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1.
原始生殖细胞(primordial germ cells,PGCs)起源于原肠胚阶段,是生殖细胞的前体细胞,由特定细胞经过一系列分子调控特化而成。PGCs完成特化后迁移进入生殖嵴,在迁移过程中存在一系列的表观遗传修饰的动态变化,包括DNA甲基化和组蛋白修饰等。PGCs迁移的后期会发生两性分化,迁入生殖嵴的PGCs影响原始性腺的发育。有关小鼠PGCs特化、迁移/增殖和两性分化等的机制已得到了广泛研究,而在人类中则由于伦理以及材料获取困难等因素还有待更深入的研究。该文综述了人原始生殖细胞(human PGCs,h PGCs)的特化机制、表观遗传调节在其特化和迁移过程中的作用以及h PGCs对性腺形成的影响。  相似文献   

2.
生殖细胞是多细胞生物体遗传物质传递的载体,在发育生物学、临床医学及畜牧业生产等领域中具有广阔的应用前景。原始生殖细胞作为胚胎体内最早出现的生殖细胞,在发育过程中受多种信号因子的诱导,发生特化、迁移、分化及减数分裂,最终形成单倍体的配子,此过程在遗传学和表观遗传学方面受到严格的调控。另外,多能性干细胞向生殖细胞的分化以及生殖细胞的体外培养方面在最近均取得了较大的进展。该文将主要围绕原始生殖细胞,综述最近几年来关于生殖细胞形成中的转录调控及体外培养体系的进展。  相似文献   

3.
冷丽智  林戈  卢光琇 《生物磁学》2011,(18):3569-3572
生殖细胞的发生是发育和遗传的基础。在几乎所有哺乳动物中,原始生殖细胞(primordial germ cell,PGC)均由近端上胚层体细胞在周边细胞特定的信号诱导下特化而成。目前的研究已经发现一些与生殖细胞特化有关的信号分子和关键转录调控元件,以及特化后生殖细胞获得的与体细胞不同的生物特性。生殖细胞的特化是一个结合了体细胞发育程序的抑制、细胞多能性程序的启动和全基因组表观遗传重编程三个方面的动态的复杂过程。多能性干细胞(胚胎干细胞或诱导型多能干细胞)具有发育全能性,能分化为机体任何一种细胞类型,包括生殖细胞。利用多能性干细胞体外分化形成生殖细胞有助于深入系统地研究配子发生的调控机制,为干细胞在不育症治疗方面的应用带来新希望。  相似文献   

4.
生殖细胞的发生是发育和遗传的基础。在几乎所有哺乳动物中,原始生殖细胞(primordial germ cell,PGC)均由近端上胚层体细胞在周边细胞特定的信号诱导下特化而成。目前的研究已经发现一些与生殖细胞特化有关的信号分子和关键转录调控元件,以及特化后生殖细胞获得的与体细胞不同的生物特性。生殖细胞的特化是一个结合了体细胞发育程序的抑制、细胞多能性程序的启动和全基因组表观遗传重编程三个方面的动态的复杂过程。多能性干细胞(胚胎干细胞或诱导型多能干细胞)具有发育全能性,能分化为机体任何一种细胞类型,包括生殖细胞。利用多能性干细胞体外分化形成生殖细胞有助于深入系统地研究配子发生的调控机制,为干细胞在不育症治疗方面的应用带来新希望。  相似文献   

5.
哺乳动物早期发育过程伴随着细胞的增殖、迁移以及细胞命运的层级特化。体外干细胞系在合适刺激下的定向分化可以部分模拟早期胚胎发育及细胞命运决定的历程。在细胞命运层级特化过程中,细胞通过多重调控机制协调全能性相关基因的维持及关闭、特定谱系关键基因的时空特异性表达,表观遗传调控在该过程中发挥着十分重要的作用。开展针对体内胚胎发育及体外干细胞定向分化过程中细胞命运决定表观调控机制的研究,将推动对发育生物学基本科学问题的认识,同时也将进一步推动再生医学的发展,最终服务于国家人口健康发展战略。  相似文献   

