath. They will discover me in minutes, or seconds. I scribble the words on a messy smidgen of newsprint. They are about indecipherable, yet on the off chance that he discovers them, he will comprehend: Not quick enough. Love you love Jamie. Try not to return home. In addition to the fact that I break their hearts, I take their asylum, as well. I picture our little gully home surrendered, as it must be perpetually now. Or then again if not surrendered, a burial chamber. I see my body driving the Seekers to it. My face grinning as we get them there†¦ â€Å"Enough,† I said so anyone can hear, flinching ceaselessly from the whiplash of torment. â€Å"Enough! You've come to your meaningful conclusion! I can't survive without them either now. Does that satisfy you? Since it doesn't leave me numerous decisions, isn't that right? Only one-to dispose of you. Do you need the Seeker inside you? Ugh!† I drew back from the idea as though I would be the one to house her. There is another decision, Melanie thought delicately. â€Å"Really?† I requested with overwhelming mockery. â€Å"Show

Saturday, August 22, 2020

The Scarlet Letter - Dimmesdale Analysis Essays - Film,

The Scarlet Letter - Dimmesdale Analysis Character Analysis : Dimmesdale Dimmesdale is one of the most interesting characters in The Scarlet Letter. I think this since he exhibits in this story that he is a quitter, and that he is solid, yet not gutsy. Dimmesdale demonstrates that he is a weakness individual commonly in The Scarlet Letter. He does this by not conceding his wrongdoing. Dimmesdale had numerous chances to concede his wrongdoing and move the blame out for the open. The main open door was when Dimmesdale was giving his discourse before a group of people. He attempted to come clean yet more lies just came out. The second open door that Dimmesdale needed to admit his wrongdoing was the point at which he was living with Chillingworth, and Chillingworth advised Dimmesdale to admit what was disturbing him and once more, Dimmesdale would not admit. At long last, the third time that Dimmesdale had an incredible chance to admit himself was toward the finish of the story during the celebration on the framework. Remaining there with Hester and Pearl, Dimmesdale was still an over the top weakling to concede his wrongdoing and discharge the anguish from his copying chest. Another manner by which Dimmesdale demonstrated that he was a weakness individual is by not defying Chillingworth. Chillingworth was plotting retribution on Dimmesdale for a very lengthy timespan. Indeed, Chillingworths life was given to seeking retribution on Dimmesdale. Being told by Hester, Dimmesdale still didn't stand up to Chillingworth. All through the book, Dimmesdale was an outrageous defeatist. Dimmesdales activities in this story where not fearless, yet solid. For around seven years, this man needed to live with outrageous blame. Dimmesdale had numerous motivations to feel remorseful. As a matter of first importance he let Hester be marked an adulteress, while he just looked on. Ultimately, Dimmesdale felt remorseful on the grounds that he had not raised Pearl as his own. Dimmesdale demonstrated this by being extraordinarily loving the couple of times that he was around Pearl. A case of Dimmesdale demonstrating friendship towards Pearl is while in the woods, Dimmesdale delicately kisses Pearl on the temple. Another activity of Dimmesdales that demonstrates that he is solid yet not gallant, is that Dimmesdale shows outrageous patience. Dimmesdale needed to chat with Hester out in the open. Dimmesdale didn't neglect one piece of information that he had been with Hester and that he was the dad of little Pearl. Additionally, in the book, it expresses that Dimmesdale indicated apprehensive reasonableness and a tremendous intensity of self control. While patience invigorates Dimmesdale, it is likewise his greatest defect. Generally speaking, Dimmesdale is a decent individual. He is simply inadequate with regards to the capacity to be sufficiently brave to concede his wrongdoing to the world. In spite of the fact that he was solid, it wound up being his death.

WRITING A THREE-PARAGRAPH ESSAY Essays - Writing,

Composing A THREE-PARAGRAPH ESSAY The Parts of the Essay and Its Benefits Similarly as with most expositions, the three-section paper has three sections: a presentation, a body, and an end. However with this kind of paper not at all like its five-passage partner every single one of these segments has just one section. The three-passage article, along these lines, may be perfect for youthful essayists or the individuals who are as of now acing the English language. Another advantage to the three-section exposition could be that it expects you to consolidate your supporting focuses into only one, which can be a decent exercise. In the event that you needed to pick just one point to persuade a peruser to concur with you, what might it be? In the wake of playing out some light prewriting, for example, conceptualizing or composing a framework, understudies can move directly into making the exposition. While this procedure is comparative no matter how you look at it for composing scholarly papers, the three-passage article is interesting in that the body will occupy less room in the completed item. A blueprint for this exposition may resemble this: Presentation Paragraph Snare Foundation Points Proposition Statement Body Paragraph Theme Sentence Supporting actuality 1 Supporting actuality 2 Progress Sentence End Paragraph Re-explanation of Thesis Rundown of Main Point Challenge to the Reader Passage One : Introduction Similarly as with most proper papers, the three-passage article starts with a presentation section. Such passages must, clearly, acquaint the peruser with your thought and, as a rule, persuade the peruser that this exposition merits perusing. To create a solid presentation, make certain to open with a strong snare. You need to attract perusers, so they are constrained to connect with your composition. A snare can be something convincing, for example, an inquiry, an amazing statement, or a fascinating truth. Presentation sections likewise for the most part contain foundation data that helps the peruser in understanding your theme, maybe characterizing it or clarifying a significant part. At last, you need to incorporate a proposition explanation. Despite the fact that your paper just has three passages, there still should be a reason to the composition. You could structure your acquaintance section concurring with this diagram: Presentation Paragraph Snare: Is there no answer for dumping waste in the sea? Foundation Points Clarify why waste is dumped in the sea Insights about dumping rubbish in the sea Proposition Statement: Dumping waste in the sea is an issue since it spells fiasco for the biological system, prompting issues ashore. This structure isn't compulsory, however it may be valuable over the long haul for sorting out your contemplations. Passage Two: Body The subsequent passage, as we have examined, is the unparalleled body section. This section bears the weight of imparting support for the postulation articulation completely all alone. In that capacity, it might take more than one work in progress to get this section to convey all that you need it to. Your body passage needs to underscore the theory articulation. Make a theme sentence for this body passage that imparts this and furthermore advances from the presentation into the body. For instance, your body section point sentence dependent on the blueprint above could be: *One of those issues may run its course as food shortage where people live. This subject sentence repeats the theory and moves the peruser into a body section that contains a supporting point: that harm to the sea's biological system could prompt food shortage. Inside the body section, you can cite various sources that help this point. Once more, this passage doesn't have space to contain everything that an entire five-section exposition may. Be that as it may, that doesn't mean you can't fit in some solid proof to persuade your peruser to see your point of view, for example, is cultivated through statements and investigation. Remember to end with a solid change sentence to move the peruser flawlessly into the end. Passage Three: Conclusion The last passage in an article is normally the end. The three-passage paper is no special case. In this article, the end can be similarly as long as the other two passages, and it can commute home the point made in the proposal explanation and body section. Similarly as with most end sections, this passage should repeat the postulation in various words. It should then sum up what was expressed in the body passage before testing the peruser somehow or another, regardless of whether in thought or

