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1.
<正>常的精子发生是一个由多种因子参与的精密、有序调控的生理过程。精原干细胞的自我更新维持了精原干细胞本身数量的稳定,而其分化成为精原祖细胞的节奏保障了形成精子的规模。睾丸微环境(niche)在精原干细胞自我更新和分化过程中起着举足轻重的作用。该文简要描述了精子发生过程中精原干细胞及其微环境形成过程中所涉及的主要细胞因子及其调控机制,并探讨了该研究过程中所遇到的问题,最后展望了相关基础研究在临床医疗和科学研究领域中的应用前景。  相似文献   

2.
精原干细胞(spermatogonial stem cells,SSCs)是指睾丸内位于曲精细管基膜上既能自我更新维持自身适量恒定,又能定向分化产生精母细胞的一类原始精原细胞。随着干细胞深入的研究,人们发现了一种控制着干细胞可塑性与命运的微环境,此微环境被称为干细胞niche,干细胞niche由niche细胞、细胞外基质、细胞因子等构成。精原干细胞niche是由黏附因子、生长因子、支持细胞、间质细胞以及小管周肌肉细胞组成。大量的研究表明支持细胞在睾丸中是主要的成体细胞,通过分泌可溶性的因子来影响精原干细胞niche的结构与功能,同时支持细胞还能够间接的影响其他的成体细胞。随着年龄的增长使得精原干细胞niche的功能下降。精原干细胞数量以及精原干细胞niche为我们研究组织特异性干细胞生物学以及保持再生组织平衡提供了很宝贵的线索,精原干细胞对于保持组织的自我更新具有很重要的作用,并且受到人们大量的关注,然而精原干细胞niche也起到很重要的作用,它为治疗一些疾病提供新途径.本文将综述精原干细胞niche及其变化对精原干细胞功能调节的相关研究进展。  相似文献   

3.
王胜男  司维 《生命科学》2020,32(7):664-668
合适的动物模型对于人类疾病的研究和药物开发至关重要。精原干细胞是位于睾丸组织曲细精管基底膜上的一类具有自我更新和分化潜能的成体干细胞,可以定向分化产生精子。利用精原干细胞作为基因编辑的对象,生产基因编辑的精子进行受精有望成为建立基因编辑动物疾病模型的一条有效途径。该文就精原干细胞的生物学特征、体外培养以及精原干细胞介导的基因编辑动物模型的进展和优缺点进行了阐述。  相似文献   

4.
生殖干细胞是具有自我更新能力的一群生殖细胞,充当配子生成的源泉。果蝇生殖干细胞的特征在于通过不对称分裂产生两个子代细胞,一个通过自我更新维持干细胞特性,另一个则进行分化。生殖干细胞的命运受其周围的微环境——"干细胞niche"控制,而"niche"的功能又通过干细胞的外源和内源信号间的相互作用来完成。小分子RNA通过复杂的RNAi途径调控基因的表达。大量证据表明生殖干细胞的维持和分化需要小分子RNA参与,小分子RNA生成的紊乱会导致干细胞的"丢失"或"未分化"。该文综述了小分子RNA对果蝇生殖干细胞命运调控的研究进展,并讨论新发现的小分子RNA在生殖干细胞命运决定中的相关功能。  相似文献   

5.
男性不育已经成为影响人类生殖健康的重大疾病。精子发生是精原干细胞自我更新和分化为精子的复杂过程。这个过程受睾丸微环境的精细调控。将讨论精子发生与睾丸微环境的关系,简要介绍睾丸微环境的国内外研究动态,展望睾丸微环境的研究热点和前沿。这将为阐释精子发生的机制提供新的调控机理,对治疗男性不育,预防子代出生缺陷,研发新型男性避孕方法等都具有重要意义。  相似文献   