6.
干细胞具有自我更新和多种分化潜能的特性。干细胞向分化细胞的转变涉及到基因表达模式的改变,与自我更新有关的基因关闭.与细胞特化有关的基因激活。表观遗传调控机制,包括DNA甲基化、组蛋白修饰和微RNA(microRNA)介导的基因调控,在多个层面上控制发育过程中基因表达。近年研究表明,动态的表观遗传调控机制在干细胞自我更新和分化中起关键作用。  相似文献   

7.
果蝇原始生殖细胞(primordial germ cells,PGCs)是生殖干细胞的前体。该群细胞在果蝇幼虫期经历特征性的发育过程,这一过程涉及程序化的细胞命运及行为改变。为系统探讨mi RNA在上述PGCs命运调控中的作用,对雌蝇幼虫发育中的性腺组织进行了mi RNA表达谱分析,发现一组mi RNA分子持续在性腺组织细胞中表达。应用GAL4/UAS遗传操作系统验证了部分候选mi RNAs的功能,获得了mi R-33和mi R-278参与调控果蝇幼虫PGCs有序分化的实验证据。该文为发育过程中功能性mi RNA研究工作的开展提供了有益的借鉴。  相似文献   

8.
哺乳动物胚胎植入子宫后,随着原肠运动的发生,胚胎开始向三个胚层分化,同时生殖细胞开始形成和特化。胚胎最早期的生殖细胞被称为原始生殖细胞(primordial germ cell, PGC),雌雄原始生殖细胞增殖并迁移到生殖嵴,持续增殖后分别进入减数分裂前期和有丝分裂阻滞,分化形成卵原细胞和精原干细胞,经过复杂的发育过程分化形成卵母细胞和精子。该文回顾了小鼠和人类的原始生殖细胞的形成和特化过程,并且对小鼠和人类精原干细胞的分子特征和体外培养体系进行了总结。  相似文献   

9.
生殖细胞特化是发育和遗传的基础。原始生殖细胞(精子和卵子的前体细胞)的特化包括3个主要事件:体细胞程序的抑制、潜在全能性的获得、基因组范围内的表观遗传重编程。含PR域蛋白1(PR domain-containing1,PRDM1)和PRDM14是生殖细胞系产生的关键转录调节因子。PRDMl要抑制体细胞程序,而PRDM14主要调节潜在全能性的获得及表观遗传学重编程。此外,PRDM家族蛋白PRDM9在生殖细胞减数分裂中有重要作用。  相似文献   

10.
为探讨原始生殖细胞(primordial germ cells,PGCs)在体外长期增殖、生长并长期保持分化潜能的新方法,我们将PGCs分别与睾丸支持细胞(Sertoli cells,SCs)和同源生殖嵴成纤维细胞共培养。结果与SCs共培养的PGCs集落明显多于同源生殖嵴成纤维细胞共培养PGCs集落,传代次数也显著多于同源生殖嵴成纤维细胞.目前与SCs共培养的PGCs已成功传代培养至了第51代。因此我们认为PGCs与SCs共培养,可有效提高原始生殖细胞在体外的增殖能力并可长期维持干细胞的特性。  相似文献   

