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1.
组蛋白磷酸化是组蛋白氨基酸残基的磷酸化修饰,是一类重要的翻译后修饰,与有丝分裂和减数分裂的染色质压缩、染色质功能调节、转录的激活与抑制、DNA损伤修复以及物质代谢等多种机制相关。文章对国内外近10年多种代表性生物精子发生(孢子形成)的相关文献进行总结,论述了组蛋白磷酸化在精子发生中调控蛋白质作用因子的结合位点、调控减数分裂过程中的DNA复制与重组、保障正确的染色质重塑、对减数分裂后的成熟精子核的完全包装等重要功能。这些发现加深了人们对于组蛋白及其翻译后修饰在精子发生及分化中作用的理解。  相似文献   

2.
闫琳  陈建  宁岩  韩春生 《生物工程学报》2023,39(10):4108-4122
减数分裂起始是配子发生的关键步骤。目前人们已经发现了一些减数分裂起始所必需的基因,但是对于该过程的调控基因及其作用机制还知之甚少。本实验室先前建立了精原干细胞(spermatogonial stem cells,SSCs)体外培养以及体外诱导减数分裂起始的技术体系,为更好地探究减数分裂起始调控基因及作用机理提供了良好的条件。实验室前期研究发现RNA结合蛋白RBFOX2可能调控减数分裂起始,然而RBFOX2在生殖细胞的减数分裂起始过程中的功能及作用机制还需深入研究。本研究利用慢病毒介导的转基因技术产生了RBFOX2敲降的精原干细胞系;发现RBFOX2敲降后,精原干细胞的自我更新、增殖以及分化未发生显著变化,但是减数分裂无法启动,分化型精原细胞发生明显凋亡。这一结果进一步显示了RNA结合蛋白在雄性动物减数分裂起始中的重要功能。  相似文献   

3.
精子发生过程中的转录调控是由一系列基因表达和调控事件组成的复杂过程,影响精子的形成、质量和功能。转录调控过程介导与精子形成密切相关的基因,包括精子特异性基因、组蛋白基因和其他转录因子的基因表达。这些基因的表达和沉默受到转录因子、表观遗传修饰和非编码RNA等多种机制的调控。此外,转录调控在精子发生的不同阶段起着不同的作用,包括精原干细胞的自我更新和分化、精母细胞的减数分裂和精子细胞的变形成熟。深入理解精子发生中的转录调控机制对于研究精子形成的生物学过程、解析生育障碍的病理机制以及开发生育问题相关的治疗方法具有重要的意义。  相似文献   

4.
单羧酸转运蛋白(monocarboxylate transporters,MCTs)是哺乳动物细胞膜上一类重要的跨膜转运蛋白,主要负责乳酸盐、丙酮酸盐、酮体等单羧酸类化合物的跨膜转运。MCT基因在睾丸生精上皮细胞发育、分化过程中具有不同程度表达,并通过多种途径调节精子发生过程。开展对MCT基因在精子发生过程的作用研究有助于人们从能量代谢角度进一步阐明生精细胞发育和精子发生的调控机制。本研究着重从MCT在精子发生过程中的表达定位、功能及调节机制进行综述。  相似文献   

5.
张秀军  刘美玲  贾孟春 《遗传》2011,33(12):1300-1307
哺乳动物精子发生于睾丸的生精小管, 是一个高度复杂的细胞分裂和分化过程, 涉及到错综复杂的基因表达调控过程, 包括转录和转录后水平的调控, 其中任何一个环节出错都可能导致雄性不育。因此, 揭示精子发生过程中的分子调控机理, 对发现新的男性避孕方法及治疗不育症有重要意义。文章重点综述了近年有关雄激素及其受体、雌激素及其受体、转录因子和染色质相关因子在精子发生转录水平调控的研究进展。  相似文献   

6.
长链非编码RNA(lncRNA)一般是指大于200 nt的RNA,位于细胞核内或胞浆中,不参与蛋白质编码,以RNA形式在表观遗传调控、转录调控以及转录后调控等多个层面上调控基因的表达水平。哺乳动物精子发生是一个精细调控的过程,通过雄性生殖细胞分裂和分化形成成熟精子,且精子发生受到不同阶段特异性基因表达的严格调控,而特异性基因表达又受到大量lncRNAs的调控。虽然lncRNA作为一类重要的基因表达调控因子广泛参与各类生物个体发育进程和疾病的发生,但是精子发生相关lncRNAs的报道并不多,且其生物学功能的研究有待进一步深入。因此,本文对lncRNA的起源、作用机制和在精子发生过程中调控作用的研究进展进行了总结分析。  相似文献   