Friday, August 21, 2020

Nursing for Professional Standards and Human Rights -myassignmenthelp

Question: Examine about theNursing Ethics for Professional Standards and Human Rights. Answer: Presentation Morals, proficient norms and human rights assume a critical job in directing doctors. This it is normal and an unquestionable requirement to accomplish for every single clinical expert. The sheets and applicable associations set up these measures to guarantee that doctors work and keep up their calling in a manner expected of them (Blumenthal-Barby, Burroughs, 2012). Notwithstanding that, they likewise guarantee that patients achieve the best treatment and regarding their poise and rights. This exposition focuses on investigating a contextual investigation that places into setting the morals, proficient codes and privileges of patients. It likewise features a portion of the infringement that surgeons can submit during their training. In particular, the contextual investigation includes a physiotherapist called Henry treating a 73 years of age quiet, for reciprocal knee substitution. In a similar clinic, there is likewise a specialist who comes to work while alcoholic and Henry choose s to report him to rehearse administrator, Sally. Along these lines, this paper will dissect the contextual investigation with regards to clinical morals, proficient guidelines and human rights and respect of patients. Finally, it will give proposals to the training undoubtedly. Moral issues and clashes For the situation study, a few moral issues come out, to begin with the first, Henry suspends treating Jimy dependent on the way that he has a holding up rundown of different patients. Notwithstanding that, there is an instance of the specialist coming to work affected by a substance, explicitly, liquor. This is another moral issue most definitely. Finally, Sally, trains Henry not to report the alcoholic specialist again however does nothing to prevent the specialist from coming to work while affected by liquor. Investigation of the moral issues in clashes and points of view In the clinical calling, the contextual analysis presents a situation where moral commitments are in clashes. To begin with the physiotherapist, Henry, ceasing treatment for the patient to treat different patients raises moral concerns (Gostin, Sridhar, 2014). The patients spouse proposes that the patients have not been following treatment at home, exacerbating things, which calls upon significantly further consideration. Be that as it may, regardless of this, the physiotherapist chooses to stop his treatment for him and rather alludes him to a back rub advisor as he has all the earmarks of being excessively occupied. Then again, treating affected by substance can clearly disable one from giving the best clinical consideration. The specialist comes to work alcoholic. Henry, the physiotherapist, chooses to report him, apparently, to redress the circumstance yet Sally contends that he needs not to meddle with the issue and that she will manage it (Faden, Beauchamp, Kass, 2014). It is stressing that this condition endures and brings up the issues of patients dangers. In addition, the situation makes one wonder of for what reason should Sally will not allow Henry authorization to report the grave issue in that capacity, given that it is to the greatest advantage of patients and the notoriety of the calling. Finally, in light of the fact that Jimy is moved to another clinical specialist, is it not directly for him to be given the reasons why this is the situation (Chandratilake, McAleer, Gibson, 2012). Is it not imperative to allude one patient for other people, who are in the line, given that the stat e of Henry has declined? Proficient codes The contextual analysis presents us with the different expert set of principles that was either utilized accurately, penetrated or that should be set up as far the act of medication is concerned. To begin with the lead of the physiotherapist, it an expert implicit rules specifies that physiotherapists must act to advance the wellbeing and prosperity of the patient (Hawley,2014). The code necessitates that the physiotherapist think about the wellbeing and furthermore the prosperity of the patient as the need and treating patients decently. Notwithstanding that, it ties the physiotherapist with the thought of making an aware association that planned for recognizing the patients needs. For the situation study, then again, Henry respect this code, for example, ends his treatment towards him for other people and yet in addition guarantee than he gets to clinical consideration by moving him to a back rub advisor. Then again, Henry, the physiotherapist maintains the expert implicit rules by advising Sally regarding the way where the specialist come to work, and even treat patients while affected by liquor. In the clinical calling, physiotherapist must be prepared to acknowledge duty regarding maintaining the trustworthiness of the calling. In this way, by the gauges, he is required to bring to consideration any risky conduct that he either finds in the training by different experts to the significant position (Matiti, 2015). Consequently, his direct goes in accordance with what is specified under a similar set of principles. For the instance of the specialist, proficient code specifies that specialists must assume liability in keeping up their wellbeing and prosperity. In this set of accepted rules, it anticipates that all specialists should abstain from any movement like taking liquor or medication misuse that may impede their condition of wellbeing while at the same time playing out their obligations (Carrese et al., 2015). In any case, for the situation study, the specialist come to work while alcoholic and is claimed to treat patients in that state. This is infringing upon the expert gauges and jeopardizes the life of patients. Human rights and nobility pertinent to the contextual investigation Like some other individual, patients and specialists have rights, and this expands in any event, during their training. On account of the contextual analysis, the most pertinent rights and poise incorporate yet are not constrained to one side to most elevated achievable gauges of wellbeing, option to real uprightness and right to data (Shildrick, 2015). Considering the contextual investigation, the patient gets the most noteworthy feasible standard of wellbeing. The physiotherapist suspends treating Jimmy on account of his tight calendar and alludes him to a back rub specialist. In this manner, the patient can gain admittance to the most noteworthy clinical feasible. Notwithstanding that, the specialist is affirmed to treat patients while alcoholic. It is probably going to debilitate his competency by giving poor treatment to persistent something that is infringing upon the privilege and nobility of patients (Wynia et al., 2014). Besides, patients reserve a privilege to data, and it is in the wellbeing that Henry discloses to Jimmy the explanations for him alluding Jimmy to a back rub advisor. For the situation study, apparently the patient is left in obscurity which is another infringement of the rights and nobility of Jimmy. Ultimately, patients have rights to real uprightness. Concerning this specified human poise and right, patients are to be permitted to switch doctors as they regard fit (Cohen, Ezer, 2013). It is unseemly thusly for Henry to change duty to another doctor without Jimmys assent. In conclusion, is access to mind, that doctors must stick to in the act of their calling? It expects doctors to make a referral in accordance with some basic honesty. The particular right likewise suggests that doctors do the referral in convenient empowering patients to get to social insurance. For the situation study, the referral isn't made quickly nor is it going to profit the patient. In this way, it is directly for one to contend that Henry abuses this correct which isn't adequate in the clinical calling. Moral standards applicable to the contextual investigation Morals administer each expert practice, and they structure the bases whereupon an individual must practice their vocation. A portion of the moral standards applicable to the contextual investigation incorporate usefulness, self-rule, non-perniciousness, and equity (Corey et al., 2014). For the situation concentrate under, there are different ways that these standards become possibly the most important factor, either by the infringement or utilized effectively. To begin with the standard of helpfulness, this means a doctor settling on a choice that shows empathy, or positive effects on others, and for this situation study, to the patient. It is the craving for experts to target doing great as a major aspect of their guiding principle (Birden et al., 2014). With respect to the contextual investigation, the clinical expert grasps this guideline from various perspectives. To begin with Henry, he exhibits this guideline towards the patient by alluding him to another doctor when the patients overpower him. It exhibits value for the piece of Henry for doing anything conceivable to support the patient and furthermore make time for different patients. Another rule of morals is self-governance, which is the capacity of surgeons to give patients all data identifying with treatment that is significant and valuable concerning their treatment. It is infringing upon the fundamental precept of self-governance as the guideline of morals in medicinal services (Lombarts et al., 2014). By so doing, Henry abuses this rule. Additionally, there is likewise equity as a standard of morals which indicates the reasonable dissemination of assets or administrations in the arrangement of human services. It is significant that Henry moves some portion of his obligation to another professional to serve others. This is a show of equity as administrations accessible are benefited to patients according to their need. Then again, non-perniciousness in medication and nursing clarifies the demonstration of pointing not to do any mischief to patients. This can include doing exercises or neglecting to perform responsibilities that may harm or put the patients wellbeing in danger (General Assembly of the World Medical Association, 2014). For example, for the situation study, the specialist performs medical procedure while alcoholic, this is infringing upon the guideline as it put the patients life in danger. Notwithstanding that, disappointment of the training supervisor to act quickly in comprehending the bad habit is another infringement of this moral guideline as it makes it conceivable fo

Technology and Social Media Communication Analysis Essay

Innovation and Social Media Communication Analysis - Essay Example Investigation of Various Technologies and Social Media Communication Tools The origination of online life can be characterized as a compelling procedure of speaking with other. It is regularly seen to be a vehicle of social collaboration. The different advances for correspondence incorporate TVs, PC frameworks alongside the vehicle of web and cell phones (The conditions of Queensland, 2006). Alternately, the different devices of web based life involve distinctive online sites, for example, Twitter, YouTube, Flickr and Facebook among others (The International Association of Assessing Officers, 2009). Planned Purpose of Using Technologies and Social Media Communication Tools The significant motivation behind utilizing various advancements and web based life specialized instruments is to manufacture compelling correspondence with various clients in the network. The advancements and the diverse web based life devices can be seen as viable business apparatuses for a few associations by wh ich they can advance their important items by a huge level (Brand Protect Inc., 2010). . Quality One of the main qualities of utilizing different advancements and diverse web based life devices is that these viewpoints have more prominent openness of changed data. It has been clearly seen that the distinctive business association utilize the devices of web-based social networking for developing their image mindfulness, improving deals and above all accomplishing noteworthy serious situation over the central business advertise contenders. In this way, it very well may be expressed that the various instruments identified with internet based life fortifies the money related reasonability of the associations (Brand Protect Inc., 2010). Shortcoming One of the main shortcomings of utilizing compelling innovations and various apparatuses of web based life is time utilization. The devices may set aside much effort to explore the necessary data identifying with any topic (Brand Protect Inc., 2010). Moral Consideration as to the moral thought, the business organizations alongside the legislature ought to stay a lot of cognizant about the abuse of various apparatuses of online life that may force troublesome impacts upon the network (Eid, 2009). Existing Norms and Protocols One of the critical standards of internet based life is keeping up the protection of getting to various data of the clients. The different business associations or the people ought to organize this significant social standard concerning security just as ensuring their individual profiles so as to share their data in a sorted out way (Talking Climate, 2012). According to the social standards, it has been seen that one of the significant conventions of internet based life is enrollment. In this comparative setting, the business associations ought to follow the Code of Conduct identifying with social standards while performing business operational capacities. In addition, the enactments, for example, the ‘Data Protection Act 1998’, ‘Regulation of Investigatory Powers Act 2000’ and ‘Telecommunications Regulations 2000’ can go about as critical conventions for web based life. These conventions identifying with online networking encourage examining and recognizing the unapproved utilization of various media transmission frameworks, for example, web use. The business associations or any people are encouraged to follow the internet based life standards just as conventions so as to share

