Patterning of Germ Line and Soma from Pluripotent Cells of Axolotl Embryos.
Patterning of Germ Line and Soma from Pluripotent Cells of Axolotl Embryos.
批准号:
G0900147/1
负责人:
Andrew Johnson
金额:
$46.66万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2009
资助国家:
英国
项目状态:
已结题
起止时间:
2009 至 --
中文摘要
精子和卵细胞是由胚胎发育早期形成的细胞产生的,这种细胞被称为原始生殖细胞,或称PGC。了解胚胎发育过程中PGCs是如何建立的很重要,因为这将导致生育治疗,还因为形成不良的精子和卵子可能会导致胚胎出现发育问题。人类对PGCs是如何形成的知之甚少,因为不可能用人类胚胎进行研究。此外,与人类有许多共同特征的小鼠胚胎也是在子宫中发育的,而且非常小,因此很难获得。我们开发了一种实验系统,使用了一种名为axolotl的火蜥蜴胚胎。与哺乳动物的胚胎不同,axolotl的胚胎非常大,而且在水中发育,因此很容易一次获得数百个胚胎。此外,因为胚胎不是在子宫中发育的,所以可以通过自然受精获得胚胎,而不会对成年人造成伤害。然而,在这项研究中,axolotl的独特之处在于,axolotl胚胎使用与人类相同的基因产生PGCs,这使得参与制造PGCs的基因很容易识别。我们开发了一种方法,使用非常特殊的条件一次生产数千个PGC。这将使我们能够识别参与这一过程的基因。我们已经确定了一种以前未知的细胞相互交谈的方式,这是产生PGC所必需的。我们的实验结果将使我们能够开发出从胚胎干细胞生产精子细胞和卵子的新方法,这是现代医学的一个主要目标。
英文摘要
Sperm cells and egg cells are produced from cells that form early in embryonic development called primordial germ cells, or PGCs. Understanding how PGCs are established during development of the embryos is important because it will lead to fertility treatments, and also because poorly formed sperm and eggs can give rise to embryos with developmental problems. Little is known about how PGCs are formed in humans because it is impossible to work with human embryos. In addition, mouse embryos, which share many characteristics with humans, also develop in a uterus, and are very small, and therefore are difficult to access. We developed an experimental system using embryos from a salamander called an axolotl. Unlike embryos from mammals, axolotl embryos are very large and they develop in water, and therefore hundreds of embryos are easy to acquire at a time. Also, because they do not develop in a uterus, the embryos can be acquired from natural fertilization, without harm to the adults. What makes axolotls unique for this study, however, is the fact that axolotl embryos produce PGCs using the same genes that humans do, and this makes the genes involved in making PGCs easy to identify. We developed a way to produce thousands of PGCs at a time using very specific conditions. This will allow us to identify the genes involved in this process. We have identified a previously unknown way for cells to talk to each other that is essential for producing PGCs. The results from our experiments will allow us to develop new ways to produce sperm cells and eggs from embryonic stem cells, which is a major goal of modern medicine.
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