6.
哺乳动物精原干细胞的增殖分化及其移植技术的应用   总被引:1,自引:0,他引:1  
精原干细胞(spermatogonial stem cells,SSCs)是指位于睾丸生精小管基膜上既能自我更新以维持自身群体数量恒定,又能定向分化形成精母细胞,最终形成精子的一类成体干细胞.鉴于其独具的生物学特性,SSCs的研究在干细胞生物学、医学、畜牧业等领域均具有重要意义.通过其建立转基因动物模型,对研究精子的发生机制、重建不育个体的生精功能等都有着重要意义.综述了哺乳动物SSCs的形态特性,增殖分化特性及其调控因素,简述了SSCs移植技术的应用.  相似文献   

7.
精原干细胞是精子发生的基础,是永久分化成精子的克隆源,它既可以自我更新维持体内干细胞的数量,又可以增殖分化形成各阶段的生精细胞直至成熟精子。本文以22~25日龄Wistar-Iamichi大鼠为研究对象,利用两步酶消化法分离得到睾丸曲细精管细胞悬液,根据精原干细胞与曲细精管细胞悬液中体细胞(支持细胞及少量的管周细胞)及各级分化的生精细胞贴壁能力及对细胞外基质粘附力的不同,将大鼠精原干细胞进行纯化。经纯化后,5只大鼠的睾丸可以得到约3×10~5个精原干细胞,该精原干细胞在体外培养可形成克隆,并且该克隆可表达精原干细胞特异的标记基因GFRα1和CDH1。本文所介绍的高效分离和纯化大鼠精原干细胞的方法,操作简便,且得到的精原干细胞具有很高的活力和增殖能力,该方法为今后大鼠精原干细胞的长期培养及操作研究奠定了基础。  相似文献   

8.
精原干细胞(SSC)是存在于睾丸生精小管,不断增殖和分化以产生精子的男性生殖干细胞。SSC的冻存和移植被认为是未成年肿瘤患儿生殖保护的重要手段。近年来研究报道表明人类和鼠类的SSC可以在体内和体外分化为具有多能性的细胞,这些在表现型和功能上都和胚胎干细胞有一定的相似性。因此,精原干细胞SSC也被认为是很有希望成为再生医学中基于干细胞治疗方面的新来源。  相似文献   

9.
精原干细胞(spermatogonial stem cells,SSCs)是雄性生殖系干细胞,位于睾丸曲细精管基膜上,既具有自我更新潜能,又具有定向分化潜能,是自然状态下出生后动物体内在整个生命过程中进行自我更新并能将基因传递至子代的惟一成体干细胞。根据国内外最新相关进展,系统评述了猪SSCs分离纯化、体外培养及移植等方面的现状及问题。  相似文献   

10.
精原干细胞是存在于雄性动物睾丸内曲细精管基底膜上的生殖系干细胞。精原干细胞一方面通过自我更新来维持其在整个生命周期中自身群体的数量稳定,另一方面可以在精子发生过程中不断地分化成为各个阶段的生殖细胞并最终形成精子,从而将亲代携带的遗传信息传递给子代。目前在体外条件下可以进行精原干细胞的长期培养,并将其诱导分化为各级生精细胞。虽然对啮齿类动物精原干细胞的研究较为成熟,但是对大动物精原干细胞的研究进展较为缓慢。大动物精原干细胞的研究对了解人类相关生理机制和疾病至关重要,并且猪、牛和羊等农业动物的精原干细胞的研究为优良种畜扩繁和制备具有重要经济价值的基因修饰家畜提供新的手段。本文在介绍精原干细胞的特征基础上,重点综述了大动物精原干细胞的研究进展,探讨了目前研究中面临的主要问题和其未来应用前景,以期为动物新型替代繁殖技术、转基因动物制备、治疗雄性不育以及服务于再生医学提供新思路、新方法。  相似文献   