Monday, June 29, 2020

Fibroblast growth factors (fgfs) in neural induction - Free Essay Example

Fibroblast Growth Factors (FGFs) in neural induction Abstract Neural induction represents the first stage in the formation of the vertebrate nervous system from embryonic ectoderm. Fibroblast Growth Factors (FGFs), initially identified for their mitogenic and angiogenic roles in bovine brain extracts, are now known to have many developmental roles in particular that of neural induction, comprising of a family of 22 FGFs. Spemann and Mangold (1924) pioneered the study of neural induction through the identification of the organizer. Early work in amphibians suggested that neural fate was instructed by signals from Spemanns organiser or dorsal mesoderm. Over a decade ago, the default model proposed that neural induction was the direct consequence from inhibition of bone morphogenetic proteins (BMPs) found in Xenopus laevis, not taking into consideration neural induction in avian embryos. Consequently many experimental studies, in the chick, subsequent to this finding conflicted the idea that BMP inhibition was the only necessary step required suggesting that FGFs were required at an earlier stage prior to BMP inhibition. Much controversy has surrounded the role of FGFs in neural induction but now it is widely accepted to have a role in both amphibians and amniotes. Fibroblast Growth Factors in neural induction Structure and Function: FGFs broken down Fibroblast Growth Factors (FGFs) regulate a vast array of developmental processes, including, limb development, neural induction and neural development (BÃÆ'Â ¶ttcher and Niehrs, 2005). FGFs play an important role in development of an organism by regulating cellular differentiation, proliferation and migration and are involved in tissue-injury repair (Itoh and Ornitz, 2004). The early FGFs, FGF1 and FGF2 (also known as acidic and basic FGF, respectively) were first discovered from bovine brain and pituitary extracts and identified for their mitogenic and angiogenic activities (Gospodarowicz et al., 1974). Additionally, a number of family members were found revealing a total of 22 FGFs in humans ranging from 17 to 34 kDa in molecular mass in vertebrates. The nomenclature extends to FGF23 but in humans FGF19 is the equivalent to mouse Fgf15 (Ornitz and Itoh, 2001). Also the FGFs have been organised into seven subfamilies based on sequence comparisons. FGFs show conservation through species, especially across the vertebrate species in gene structure and amino-acid sequence. FGF sequences are yet to be found in unicellular organisms such as yeast (Saccharomyces cerevisiae) and bacteria (Escherichia Coli) (Itoh and Ornitz, 2004). Interestingly, an Fgf-like gene has been encoded in the nuclear polyhedrosis virus genome (Ayres et al., 1994). In protostomes, there are far fewer FGFs in contrast to vertebrates, as two (let-756 and egl-17) have been found in Caenorhabditis elegans and three (branchless, pyramus and thisbe) in Drosophila (Mason, 2007). Most FGFs have amino-terminal signal peptides (Fig. 1 (a)) and are secreted from cells. FGFs 9, 16 and 20 lack this signal peptide but nevertheless are still secreted (Ornitz and Itoh, 2001). FGF1 and FGF2 lack these signal sequences and are secreted by non-canonical pathways, however they can be found on the cell surface and within the extracellular matrix. Golfarb (2005) suggests that FGFs 11-14 do not interact with FGF receptors (FGFRs) and are not secreted but instead localise to the cell nucleus. Fig. 1 (above) illustrates the structural features of the FGF polypeptide (a). A signal sequence (shaded grey) can be seen here within the amino terminus and is present in most FGFs. All FGFs contain a core region (Fig. 1 (a)) containing around 120 amino acids of which 6 are identical amino acids residues and 28 are highly conserved (Goldfarb, 1996). The black boxes (numbered 1 to 12) represent the location of ÃŽÂ ² strands within the core. The three dimensional structure of FGF2 (b) can also be seen where the heparin binding region (yellow) includes residues between ÃŽÂ ²1 and ÃŽÂ ²2 strands and in ÃŽÂ ²10 and ÃŽÂ ²11 strands. FGFs have a high affinity for heparan sulfate proteoglycans (HSPG) and require heparan sulphate to activate one of four transmembrane receptor tyrosine kinases (FGFR1-4) in all vertebrates. FGFR5 has been identified recently, however most action is mediated via FGFR1-4 (Powers et al., 2000). FGFRs are membrane associated class IV receptor tyrosine kinases (RTKs). The FGFR tyrosine kinase receptors (Fig. 2 B) include 3 immunoglobulin (Ig) domains and a heparin binding sequence which requires heparan sulphate to be activated (McKeehan et al., 1998). HSPG are low affinity receptors that are unable to transmit a biological signal but act as co-factors for activation and regulation of an interaction between FGFs and FGFRs. Fig. 2 Illustrates the structure of a FGF molecule (A) indicating that the core region is where FGFR and HSPG binding occurs. The FGFR (B) has three Ig-domains which lie extracellularly. Ig-domain I affects binding affinity whereas Ig-domain II is where FGF binding occurs and Ig-domain III is involved in ligand selectivity. An acidic box (AB) lies between Ig-domain I and Ig-domain II which optimises interaction between HSPG and FGFR. Adjacent to the AB is the heparin-binding domain and CHD. The tyrosine kinase domain is split for catalytic activity and binding of adaptor proteins. Ig, Immunoglobulin; ECM, Extracellular matrix; CAM, Cell adhesion molecules; CHD, CAM homology domain; PKC, Protein kinase C; FRS-2, FGF receptor substrate-2. Image taken from: BÃÆ'Â ¶ttcher and Niehrs, (2005) Fig. 2 (above) illustrates a two dimensional generic FGF (A) and a FGFR (B) protein. The structure of a FGF (A) coincides with that of Fig. 1, containing a signal sequence in the amino-terminus and the conserved core region containing HSPG and receptor-binding sites. The main features of FGFRs (B) include 3-Immunoglobulin domains, an acidic box (AB) which lies between IgI and IgII, heparin-binding domain, Cell Adhesion Molecule (CAM)-homology domain, transmembrane domain and a split tyrosine kinase enzyme domain for catalytic activity and binding of adaptor proteins. The Ig domains in the extracellular region of a FGFR are required for FGF binding and regulate binding affinity and ligand specificity. Multiple alternative splicing that generates a range of FGFR1-4 receptor isoforms with transformed ligand binding properties provides diversity (Olsen et al., 2006). For example, FGF2 interacts with all four receptors FGFR1-4 whereas FGF7 only interacts with the FGFR2 IIIb isoform (a splice variant of FGF2; expressed in epithelial cells). Ligand-receptor binding specificity is affected by alternative splicing particularly in the C-terminal region of the third immunoglobulin loop in FGFR1-3 which produces IIIb or IIIc isoforms (Mason, 2007). Table 1 (below) illustrates the specificity of the FGF ligands for particular FGFR isoforms. This table is useful yet evidence from in vitro may appear misleading as in vivo involves influence from co-factors such as HSPG (Mohammadi et al., 2005). FGF subfamily FGFR1b FGFR1c FGFR2b FGFR2c FGFR3b FGFR3c FGFR4 FGF1 FGF1 +++ +++ +++ +++ +++ +++ +++ FGF2 FGF1 ++ +++ ++ +++ +++ FGF3 FGF7 ++ ++ FGF4 FGF4 +++ +++ ++ +++ FGF5 FGF4 ++ + FGF6 FGF4 ++ ++ +++ FGF7 FGF7 +++++ + FGF8 FGF8 ++ +++ + ++++++ ++++ FGF9 FGF9 ++ ++ +++ FGF10 FGF7 ++ ++++++ FGF11 FGF11 FGF12 FGF11 FGF13 FGF11 FGF14 FGF11 FGF15/19 FGF19 +++ ++ ++++++ + ++++ ++++++++ FGF16 FGF9 + + FGF17 FGF8 + + +++ +++ FGF18 FGF8 + ++ ++ FGF20 FGF9 + ++ ++ +++ + FGF21 FGF19 + + +++ +++ + + ++++ FGF22 FGF7 ++ ++++++ FGF23 FGF19 + ++ +++ + ++ ++++++ Table 1 shows the FGF/FGFR (ligand/receptor) interactions as determined by the Baf3 cell mitogenicity assay (which express FGFRs at higher levels than in most cell types in vivo). FGF1 is used as a reference as it activates all seven FGFR isoforms efficiently. FGFS 11-14 are nuclear and therefore have no reported activity on FGFRs. The level of activity relative to FGF1 (100%) is displayed by the number of + signs. The - illustrates a 10% less mitogenic activity approximately when compared to FGF1. This table provides useful information of FGF-FGFR associations even though in vivo heparan sulphate proteoglycans (HSPGs) can alter receptor specificity and that recombinant ligands may differ from post-translationally modified forms (occur in vivo). Taken from: Mason (2007) Table 1 (above) shows there are seven FGFR isoforms (FGFR1b; FGFR1c; FGFR2b; FGFR2c; FGFR3b; FGFR3c and FGFR4) that FGF1 through to FGF23 variously bind. Alternative mRNA splicing of FGFR1-3, particularly in the carboxy-terminal half of the third extracellular immunoglobulin loop (Ig-domain III), derives the b and c isoforms. HSPGs are necessary co-factors in activation of FGFRs by FGFs and evidence has found the ternary complex to comprise of FGF-FGFR-HSPG in a 2:2:1 ratio (Mohammadi et al., 2005). The co-binding of HSPG prevents proteolysis and thermal denaturation (Itoh and Ornitz, 2004). HSPG binding of FGF induces dimerization of FGFR, followed by transphosphorylation of receptor subunits, initiating an intracellular signalling cascade. FGF signalling: Its a cellular game Following formation of the FGF-HSPG-FGFR complex several downstream signalling pathways are activated (Fig. 3 below). This includes three pathways, the Ras/Mitogen-activated protein kinase (MAPK) pathway, Phosphoinositide 3-kinase (PI3K)/ Akt pathway and phospholipase C- (PLC )/ Ca2+/ protein kinase C (PKC) pathway. These pathways are mediated via docking proteins (such as FGF receptor substrate (FRS) and Grb2 in the Ras/MAPK pathway) that recruit downstream enzymes. The Ras/MAPK pathway (Fig. 3) is initiated via Grb2 (a docking protein) where its SH2 domain binds to the tyrosine phosphorylated FRS2 in response to activation of the FGFR receptor (Kouhara et al., 1997). Grb2 binds to SOS (son of sevenless; a guanine nucleotide exchange factor) via a SH3 domain on the Grb2 molecule. This Grb2-SOS complex activates SOS which promotes the dissociation of GDP from Ras so it is able to bind GTP for its activation. Activated Ras activates RAF (MAPKKK) which is normally held in a closed conf ormation by the 14-3-3 protein. Once activated, RAF phosphorylates and activates mitogen-activated and extracellular signal-regulated kinase (MEK (MAPKK)) which in turn phosphorylates ERK1/2 (MAPK). MAPK then translocates into the nucleus to phosphorylate specific transcription factors of the Ets family which in turn activate expression of FGF target genes. In addition, it is also evident from Fig. 3 that active ERK itself can antagonise FRS activity. Activation of the PI3K/Akt pathway (Fig. 3) is by binding of Gab1 (Grb2-associated-binding protein 1) to FRS2 indirectly via Grb2. In the presence of Gab1, activation of PI3K stimulates the Akt pathway which suggests FGFs have anti-apoptotic effects in the developing nervous system (Mason, 2007). In addition, PI3K can bind to a phosphorylated tyrosine residue of FGFR directly. The third way in which the PI3K/Akt pathway is activated is by activated Ras inducing membrane localisation of the PI3K catalytic subunit. Fig. 3 The three main signalling pathways activated by FGFs are illustrated above. The negative feedback signals imposed on or mediated by FRS2 are shown by the dotted lines. Image taken from: Cotton et al. (2008) PLC- /Ca2+/PKC pathway is also activated when a tyrosine residue is autophosphorylated in the carboxy terminal of the FGFR. PLC- hydrolyses phosphatidylinositol to produce inositol trisphosphate (IP3) and diacylglycerol (DAG) which stimulates calcium release and activates PKC, respectively. PKC has also been found to activate the Ras/MAPK pathway independent of Ras but dependent on c-Raf (Ueda et al., 1996). Fig. 3 also indicated that the final activated components, of the three signalling pathways mentioned, translocate into the nucleus to activate specific transcription factors of the Ets family (particularly Ets1, Pea3, and Erm) which activate expression of FGF target genes and in turn these feedback (Fig, 4) to regulate intracellular signalling (Dailey et al., 2005). Most of the proteins produced function as feedback inhibitors (as seen in Fig. 4), including Sprouty (Spry), Sef and MAP Kinase phosphatase 3 (MKP3) which modulate particularly the Ras/Erk pathway at different levels (Mason, 2007). In contrast, stimulation of the fibronectin leucine-rich transmembrane type III (XFLRT3) protein causes FGF signalling to be positively regulated (BÃÆ'Â ¶ttcher et al., 2003). Fig. 4 Shows the feedback regulators of the Ras/MAPK pathway. The red arrows illustrate feedback loops which regulate the FGF signalling pathway. The black arrows indicate the direction of the Ras/MAPK signalling pathway. Three of the four target genes shown here (Spry, SEF and MKP3) function as feedback inhibitors which regulate the Ras/MAPK pathway at different levels. The red blind-ended arrows illustrate this. Spry antagonises FGF signalling at the Grb2-SOS-Ras and Raf levels. MKP3 blocks at level of MAPK. SEF blocks both phosphorylation of MAPK and its translocation to the nucleus aswell as at the membrane. XFLRT3 positively regulates FGF signalling at the level of the membrane. Spry, Sprouty; MKP3, MAP kinase phosphatase 3; XFLRT3, fibronectin leucine-rich transmembrane type III; SOS, son of sevenless. Image taken from: Cotton et al. (2008) Sprouty (Spry) was one of the first identified feedback regulators of the FGF pathway. Thisse and Thisse (2005) found Spry to antagonise FGF Signalling by gain and/or loss of function experiments in mouse. Spry acts at the level of Raf and/or Grb2 (Fig. 4). Gain and/or loss of function experiments in zebrafish demonstrated that Sef antagonises FGF signalling (Fig. 4) acting at level of MEK and ERK (Tsang et al., 2002). Mouse studies have suggested that FGFR signalling is required for Dusp6 transcription which codes for MKP3 (Ekerot et al., 2008). From this study it was also found that MKP3 acts as a negative regulator of ERK activity (as seen in Fig. 4). Sef and XFLRT3 are located at the membrane (Fig. 4) and carry out antagonising actions with FGFR directly. FGF signalling can be regulated at different levels, from the membrane all the way down to the level of phosphorylation of MAPK and it is important also to know that FGFs have been detected in the nucleus (Mason, 2007). Most of the downstream target genes as described earlier are feedback inhibitors (Spry, Sef and MKP3) but FGF signals are also known to interact with many other important pathways such as transforming growth factor-ÃŽÂ ² (TGF-ÃŽÂ ²), Hedgehog (HH), Notch and Wnt (Gerhart, 1999). Therefore, in conjunction with these, FGFs are responsible for development of most organs of the vertebrate body. In the nervous system, FGFs have been implicated to play a role in early developmental processes, such as neural induction, patterning and proliferation (Umemori, 2009). Neural induction: The Default Model Fig. 5 Illustrates the famous two-headed tadpole identified by Spemann and Mangold (1924) showing a developed second nervous system by implantation of organizer tissue onto a host embryo. Image taken from: De Robertis (2006). Spemann and Mangold (1924) pioneered the study of neural induction, which is defined as the process by which naive ectodermal cells aquire a neural fate. Their work involved demonstrating that tissue from the dorsal lip of the frog Xenopus laevis blastopore could induce a second ectopic nervous system (Fig. 5 above left) when implanted onto the ventral side of a host gastrula embryo. The second ectopic nervous system was host derived indicating that the graft was important in determining cell fate. This region, located on the dorsal side of an amphibian embryo, was named the Spemann organizer as it could direct the neighbouring ectodermal cells to form nervous system instead of epidermis. Although the organizer (group of dorsal mesodermal cells) was found to be present in many species (Hamburger, 1988) it was the Xenopus laevis which gave an insight into the molecular events involved in neural induction in vertebrates (Hemmati-Brivanlou et al., 1994). This was particularly because amphibians were found to be ideal experimental models for the study of neural induction as neurulation initiated within twelve hours after fertilisation (Weinstein and Hemmati-Brivanlou, 1997). It was implied that signals from the organizer provide instructions to the ectoderm to form neural tissue therefore for many decades the view was that the default state of the ectoderm was to produce epidermis. The first challenges to this model came from studies making use of dissociated cell cultures (Sato and Sargent, 1989). It was found that when animal caps were cultured intact that epidermis formed but neural tissue arose from animal caps that had been dissociated for prolonged periods (as seen in Fig. 6 below). This led to the idea that intact tissue may block the formation of neural tissue by presence of neural inhibitors which are diluted out when the tissue is dissociated. Recent research has found that the default nature of the ectoderm is to produce neural tissue that requires inhibition of a neural inhibitor from the ectoderm. Before considering the process of neural induction I would like to take a step back and describe the three germ layers of the embryo. Following fertilisation, the zygote undergoes stages of cleavage to eventually form a gastrula with three germ layers (in triploblastic animals) usually only visible in vertebrate animals. The Germ layers will eventually give rise to all of the animals organs through a process known as organogenesis. The three layers include, the ectoderm (outermost), endoderm (innermost) and mesoderm (which is between the ectoderm and endoderm) layers. The Endoderm gives rise to the lung, thyroid and pancreas. The mesoderm forms the skeleton, skeletal muscle, the urogenital system, heart and blood. The outermost layer, the ectoderm which is of concern here, gives rise to the epidermis and nervous system. It is at gastrulation that the vertebrate ectoderm is competent to differentiate into neural tissue or epidermis. Unless told otherwise, the default nature of the ect oderm is to produce neural tissue and this was outlined as the default model. The Default model of vertebrate neural induction, discovered over a decade ago in Xenopus, proposed that in the presence of bone morphogenetic protein (BMP), a signalling molecule of the TGF-ÃŽÂ ² superfamily, causes the ectoderm to give rise to an epidermal cell fate (Stern, 2006; MuÃÆ'Â ±oz-Sanjuan and Brivanlou, 2002). In support of this model, consistent with the idea that BMP activity inhibits neural fates, animal caps which had been injected with RNA encoding effectors of BMP4 (Smad 1/5 or Msx1) neuralization did not occur. Conversely, it was found that inhibition of BMP activity in the ectoderm is essential for a neural fate which forms the basis of the default model of neural induction. Inhibition of BMP is achieved through direct binding of BMP antagonists emitted from the organizer (Wilson and Hemmati-Brivanlou, 1997). These BMP antagonists include chordin (Sasai et al., 1995), noggin (Lamb et al., 1993) and follistatin (Hemmati-Brivanlou et al., 1994) which bind to BM Ps extracellularly to prevent its interaction with its own receptor (Hemmati-Brivanlou and Melton, 1997). These molecules have direct neural activity which means they induce formation of neural tissue in the ectoderm without forming mesoderm. It was initially believed that these molecules acted as ligands to bring about neural tissue formation. Experiments found that there was conservation through species, identifying that chordin was homologous to the short gastrulation (sog) gene found in Drosophila which has been shown to antagonize the BMP homologue decapentaplegic (dpp) (Wharton et al., 1993), suggesting that these molecules might act as inhibitors rather than inducers and that these inhibitory mechanisms have been conserved from arthropods through to vertebrates. It was experiments (Fig. 6) showing that dissociated ectodermal explants would become neural tissue in absence of inducing signals from the organizer (Sato and Sargent, 1989). Evidence found that neural induction resulted from inhibition of the TGF-ÃŽÂ ² pathway as expression of dominant-negative activin receptor gave rise to neural fates in amphibian ectoderms (Hemmati-Brivanlou and Melton, 1994). It was found that chordin, noggin, follistatin and molec ules such as Cerberus and Xnr3 (Xenopus nodal related 3) bound to BMP in the extracellular space inhibiting its action (Hemmati-Brivanlou and Melton, 1997) leading to the much debated default model of neural induction. Fig. 6 The Default Model. Ectodermal cells acquiring a neural identity in absence of signals forms the basis of the neural default model. It is the inhibition of an inhibitor (BMP) which leads to neural tissue from the ectoderm. The experiment above shows that culture of an intact animal cap of a blastula-stage (stage 9) Xenopus ectoderm gives rise to epidermal tissue. In contrast, it can be seen in a dissociated ectodermal animal cap cultured for 5 hours with no other factors or serum, absent in cell-cell signalling, becomes neuralised. Addition of BMPs to dissociated ectoderm can restore epidermal fate (Wilson PA Hemmati-Brivanlou A, 1995). Addition of a dominant negative activin receptor (BMP signalling inhibitor) to an intact explant results in neural fate. A cement gland fate is adopted by explants that have been briefly dissociated and can be transformed by exposure to FGFs to a neural fate. Image taken from: MuÃÆ'Â ±oz-Sanjuan and Brivanlou, (2002) Neural Induction: FGFs get it started Support for the default model still remains, mainly in Xenopus, but other work (especially in chick and mouse) suggests a more complex mechanism (Streit et al., 1998). It has been established that the BMP pathway is involved in determining ectodermal cell fate (Wilson and Hemmati-Brivanlou, 1997) but it still remains to be proved conclusive if BMP inhibition is required for neural induction alone or if other pathways act separately or with BMP inhibition. In the chick embryo it has been found that naive epiblast cells do not respond to BMP antagonists until previous exposure to organizer signals for five hours (Streit et al., 1998). Striet et al. (2000) grafted an organizer to observe the genes induced in the epiblast within this time period. A gene ERNI (early response to neural induction) was identified as a coiled coil domain with a tyrosine phosphorylation site and found to be expressed throughout the region that later contributes to the nervous system at pre-primitive streak stages (Hatada and Stern, 1994). Striet et