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M Tada  T Tada  L Lefebvre  S C Barton    M A Surani 《The EMBO journal》1997,16(21):6510-6520
Genomic reprogramming of primordial germ cells (PGCs), which includes genome-wide demethylation, prevents aberrant epigenetic modifications from being transmitted to subsequent generations. This process also ensures that homologous chromosomes first acquire an identical epigenetic status before an appropriate switch in the imprintable loci in the female and male germ lines. Embryonic germ (EG) cells have a similar epigenotype to PGCs from which they are derived. We used EG cells to investigate the mechanism of epigenetic modifications in the germ line by analysing the effects on a somatic nucleus in the EG-thymic lymphocyte hybrid cells. There were striking changes in methylation of the somatic nucleus, resulting in demethylation of several imprinted and non-imprinted genes. These epigenetic modifications were heritable and affected gene expression as judged by re-activation of the silent maternal allele of Peg1/Mest imprinted gene in the somatic nucleus. This remarkable change in the epigenotype of the somatic nucleus is consistent with the observed pluripotency of the EG-somatic hybrid cells as they differentiated into a variety of tissues in chimeric embryos. The epigenetic modifications observed in EG-somatic cell hybrids in vitro are comparable to the reprogramming events that occur during germ cell development.  相似文献   

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14.
Mouse primordial germ cells (PGCs) migrate from the base of the allantois to the genital ridge. They proliferate both during migration and after their arrival, until initiation of the sex-differentiation of fetal gonads. Then, PGCs enter into the prophase of the first meiotic division in the ovary to become oocytes, while those in the testis become mitotically arrested to become prospermatogonia. Growth regulation of mouse PGCs has been studied by culturing them on feeder cells. They show a limited period of proliferation in vitro and go into growth arrest, which is in good correlation with their developmental changes in vivo. However, in the presence of multiple growth signals, PGCs can restart rapid proliferation and transform into pluripotent embryonic germ (EG) cells. Observation of ectopic germ cells and studies of reaggregate cultures suggested that both male and female PGCs show cell-autonomous entry into meiosis and differentiation into oocytes if they were set apart from the male gonadal environments. Recently, we developed a two-dimensional dispersed culture system in which we can examine transition from the mitotic PGCs into the leptotene stage of the first meiotic division. Such entry into meiosis seems to be programmed in PGCs before reaching the genital ridges and unless it is inhibited by putative signals from the testicular somatic cells.  相似文献   

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The development of primordial germ cells (PGCs) undergoes epigenetic modifications. The study of histone methylation in regulating PGCs is beneficial to understand the development and differentiation mechanism of germ stem cells. Notably, it provides a theoretical basis for directed induction and mass acquisition in vitro. However, little is known about the regulation of PGC formation by histone methylation. Here, we found the high enrichment of H3K4me2 in the blastoderm, genital ridges, and testis. Chromatin immunoprecipitation sequencing was performed and the results revealed that genomic H3K4me2 is dynamic in embryonic stem cells, PGCs, and spermatogonial stem cells. This trend was consistent with the H3K4me2 enrichment in the gene promoter region. Additionally, narrow region triggered PGC‐related genes (Bmp4, Wnt5a, and Tcf7l2) and signaling pathways (Wnt and transforming growth factor‐β). After knocking down histone methylase Mll2 in vitro and vivo, the level of H3K4me2 decreased, inhibiting Cvh and Blimp1 expression, then repressing the formation of PGCs. Taken together, our study revealed the whole genome map of H3K4me2 in the formation of PGCs, contributing to improve the epigenetic study in PGC formation and providing materials for bird gene editing and rescue of endangered birds.  相似文献   

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Epigenetic reprogramming in early germ cells is critical toward the establishment of totipotency, but investigations of the germline events are intractable. An objective cell culture-based system could provide mechanistic insight on how the key determinants of primordial germ cells (PGCs), including Prdm14, induce reprogramming in germ cells to an epigenetic ground state. Here we show a Prdm14-Klf2 synergistic effect that can accelerate and enhance reversion of mouse epiblast stem cells (epiSCs) to a naive pluripotent state, including X reactivation and DNA demethylation. Notably, Prdm14 alone has little effect on epiSC reversion, but it enhances the competence for reprogramming and potentially PGC specification. Reprogramming of epiSCs by the combinatorial effect of Prdm14-Klf2 involves key epigenetic changes, which might have an analogous role in PGCs. Our study provides a paradigm toward a systematic analysis of how other key genes contribute to complex and dynamic events of reprogramming in the germline.  相似文献   

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