11.
Spermatogonial stem cells are required for the initiation of spermatogenesis and the continuous production of sperm. In addition, they can acquire pluripotency and differentiate into derivatives of the three embryonic germ layers when cultured in the appropriate conditions. Therefore, understanding the signaling pathways that lead to self-renewal or differentiation of these cells is of paramount importance for the treatment of infertility, the development of male contraceptives, the treatment of testicular cancers, and ultimately for tissue regeneration. In this report, we studied some of the signaling pathways triggered by glial cell line-derived neurotrophic factor (GDNF), a component of the spermatogonial stem cell niche produced by the somatic Sertoli cells. As model systems, we used primary cultures of mouse spermatogonial stem cells, a mouse spermatogonial stem cell line and freshly isolated testicular tubules. We report here that GDNF promotes spermatogonial stem cell proliferation through activation of members of the Src kinase family, and that these kinases exert their action through a PI3K/Akt-dependent pathway to up-regulate N-myc expression. Thus, to proliferate, spermatogonial stem cells activate mechanisms that are similar to the processes observed in brain stem cells and lung progenitors.  相似文献   

12.
13.
Spermatogonial stem cells, infertility and testicular cancer   总被引:1,自引:0,他引:1  
The spermatogonial stem cells (SSCs) are responsible for the transmission of genetic information from an individual to the next generation. SSCs play critical roles in understanding the basic reproductive biology of gametes and treatments of human infertility. SSCs not only maintain normal spermatogenesis, but also sustain fertility by critically balancing both SSC self-renewal and differentiation. This self-renewal and differentiation in turn is tightly regulated by a combination of intrinsic gene expression within the SSC as well as the extrinsic gene signals from the niche. Increased SSCs self-renewal at the expense of differentiation result in germ cell tumours, on the other hand, higher differentiation at the expense of self-renewal can result in male sterility. Testicular germ cell cancers are the most frequent cancers among young men in industrialized countries. However, understanding the pathogenesis of testis cancer has been difficult because it is formed during foetal development. Recent studies suggest that SSCs can be reprogrammed to become embryonic stem (ES)-like cells to acquire pluripotency. In the present review, we summarize the recent developments in SSCs biology and role of SSC in testicular cancer. We believe that studying the biology of SSCs will not only provide better understanding of stem cell regulation in the testis, but eventually will also be a novel target for male infertility and testicular cancers.  相似文献   

14.
The continuous production of mammalian sperm is maintained by the proliferation and differentiation of spermatogonial stem cells that originate from primordial germ cells (PGCs) in the early embryo. Although spermatogonial stem cells arise from PGCs, it is not clear whether fetal male germ cells function as spermatogonial stem cells able to produce functional sperm. In the present study, we examined the timing and mechanisms of the commitment of fetal germ cells to differentiate into spermatogonial stem cells by transplantation techniques. Transplantation of fetal germ cells into the seminiferous tubules of adult testis showed that donor germ cells, at 14.5 days postcoitum (dpc), were able to initiate spermatogenesis in the adult recipient seminiferous tubules, whereas no germ cell differentiation was observed in the transplantation of 12.5-dpc germ cells. These results indicate that the commitment of fetal germ cells to differentiate into spermatogonial stem cells initiates between embryonic days 12.5 and 14.5. Furthermore, the results suggest the importance of the interaction between germ cells and somatic cells in the determination of fetal germ cell differentiation into spermatogonial stem cells, as normal spermatogenesis was observed when a 12.5-dpc whole gonad was transplanted into adult recipient testis. In addition, sperm obtained from the 12.5- dpc male gonadal explant had the ability to develop normally if injected into the cytoplasm of oocytes, indicating that normal development of fetal germ cells in fetal gonadal explant occurred in the adult testicular environment.  相似文献   

15.
16.
To study self-renewal and differentiation of spermatogonial stem cells, we have transplanted undifferentiated testicular germ cells of the GFP transgenic mice into seminiferous tubules of mutant mice with male sterility, such as those dysfunctioned at Steel (Sl) locus encoding the c-kit ligand or Dominant white spotting (W) locus encoding the receptor c-kit. In the seminiferous tubules of Sl/Sl(d) or Sl(17H)/Sl(17H) mice, transplanted donor germ cells proliferated and formed colonies of undifferentiated c-kit (-) spermatogonia, but were unable to differentiate further. However, these undifferentiated but proliferating spermatogonia, retransplanted into Sl (+) seminiferous tubules of W mutant, resumed differentiation, indicating that the transplanted donor germ cells contained spermatogonial stem cells and that stimulation of c-kit receptor by its ligand was necessary for maintenance of differentiated type A spermatogonia but not for proliferation of undifferentiated type A spermatogonia. Furthermore, we have demonstrated that their transplantation efficiency in the seminiferous tubules of Sl(17H)/Sl(17H) mice depended upon the stem cell niche on the basement membrane of the recipient seminiferous tubules and was increased by elimination of the endogenous spermatogonia of mutant mice from the niche by treating them with busulfan.  相似文献   