al. (2000) findings made ERNI the earliest known marker after a response to organizer signals, prior to even Sox3 (induced by the node in 3 hours (Streit and Stern, 1999)). FGFs are becoming more evident that they have a major role in neural induction as it has been shown to begin before gastrulation, before BMP antagonists even appear (Wilson et al., 2000). In the chick, it has been found that FGFs have the role of blocking BMP signalling and promoting neural differentiation (Wilson et al., 2000). In ascidians, FGF signalling is the main mechanism of neural induction with BMP antagonism playing a role in later development (Lemaire et al., 2002). In frogs and fish, in contrast, FGFs do not have a certain role in neural induction and is believed their primary role is BMP inhibition (Pera et al., 2003). Fig. 7 (redooo) FGF Signalling a part of neural induction. Hensens node (brown) induces cERNI (a, arrow), Sox3 (d, arrow) and Sox2 (left in g, i). The FGF receptor inhibitor SU5402 (arrowheads in b, e) inhibits induction of all three genes (b, e; right in g, h) by the node, which still elongates and expresses the organizer marker chordin (g-i; Sox2 in purple, chordin in red). Cells secreting a soluble form of the FGFreceptor (outlined) also greatly reduce induction of cERNI (c) and Sox3 (f) by the node. The endogenous expression of Sox3 is reduced in embryos treated with SU5402 (k) as compared with untreated embryos (j) (embryos processed simultaneously in the same vial). Image taken from: Streit et al. (2000) Exposure of the chick epiblast to an implanted organiser for around 5 hours induces Sox3 (an early neural plate marker) (Stern, 2005). After removal of the implanted organiser, chordin can be used to stabilise it (Striet et al., 1998) which implies that before the ectoderm can respond to BMP antagonists it must be exposed to 5 hours of signals from the organizer. During these 5 hours, several genes become activated such as, ERNI (early response to neural induction) which becomes active after 1 hour (Streit et al., 2000) and Churchill (Chch) after about 4 hours (Sheng et al., 2003). These are both induced by FGF and not BMP inhibition, indicating the importance of FGFs in early neural induction. Churchill which is expressed in the neural plate inhibits brachyury, a transcription factor, which as a result suppresses mesoderm formation by preventing cell ingression. In the chick, FGF8 is expressed in the hypoblast, prior to gastrulation before Hensens node appears (the chick equivalent to the organizer) indicating that neural induction is in fact able to begin before gastrulation. This is important because ERNI and Sox3 mark neural induction and require FGF signalling (Stern, 2005). Streit et al. (2000) found that FGF8 coated beads induce ERNI as efficiently as the node within 1-2 h without inducing brachury and also the expression of Sox3. These results indicate FGFs to be possible early signals in neural induction. It is FGF8 which has been identified as the best candidate because it is expressed in the anterior part of the streak as well as the node in primitive streak stages and as the node loses neural inducting ability it is also downregulated (Streit and Stern, 1999). In xenopus, more recently similar conclusions have been reached (Delaune et al., 2005). To find if FGF expression in Hensens node is actually required to induce ERNI and Sox3 experiments involving loss of function were undertaken. By using a FGF receptor inhibitor in the chick, such as SU5402, FGF signalling can be blocked preventing the early phase of neural induction (Delaune et al., 2005; Mohammadi et al., 1997). SU5402 is able to greatly reduce induction by a grafted node of Sox3 (Fig. 7e) and of ERNI (Fig. 7b). Streit et al. (2000) also found a large reduction in expression of Sox3 and ERNI particularly in the normal neural field of host embryo in the existence of FGF inhibitors (seen in Fig. 7k and j when compared). Pera et al. (2003) has shown that FGF signalling has a role in neural induction as it activates the MAPK cascade which phosphorylates the linker region of Smad1 (a BMP effector), inhibiting Smad1 and hence the BMP pathway. This is compared to phosphorylation of the C-terminus of Smad1 by BMP normally, which activates it. Also Kuroda et al. (2005) also suggested that FGF induces neural induction through inhibiting BMP signalling by phosphorylation of Smad1. A recent study by Linker and Stern (2004) indicated that, independent of downregulating BMP targets, FGF is required for neural induction. Therefore, though MAPK signalling is able to downregulate BMP signalling this is not able to explain fully why FGF is required for inducing neural fate. Further experiments in the chick were carried out to strongly suggest the role of FGF signalling in the neural induction pathway initiated by the organizer. These included investigation of whether FGFs had a role in later stages of neural induction. The FGF inhibitor SU5402 was grafted with quail nodes into the area opaca (which part of the blastoderm that surrounds the area pellucida) of chick hosts and left overnight to give results where Sox2 induction was reduced to 20% (Fig. 7g, h) by the node (Streit et al., 2000). However, the node elongated as normal and chordin (organizer marker) was continued to be expressed eliciting that the graft remains unaffected by the FGF inhibitor. FGF8 was found to induce msx1 expression as well as repress expression of GATA2/3 which are both targets of the BMP pathway (Fig. 8 below) (Streit et al., 2000). This shows that FGF and BMP pathways relate and antagonise each other. The finding that FGF8 upregulates msx1 leads to idea that BMP signalling is maintained which is required if BMP is to be inhibited later. It was also found that the activity of FGF8 can not be explained by simply antagonism with the BMP pathway as FGF8 beads were used in host embryos with BMP4 and it was found that FGF8 continued to induce expression of Sox3 and ERNI (Streit et al., 2000). Delaune et al. (2005) demonstrated that FGF signalling is required prior to gastrulation within the ectoderm and that the FGF pathway contributes to BMP inhibition, which is not enough to cause neural induction alone in vivo. It is established that FGFs are required as an early step for neural induction in amniotes, therefore it is interesting to consider the roles of FGF and BMP pathways during neural induction in Xenopus. Work by Delaune et al. (2005) found FGF to function as a conserved initiator of neural specification amongst chordates. The in vivo results were consistent with FGF signalling prior to gastrulation with BMP inhibition to give rise to the nervous system. Also observations in amphibian embryos found that in the presence of a dominant-negative FGFR1 construct neither Noggin (Launay et al., 1996) nor Chordin (Sasai et al., 1996) could induce neural tissue. This suggests that FGF signalling is required for BMP inhibitors to induce neural markers. Further studies showed that injecting Smad6, an intracellular BMP antagonist, into the A4 blastomere (which does to contribute to neural plate or its border) of Xenopus embryos was inadequate to neuralise unless FGF4 was co-injected. There has been much prior controversy regarding whether FGFs were required in amphibians for neural induction as injection of dominant-negative FGFR1 inhibits mesoderm formation but not formation of anterior neural features (Ribisi et al., 2000). Reports have also shown that use of antimorphic FGFR1 or FGFR4 have suggested that FGF plays a role during neural development (Launay et al., 1996). It has also been proposed that FGFR4 rather than FGFR1 is involved in neural induction and as previously stated that an inhibitor of FGFRs has led to the clear need for FGF signalling in neural induction in Xenopus (Delaune et al., 2005). Recent findings by Wilson et al. (2001) in chick epiblasts have indicated, that during neural induction, FGF signalling functions in a BMP-independent way. Experiments by Bertrand et al. (2003) in the ascidian Ciona intestinalis further supports the role of FGFs, particularly FGF9/16/20 in this case, as neural inducers. Ascidians are not vertebrates, but prior to development into an adult there is an intermediate tadpole phase which resembles a simple vertebrate-like larva with a dorsal neural tube and notochord. It does not appear that BMP inhibitors such as noggin and chordin are involved in induction of neural tissue (Darras and Nishida, 2001) and instead in the embryo, it is FGF that instructs the animal cells to become neural tissue and the vegetal cells to form mesoderm. The earliest known marker of ascidian neural tissue was identified to be the Otx gene. Bertrand et al. (2003) found that Fgf9/16/20 all activate an enhancer of Otx expression through action of Ets1/2 and GATAa transcription factors. Work by Kudoh et al. (2004) in zebrafish shows that rather than Bmp antagonism, Fgf activity initiates development of potential vegetal neural tissue that aids in trunk and tail CNS and has brought about the debate about a possibility of more than one organizer. It has been proposed that both FGF signalling and BMP inhibition act as direct neural inducers in Zebrafish (Kudoh et al., 2004) BMP inhibition has been found to induce anterior neural CNS by the shield (the zebrafish equivalent of the Spemann organizer) where FGFs induce posterior neural plate (Mason, 2007). The marginal zone, which is a second more ventral organizer, induces posterior neural tissue via FGF signalling without influence of BMP. In vertebrates, the role of FGFs in neural induction has been controversial. It has been suggested that FGFs direct ectodermal cells to a neural fate in chick (Streit et al., 2000), amphibians (Delaune et al., 2005) and zebrafish (Kudoh et al., 2004). An ancient role for FGF signalling in neural induction has also been identified in the starlet sea anemone (Matus et al., 2007). Add Fig. 8 here from Dev. Neuro book of BMP and FGF summarising the cascade.page 28 In mammals it was suggested that in mouse ESCs (mESCs) neuralization was independent of FGF signalling (Smukler et al., 2006). However, more recently Pollard et al. (2008) identified autocrine FGF signalling to be involved in neural induction of mESCs. Cohen et al. (2010) came to the conclusion that FGF signalling has an instructive role in human neural specification (Fig. 9). In this study when MEK1/2 were inhibited, FGF induced neuralization was blocked suggesting that active Erk1/2 is required for FGF to maintain its neuralization effect. This coincides with results obtained from mESCs (Stavridis et al., 2007). Fig. 9 The role of FGF in early neural differentiation events in human embryonic stem cells (hESCs). Floating hESC clusters differentiate towards the primitive ectoderm lineage independent of FGF-signaling. Further neuralization is instructed by FGF-signaling. FGF-signaling induces neuralization, at least in part, through a mechanism which is independent of inhibition of BMP-signaling. In line with the default model, inhibition of BMP-signaling promotes neuralization of hESCs. FGF-signaling encourages the neuralization tendency in the presence of noggin, though it is not essential, since neuralization still occurs when both BMP and FGF-signaling are blocked. Image taken from Cohen et al. (2010) FGFs are clearly not enough to induce a complete nervous system but are able to sensitize the epiblast for BMP antagonists and allow expression of later neural markers. It was concluded that FGF or 5 hours of signals from the node were not sufficient even with BMP inhibition to induce Sox2 (Streit and Stern, 1999). Downstream of FGFs in neural induction Sox2, a definitive neural plate marker, is one of the earliest markers for the neural plate (Kishi et al., 2000) which will give rise to the complete central nervous system (CNS). It was found that the chick epiblast requires exposure for 5 hours from a grafted organizer (requiring 11-13 hours for neural induction) which induces SOX3 expression. The events that take place during these first 5 hours include induction of ERNI after 1 hour and churchill (ChCh; a zinc finger gene) after about 4-5hours (Sheng et al., 2003). These two genes are induced by FGF and not BMP inhibitors. FGF signalling is required when the neural plate is established from within the chick epiblast and when gastrulation causes mesoderm and endoderm to develop from epiblast. Churchill, induced by FGF, activates Smad-interacting-protein-1 (Sip1) which blocks brachury (a mesoderm marker) and acts to switch FGF between different roles (Sheng et al., 2003). The main role of Churchill is to repress mesoderm markers such as brachury and Tbx6 or upregulate genes that will do, such as Sip1. Competitive interactions between ERNI, BERT and Geminin control the repressors and control Sox2 expression. Brahma (Brm; a chromatin remodelling enzyme) is able to activate Sox2 through direct binding with the N2 enhancer and is normally expressed ubiquitously in the embryo. Premature Sox2 expression is normally inhibited by a transcriptional repressor HP1ÃŽÂ ± (heterochromatin protein; also expressed ubiquitously in embryo) which binds to Brm in the basal state (Fig. 10A below). FGF8 which is known to induce ERNI (Streit et al., 2000), also induces Geminin.which competes to displace HP1ÃŽÂ ± bound to Brm at the N2 enhancer (Fig. 10B). Geminin is known to be expressed at the start of gastrulation before Sox2 appears therefore it is ERNI which prevents premature Sox2 expression by binding through its coiled coil domain with Geminin (Fig. 10C). During gastrulation ERNI recruits the repressor HP1ÃŽÂ ³ (which interacts with the C-terminus of ERNI) to prevent premature activation of Sox2 by Geminin which is bound to Brm at the time (Fig. 10D). At the end of gastrulation, another protein, BERT (a coiled coil domain which an endogenous ERNI antagonist) competitively binds to both ERNI and Geminin, displacing the repression by HP1ÃŽÂ ³ and activating Sox2 (illustrated in Fig. 10E). The induction of BERT is not via FGF or BMP inhibition and currently research remains in this field to determine the factor(s) that regulate its expression. Overall, the mechanism described above regulates the timing of Sox2 preventing its early release, defining the domain that will become the nervous system. In xenopus, it has been proposed that neural induction requires early FGF signalling in addition to BMP inhibition (Delaune, 2005). Overall, it is now accepted that both amphibians and the chick require FGF signalling for neural induction. Fig. 10 HP1ÃŽÂ ± is bound to Brm (A) in a basal state and acts as a transcriptional repressor of Sox2 (a definitive neural plate marker). (B) Geminin is able to displace HP1ÃŽÂ ± from Brm releasing its inhibition on Sox2. (C) It is proposed that ERNI via Geminin blocks induction of Sox2. (D) HP1ÃŽÂ ³ is recruited by ERNI to the N2 enhancer (earliest enhancer of Sox2) to inhibit Sox2 expression. (E) Proposed that BERT, a coiled coil domain, interrupts interaction between Geminin and ERNI to free the HP1ÃŽÂ ³ repressor from the N2 enhancer allowing Sox2 induction via Geminin/Brm. Image taken from: Papanayotou et al. (2008) In the chick it has been proposed that FGF initiates two separate pathways including one that involves FGF inducing neural tissue independent of BMP inhibition and another where FGF represses BMP transcription requiring inhibition of the Wnt pathway additionally (Wilson et al., 2001). It has been found that Wnt signalling plays a role in the vertebrate embryo. Wnt functions by binding to its receptor frizzled, an integral membrane protein, which in turn activates the cytoplasmic protein Dishevelled. ÃŽÂ ²-catenin, an intracellular protein, is bound to several proteins such as Axin, GSK3 and APC (canonical pathway). Glycogen synthase kinase 3 (GSK3) phosphorylates ÃŽÂ ²-catenin, targeting it for proteolysis so this complex only exists momentarily. When Wnt binds and Dishevelled is activated it functions by blocking GSK3 which in turn increases the ÃŽÂ ²-catenin within the cell forming a complex with the protein TCF. The ÃŽÂ ²-catenin /TCF complex binds to DNA at specific points to activate target genes. The canonical (ÃŽÂ ²-catenin dependent) Wnt signalling is required early on to specify the dorsal side of the embryo where the organiser will form. The Wnt targets Xnr3 and siamois have been shown previously to have neuralizing activity when overexpressed. It has been reported by Baker et al. (1999) that the canonical Wnt pathway requires activation for neural induction in Xenopus as it was shown that Wnt8 can inhibit BMP4 expression at early gastrula stages. This study also showed that inhibition of ÃŽÂ ²-catenin activity in the neural ectoderm results in a decrease in neural development proposing that Wnt activation is required for neural induction in xenopus. The work done on Wnts has been very controversial as in the chick epiblast, it was suggested by Wilson et al. (2001) that Wnt inhibition collaborates with FGF for neural fate acquisition. A more recent study by Heeg-Truesdell and Labonne, (2006) constructed in xenopus which is consistent with that of the chick shows that blocking canonical Wnt signalling results in a larger neural plate. Also Aubert et al. (2002) concluded that Wnt antagonism, in stem cells, can stimulate neural differentiation. The inconsistency with the findings previously can be corrected if taking into account differences in timing. As stated above at early stages of development Wnt signalling is required to specify the dorsal side of the embryo. It may be necessary by the blastula stage to inhibit Wnt signalling for FGF to downregulate BMP expression (Wilson et al., 2001). The signals involved in inhibition of Wnts at this late stage are still not completely understood. Experiments in other vertebrates such as the mouse have shown that mouse Wnt3 (mWnt3) and mouse Wnt8 (mWnt8) are neuralising molecules (Baker et al., 1999). Experiments by Linker and Stern (2004) have found that a combination of FGFs, BMP antagonists (Smad6, Chordin and Noggin) and Wnt antagonists were still unable to induce the neural marker Sox2 in chick epiblast (Fig. 11 below). They found that FGF8 is unable to induce Sox2, the definitive neural plate marker, when combined with Smad6 (a BMP inhibitor; Fig. 11F, H, I). This is consistent with the finding by Streit et al. (2000) that FGF8 and Chordin fail to induce Sox2. When FGF8 in combination with three Wnt antagonists (Dkk1, Crescent and NFz8; Fig. 11C-E) is misexpressed, similar results are seen. These experiments suggest that, in vivo, at least in the chick, signals other than FGFs, BMP antagonists and Wnt antagonists are required. Fig. 11 Use of FGF8, BMP antagonist (Smad6) and Wnt antagonists have appeared unsuccessful to induce neural fate. (D-G) Shows histological sections that the different factors, in the epiblast, are unable to express Sox2. (A) FGF8 as well as (B, D) Wnt signalling by Dkk, Crescent and NFz8 (ÃŽÂ ±Wnt) are unable to induce Sox2 expression in the area opaca epiblast. Even in a combination of FGF8+NFz8+Dkk+Crescent the same conclusions are seen (C, E). In (F, H, I) FGF8+Smad6 (BMP inhibitor) is unable to induce Sox2 also. Finally combinations of all these factors (FGF8+NFz8+Dkk+Crescent+Cerberus+Smad6) are also unable to induce the definitive neural plate marker, Sox2, suggesting the role of other factors (G, J, K). Image taken from: Linker and Stern (2004). In a very recent study by Cohen et al. (2010) with use of human embryonic stem cells (hESCs) it was found that FGF signalling is able to induce neuralization via a mechanism independent of BMP signalling. The data suggests that human neural induction involves FGF signalling and is instructed via this pathway but in hESCs, neuralization can occur in its absence. Conclusion Since isolation of FGFs in pituitary extracts for their mitogenic and angiogenic activites, our understanding of their involvement in neural development has come a long way over the last 35 years. FGFs have an important role in many developmental processes in particular limb development, neural induction and development. Recently it has become more evident that FGFs are involved in axon growth and guidance. Neural induction is a very complex multi-step process, though well understood, still remains to be fully uncovered. Work in Xenopus ectodermal explants have suggested that BMP inhibition gives rise to a neural fate, whereas epidermis is induced by BMP signalling. For many years this was considered to be the case, however, in amniotes and ascidians, BMP inhibition did not prove to be sufficient for acquisition of neural fate and FGF signalling was found to initiate it. Loss of function experiments with use of a pharmacological FGF inhibitor, SU5402, made it possible to identify that FGFs are required prior to gastrulation in the ectoderm to induce a neural fate. In the chick it was found that a grafted organizer would need to be exposed to the chick epiblast for atleast 5 hours to induce the early neural plater marker SOX3 and ERNI which can be stabilised by Chordin after the grafted organizer has been removed. These findings imply that before the ectoderm can respond to BMP inhibitors it must be exposed to 5 hours of signals from the organizer. There has been much controversy regarding whether FGFs are required for neural induction but is now generally accepted that FGFs are required in chick and amphibians as well as ascidians and zebrafish. FGFs have been suggested to induce neural induction through inhibiting BMP signalling by phosphorylation of Smad1 (Kuroda et al., 2005) or by limiting expression of BMP signalling genes (Wilson et al., 2000). Also Delaune et al. (2005) suggested that FGF signalling, independent of BMP signalling, directs neural diffentiation. Word Count: 7,230. (target 8,200) References Aubert J, Dunstan H, Chambers I and Smith A (2002) Functional gene screening in embryonic stem cells implicates Wnt antagonism in neural differentiation. Nat. Biotechnol. 20, 1240-1245. Ayres MD, Howard SC, Kuzio J, Lopez-Ferber M and Possee RD (1994) The complete DNA sequence of Autographa californica nuclear polyhedrosis virus. Virology. 202, 586-605. Baker JC, Beddington RS and Harland RM (1999) Wnt Signalling in Xenopus embryos inhibits bmp4 expression and activates neural development. Genes Dev. 13, 3149-3159. Barberi T, Klivenyi P, Calingasan NY, Lee H, Kawamata H, Loonam K, Perrier AL, Bruses J, Rubio ME, Topf N, Tabar V, Harrison NL, Beal MF, Moore MAS and Studer L (2003) Neural subtype specification of fertilization and nuclear transfer embryonic stem cells and application in parkinsonian mice. Nat. Biotechnol. 