17.
Germline stem cells   总被引:1,自引:0,他引:1  
Sperm and egg production requires a robust stem cell system that balances self-renewal with differentiation. Self-renewal at the expense of differentiation can cause tumorigenesis, whereas differentiation at the expense of self-renewal can cause germ cell depletion and infertility. In most organisms, and sometimes in both sexes, germline stem cells (GSCs) often reside in a defined anatomical niche. Factors within the niche regulate a balance between GSC self-renewal and differentiation. Asymmetric division of the germline stem cell to form daughter cells with alternative fates is common. The exception to both these tendencies is the mammalian testis where there does not appear to be an obvious anatomical niche and where GSC homeostasis is likely accomplished by a stochastic balance of self-renewal and differentiation and not by regulated asymmetric cell division. Despite these apparent differences, GSCs in all organisms share many common mechanisms, although not necessarily molecules, to guarantee survival of the germline.  相似文献   

18.
Understanding the mechanisms of stem cell proliferation, self-renewal and differentiation is fundamental for stem cell biology. Stem cells proliferate by either symmetric division or asymmetric division. Through asymmetric division, stem cells self-renew and differentiate to mature cells. Stem cells could also divide symmetrically to give rise to differentiated cells. Besides intrinsic cues, proliferation and self-renewal of most stem cell types also rely on extrinsic signals from niche or surrounding cells. Failure in any of these factors may result in disturbed stem cell proliferation, self-renewal or differentiation and/or generate cancer stem cells that drive cancer development.  相似文献   

19.
Spermatogenesis is the process by which spermatogonial stem cells divide and differentiate into sperm. The role of growth factor receptors in regulating self-renewal and differentiation of spermatogonial stem cells remains largely unclear. This study was designed to examine Gfra1 receptor expression in immature and adult mouse testes and determine the effects of Gfra1 knockdown on the proliferation and differentiation of type A spermatogonia. We demonstrated that GFRA1 was expressed in a subpopulation of spermatogonia in immature and adult mice. Neither Gfra1 mRNA nor GFRA1 protein was detected in pachytene spermatocytes and round spermatids. GFRA1 and POU5F1 (also known as OCT4), a marker for spermatogonial stem cells, were co-expressed in a subpopulation of type A spermatogonia from 6-day-old mice. In addition, the spermatogonia expressing GFRA1 exhibited a potential for proliferation and the ability to form colonies in culture, which is a characteristic of stem cells. RNA interference assays showed that Gfra1 small interfering RNAs (siRNAs) knocked down the expression of Gfra1 mRNA and GFRA1 protein in type A spermatogonia. Notably, the reduction of Gfra1 expression by Gfra1 siRNAs induced a phenotypic differentiation, as evidenced by the elevated expression of KIT, as well as the decreased expression of POU5F1 and proliferating cell nuclear antigen (PCNA). Furthermore, Gfra1 silencing resulted in a decrease in RET phosphorylation. Taken together, these data indicate that Gfra1 is expressed dominantly in mouse spermatogonial stem cells and that Gfra1 knockdown leads to their differentiation via the inactivation of RET tyrosine kinase, suggesting an essential role for Gfra1 in spermatogonial stem cell regulation.  相似文献   

20.
阐述了胶质细胞源性神经营养因子(GDNF)及其受体与精原干细胞增殖和分化的关系。GDNF能够促进未分化的精原细胞增长,并且可以调节精原干细胞自我更新与分化的微环境,参与其分化的第一步,是精原干细胞存活的重要营养因子。  相似文献   

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