21, 1200-1207. Bertrand V, Hudson C, Caillol D, Popovici C and Lemaire P (2003) Neural tissue in ascidian embryos is induced by FGF9/16/20, acting via a combination of maternal GATA and Ets transcription factors. Cell. 115, 615-627. BÃÆ'Â ¶ttcher RT, Pollet N, Delius H and Niehrs C (2003) The transmembrane protein XFLRT3 forms a complex with FGF receptors and promotes FGF signalling. Nat. Cell Biol. 6, 38-44. BÃÆ'Â ¶ttcher RT and Niehrs C (2005) Fibroblast growth factor signaling during early vertebrate development. Endocr. Rev. 26, 63-77. Cohen MA, Itsykson P and Reubinoff BE (2010) The role of FGF-signalling in early neural specification of human embryonic stem cells. Dev. Biol. DOI:10.1016/j.ydbio.2010.01.030 Cotton LM, OBryan MK and Hinton BT (2008) Cellular Signaling by Fibroblast Growth Factors (FGFs) and Their Receptors (FGFRs) in Male Reproduction. Endocr. Rev. 29, 193-216. Dailey L, Ambrosetti D, Mansukhani A and Basilico C (2005) Mechanisms underlying differential responses to FGF signalling. Cytokine Growth Factor Rev. 16, 233-247. Darras S and Nishida H (2001) The BMP/CHORDIN antagonism controls sensory pigment cell specification and differentiation in the ascidian embryo. Dev. Biol. 236, 271-288. De Robertis EM (2006) Spemanns organizer and self-regulation in amphibian embryos. Nature Reviews Molecular Cell Biology. 7, 296-302. Delaune E, Lemaire P and Kodjabachian L (2005) Neural induction in Xenopus requires early FGF signalling in addition to BMP inhibition. Development. 132, 299-310. Du ZW and Zhang SC (2004) Neural differentiation from embryonic stem cells: Which Way? Stem Cells Dev. 13, 372-381. Ekerot M, Stavridis MP, Delavaine L, Mitchell MP, Staples C, Owens DM, Keenan ID, Dickinson RJ, Storey KG and Keyse SM (2008) Negative-feedback regulation of FGF signalling by DUSP6/MKP-3 is driven by ERK1/2 and mediated by Ets factor binding to a conserved site within the DUSP6/MKP-3 gene promoter. Biochem J. 412, 287-298. Gerhart J (1999) 1998 Warkany lecture: Signaling pathways in development. Teratology. 60, 226-239. Goldfarb M (1996) Functions of fibroblast growth factors in vertebrate development. Cytokine Growth Factor Rev. 7, 311-325. Goldfarb M (2005) Fibroblast growth factor homologous factors: evolution, structure and function. Cytokine Growth Factor Rev. 16, 215-220. Gospodarowicz D, Jones KL and Sato G (1974) Purification of a growth factor for ovarian cells from bovine pituitary glands. Proc. Natl. Acad. Sci. 71, 2295-2299. Hamburger V (1988) Ontogeny of neuroembryology. J. Neurosci. 8, 3535-3540. Hatada Y and Stern CD (1994) A fate map of the epiblast of the early chick embryo. Development. 120, 2879-2889. Heeg-Truesdell E and Labonne C (2006) Neural induction in Xenopus requires inhibition of Wnt- ÃŽÂ ²-catenin signalling. Dev. Biol. 298, 71-86. Hemmati-Brivanlou A, Kelly OG and Melton DA (1994) Follistatin, an antagonist of activin, is expressed in the Spemann organizer and displays direct neuralizing activity. Cell. 77, 283-295. Hemmati-Brivanlou A and Melton DA (1994) Inhibition of activin receptor signaling promotes neuralization in Xenopus. Cell. 77, 273-281. Hemmati-Brivanlou A and Melton DA (1997) Vertebrate embryonic cells will become nerve cells unless told otherwise. Cell. 88, 13-17. Itoh N and Ornitz DM. (2004) Evolution of the Fgf and Fgfr gene families. Trends Genet. 20, 563-569. Kishi M, Mizuseki K, Sasai N, Yamazaki H, Shiota K, Nakanishi S and Sasai Y (2000) Requirement of Sox2-mediated signaling for differentiation of early Xenopus neuroectoderm. Development. 127, 791-800. Kouhara H, Hadari YR, Spivak-Kroizman T, Shilling J, Bar-Sagi D, Lax I and Schlessinger J (1997) A Lipid-Anchored Grb2-Binding Protein That Links FGF-Receptor Activation to the Ras/MAPK Pathway. Cell. 89, 693-702. Kudoh T, Concha ML, Houart C, Dawid IB and Wilson SW (2004) Combinatorial Fgf and Bmp signalling patterns the gastrula ectoderm into prospective neural and epidermal domains. Development. 131, 3581-3592. Kuroda H, Fuentealba L, Ikeda A, Reversade B and De Robertis EM (2005) Default neural induction: neuralization of dissociated Xenopus cells is mediated by Ras/MAPK activation. Genes Dev. 19, 1022-1027 Lamb TM, Knecht AK, Smith WC, Stachel SE, Economides AN, Stahl N, Yancopolous GD and Harland RM (1993) Neural induction by the secreted polypeptide noggin. Science. 262, 713-718. Launay C, Fromentoux V, Shi DL and Boucaut JC (1996) A truncated FGF receptor blocks neural induction by endogenous Xenopus inducers. Development. 122, 869-880. Lemaire P, Bertrand V and Hudson C (2002) Early steps in the formation of neural tissue in ascidian embryos. Dev. Biol. 252, 151-169. Li XJ, Du ZW, Zarnowska ED, Pankratz M, Hansen LO, Pearce RA and Zhang SC (2005) Specification of motoneurons from human embryonic stem cells. Nat. Biotechnol. 23, 215-221. Linker C and Stern CD (2004) Neural induction requires BMP inhibition only as a late step, and involves signals other than FGF and Wnt antagonists. Development. 131, 5671-5681. Mason I (2007) Initiation to end point: the multiple roles of fibroblast growth factors in neural development. Nat. Rev. Neurosci. 8, 583-596. Matus DQ, Thomsen GH and Martindale MQ (2007) FGF signaling in gastrulation and neural development in Nematostella vectensis, an anthozoan cnidarian. Dev. Genes Evol. 217, 137-148. McKeehan WL, Wang F and Kan M (1998) The heparan sulfate-fibroblast growth factor family: diversity of structure and function. Prog. Nucleic Acid Res. Mol. Biol. 59, 135-176. Mohammadi M, Mcmahon G, Sun L, Tang C, Hirth P, Yeh BK, Hubbard SR and Schlessinger J (1997) Structures of the tyrosine kinase domain of fibroblast growth factor receptor in complex with inhibitors. Science. 276, 955-960. Mohammadi M, Olsen SK and Ibrahimi OA (2005) Structural basis for fibroblast growth factor receptor activation. Cytokine Growth Factor Rev. 16, 107-137. MuÃÆ'Â ±oz-Sanjuan I and Brivanlou AH (2002). Neural induction, the default model and embryonic stem cells. Nat. Rev. Neurosci. 3, 271-280. Okabe S, Forsberg-Nilsson K, Spiro AC, Segal M and McKay RD (1996) Development of neuronal precursor cells and functional postmitotic neurons from embryonic stem cells in vitro. Mech. Dev. 59, 89-102. Olsen SK, Li JYH, Bromleigh C, Eliseenkova AV, Ibrahimi OA, Lao Z, Zhang F, Linhardt RJ, Joyner AL and Mohammadi M (2006) Structural basis by which alternative splicing modulates the organizer activity of FGF8 in the brain. Genes Dev. 20, 185-198. Ornitz DM, Xu J, Colvin JS, McEwen DG, MacArthur CA, Coulier F, Gao G and Goldfarb M (1996) Receptor specificity of the fibroblast growth factor family. J. Biol. Chem. 271, 15292-15297. Ornitz DM and Itoh N (2001) Fibroblast growth factors. Genome Biology. 2, 3005.1-3005.12. Papanayotou C, Mey A, Birot A-M, Saka Y, Boast S, Smith JC, Samarut J and Stern CD (2008) A Mechanism Regulating the Onset of Sox2 Expression in the Embryonic Neural Plate. PloS. Biol. 6, e2. Pera EM, Ikeda A, Eivers E and De Robertis EM (2003) Integration of IGF, FGF and anti-BMP signals via Smad1 phosphorylation in neural induction. Genes Dev. 17, 3023-3028. Perrier AL, Tabar V, Barberi T, Rubio ME, Bruses J, Topf N, Harrison NL and Studer L (2004) Derivation of midbrain dopamine neurons from human embryonic stem cells. Proc Natl. Acad. Sci. 101, 12543-12548. Pollard SM, Wallbank R, Tomlinson S, Grotewold L and Smith A (2008) Fibroblast growth factor induces a neural stem cell phenotype in foetal forebrain progenitors and during embryonic stem cell differentiation. Mol. Cell. Neurosci. 38, 393-403. Powers CJ, McLeskey SW and Wellstein A (2000) Fibroblast growth factors, their receptors and signaling. Endocr. Relat. Cancer. 7, 165-197. Ribisi S Jr, Mariani FV, Aamar E, Lamb TM, Frank D and Harland RM (2000) Ras-mediated FGF signaling is required for the formation of posterior but not anterior neural tissue in Xenopus laevis. Dev. Biol. 227, 183-196. Sasai Y, Lu B, Steinbeisser H and De Robertis EM (1995) Regulation of neural induction by the Chd and Bmp-4 antagonistic patterning signals in Xenopus. Nature. 376, 333-336. Sasai Y, Lu B, Piccolo S and De Robertis EM (1996) Endoderm induction by the organizer-secreted factors chordin and noggin in Xenopus animal caps. EMBO. J. 15, 4547-4555. Sato SM and Sargent TM (1989) Development of neural inducing capacity in dissociated Xenopus embryos. Dev. Biol. 134, 263-266. Sheng G, dos Reis M and Stern CD (2003) Churchill, a zinc finger transcriptional activator, regulates the transition between gastrulation and neurulation. Cell. 115, 603 -613. Smukler SR, Runciman SB, Xu S and Kooy DV-D (2006) Embryonic stem cells assume a primitive neural stem cell fate in the absence of extrinsic influences. J. Cell Biol. 172, 79-90. Spemann H and Mangold H (1924) Uber lnduktion von embryonalanlagen diirch Implantation artfremder Organisatoren. Arch. EntwMech. Org. 100, 599-638. [Title translation: Induction of embryonic primordia by implantation of organizers from a different species.] Stavridis MP, Lunn JS, Collins BJ and Storey KG (2007) A discrete period of FGF-induced Erk1/2 signalling is required for vertebrate neural specification. Development. 134, 2889-2894. Stern CD (2005) Neural induction: old problem, new findings, yet more questions. Development. 132, 2007-2021. Stern CD (2006) Neural induction: 10 years on from the default model. Current Opinion in Cell Biology. 18, 692-697. Streit A, Lee KJ, Woo I, Roberts C, Jessell TM and Stern CD (1998) Chordin regulates primitive streak development and the stability of induced neural cells, but is not sufficient for neural induction in the chick embryo. Development. 125, 507-19. Streit A and Stern CD (1999) Establishment and maintenance of the border of the neural plate in the chick: involvement of FGF and BMP activity. Mech. Dev. 82, 51-66. Streit A, Berliner AJ, Papanayotou C, Sirulnik A and Stern CD (2000) Initiation of neural induction by FGF signalling before gastrulation. Nature. 406, 74-78. Thisse B and Thisse C (2005) Functions and regulations of fibroblast growth factor signaling during embryonic development. Dev. Biol. 287, 390-402. Tsang M, Friesel R, Kudoh T and Dawid IB (2002) Identification of Sef, a novel modulator of FGF signalling. Nat. Cell Biol. 4, 165-169. Umemori H (2009) Weaving the neuronal net with target-derived fibroblast growth factors. Developmental Growth Differentiation. 51, 263-270. Weinstein DC and Hemmati-Brivanlou A (1997) Neural induction in Xenopus laevis: evidence for the default model. Current Opinion in Neurobiology. 7, 7-12. Wharton KA, Ray RP and Gelbart WM (1993) An activity gradient of decapentaplegic is necessary for the specification of dorsal pattern elements in the Drosophila embryo. Development. 117, 807-822. Wilson PA and Hemmati-Brivanlou A (1995) Induction of epidermis and inhibition of neural fate by Bmp-4. Nature. 376, 331-333. Wilson PA and Hemmati-Brivanlou A (1997) Vertebrate neural induction: inducers, inhibitors, and a new synthesis. Neuron. 18, 699-710. Wilson SI, Graziano E, Harland R, Jessell TM and Edlund T (2000) An early requirement for FGF signalling in the acquisition of neural cell fate in the chick embryo. Curr. Bio. 10, 421-9. Wilson SI, Rydstrom A, Trimborn T, Willert K, Nusse R, Jessell TM and Edlund T (2001) The status of Wnt signalling regulates neural and epidermal fates in the chick embryo. Nature. 411, 325-330. Yoshihiko U, Hirai S-I, Osada S-I, Suzuki A, Mizuno K and Ohno S (1996) Protein Protein Kinase C Activates the MEK-ERK Pathway in a Manner Independent of Ras and Dependent on Raf. J. Biol. Chem. 271, 23512-23519. 24 Randeep Dhariwal

Saturday, May 30, 2020

Leadership Lessons for MBA Applicants From Super Tuesday

This week the focus of the lengthy (many might argue too lengthy) presidential campaign has been on Super Tuesday. This high-stakes day for the Republican contenders has ten states holding primaries, and 410 delegates — 17.9% of the total number of Republican delegates — up for grabs. So what attributes have made Mitt Romney, Rick Santorum, Newt Gingrich and Ron Paul the last candidates standing? And what can MBA applicants learn from the strengths and weaknesses of these contenders? Whether running for president or campaigning for a seat in a top MBA program, the winning candidates must demonstrate a record of achievement, impact, and consistent integrity. Admissions committees and voters prize these bedrock qualities of true leadership. How does the Republican field fare when examined against these criteria: Achievement. Romney’s robust resume, including stints as founder of Bain Capital, CEO at Bain Company, and governor of Massachusetts, has become his primary strength, while Gingrich points to â€Å"7,000 votes, over 1,500 speeches, thousands of television and radio appearances, thousands of articles and op-eds and 24 books.† Santorum touts his legislative experience – five years as a congressman and twelve years as a senator. Dr. Paul points to decades of service both as a physician and a congressman. Impact. They’ve been busy, certainly, but how have their actions made a difference? Romney boasts of transforming the fortunes of Massachusetts from job erosion and budget deficit when he took office, to job creation and a $2 billion â€Å"rainy day fund† when he left. Gingrich points to his â€Å"Contract with America† and the success of 1994’s â€Å"Republican Revolution† as evidence of his leadership ability. Paul and Santorum have struggled to demonstrate impact on the same level. For Santorum, introducing the bill to the Senate that ended partial birth abortions is a claim of positive impact. For Paul, it has been his consistent voting record and principled opposition to an expanded government. Integrity/consistency. Romney and Gingrich face challenges here. Many voters wonder if Romney’s current positions are based on true conviction or political expediency. Gingrich has been dogged by a reputation for â€Å"volatility,† ethics issues when he was Speaker of the House, and a messy personal life.   Santorum and Paul have more consistent and reliable records, but can come across as either sanctimonious or too extreme to be electable. Fortunately for MBA applicants, â€Å"running† for a seat in a great b-school doesn’t entail grueling travel, rubber-chicken dinners, and having everything you say used against you. To earn the votes of MBA admissions committees, however, qualified MBA applicants must also display accomplishments, impact, and integrity. These are the critical ingredients adcoms seek in the future leaders who will add value not only to their MBA class, but also to the business world for years to come. Another critical difference between the presidential and MBA selection process is numbers. Voters choose the one person they think is best qualified for the job. Top MBA programs will accept hundreds of candidates. As Soojin Kwon Koh, director of admissions at the Michigan Ross School of Business, so cogently wrote in a recent blog post, â€Å"Remember, b-school admission isnt about admissibility; its about bringing the right group of people together to create a unique learning community.† The Republican presidential candidate who ultimately does the best job demonstrating achievement, impact, and integrity is probably going to be the one competing with Barack Obama in November. And qualified MBA candidates who do the best job on all three criteria are most likely to be seen as deserving a spot in the â€Å"unique learning community† of their choice. By Linda Abraham, president and founder of Accepted.com and author of the new, definitive book on MBA admissions, MBA Admission for Smarties: The No-Nonsense Guide to Acceptance at Top Business Schools. Photo credit: DonkeyHotey Article first published as Leadership Lessons for MBA Applicants From Super Tuesday on Technorati.