7.
精子发生过程中的相关基因   总被引:4,自引:1,他引:3  
在哺乳动物精子发生过程中, 原生殖细胞发育成为精原细胞, 再发育为精母细胞, 精母细胞经过两次减数分裂成为圆形精细胞, 这些圆形精细胞经过细胞变态形成精子。精子发生过程经历了复杂的细胞分化阶段, 这一阶段受许多因素的调控作用, 其中生精细胞内的基因调节起着决定作用。精子发生中的重要基因与一系列精子发生过程中阶段性的细胞事件密切相关, 例如减数分裂重组、联会丝复合物的形成、姊妹染色体的结合、减数分裂后精子的变态以及减数分裂周期中的关键点和必需因子等。生精细胞许多特异基因的阶段特异性表达, 参与了精子发生这一特殊的细胞分化过程。近年来随着基因克隆、表达和功能研究技术的发展和应用, 发现了许多与精子发生相关的基因, 而且有的被证明在精子发生过程中具有重要作用。文章较全面综述了这一研究领域的一些进展, 着重讨论了与精子发生相关的周期蛋白基因、原癌基因、无精子因子基因、细胞骨架基因、热休克基因、核蛋白转型基因、中心体蛋白基因和细胞凋亡相关基因等。  相似文献   

8.
维生素A的活性代谢物维甲酸在哺乳动物精子发生过程中发挥着重要的调节作用,但其具体调节机制并不十分清楚。该文拟对睾丸内维甲酸的运输、代谢、信号系统以及维甲酸调控精子发生的研究进展进行简单总结。  相似文献   

9.
精子发生过程中组蛋白甲基化和乙酰化   总被引:1,自引:0,他引:1  
Ge SQ  Li JZ  Zhang XJ 《遗传》2011,33(9):939-946
精子发生(Spermatogenesis)这一高度复杂的独特分化过程包括精原细胞发育为精母细胞、单倍体精细胞的形成和精子成熟,并以阶段特异性和睾丸特异性基因的表达、有丝分裂和减数分裂以及组蛋白向鱼精蛋白的转变为特征。表观遗传修饰在减数分裂重组、联会复合物的形成、姊妹染色体的结合、减数分裂后精子的变态、基因表达阻遏和异染色质形成过程中发挥着重要作用。其中具有一定组成形式、起抑制作用和/或激活作用的组蛋白甲基化和乙酰化标记,不仅保证了正确的染色体配对和二价染色体的成功分离,并且精确调节减数分裂特异性基因的适时表达。精子发生过程中组蛋白甲基化和/或乙酰化错误会直接影响表观遗传修饰的建立和维持,导致生精细胞异常甚至引发不育。文章旨在对精子发生过程中组蛋白甲基化和乙酰化表观遗传修饰的动态变化及其相关酶的调节机制进行综述,为进一步研究精子发生的表观遗传调控,预防男性不育疾病的发生提供基础资料。  相似文献   

10.
维生素A的活性代谢物维甲酸在哺乳动物精子发生过程中发挥着重要的调节作用,但其具体调节机制并不十分清楚。该文拟对睾丸内维甲酸的运输、代谢、信号系统以及维甲酸调控精子发生的研究进展进行简单总结。  相似文献   

11.
Spermatogenesis is a stepwise cellular differentiation process involving proliferation and commitment to differentiate in spermatogonia, meiosis in spermatocytes, and morphological changes in round spermatids. The whole process is regulated by intercellular communication between the germ cells and the supporting cells. In order to investigate whether neurotrophin family and their receptors contribute to the intercellular communication, we examined the expression of neurotrophins and their receptors in testis during spermatogenesis. One of neurotrophin family, NT-3 was expressed in spermatocytes and spermatogonia while its high affinity receptor, TrkC was found mainly in late spermatids and their low affinity receptor, TrkA in spermatocytes and round spermatids. On the other hand, BDNF immunoreactivity was found in Sertoli cells while its high affinity receptor, TrkB was found in spermatogonia. The temporally and spatially regulated expression of neurotrophins, NT-3 and BDNF, and their receptors, TrkC and TrkB, during male germ cell development suggests that neurotrophins play as the paracrine factors in the intercellular communication between the germ cells and the supporting somatic cells to control germ cell development.  相似文献   

12.
13.
《Reproductive biology》2023,23(2):100737
Deca-bromodiphenyl ether (BDE-209) exposure caused spermatogenesis disorder resulting in poor sperm quality has become a public concern in recent years. Spermatogenesis refers to the process by which the division of spermatogonia stem cells (SSCs) produces haploid spermatozoa, including mitosis, meiosis, and spermiogenesis. However, the mechanism of mitosis including proliferation and differentiation of spermatogonia dysfunction induced by BDE-209 remains largely unclear. Here, our data showed that BDE-209 exposure caused a decline in sperm quality with seminiferous tubule structure disorder in rats. In addition, BDE-209 exposure damage spermatogonia proliferation and differentiation with decreasing level of PLZF and cKit in testis. Moreover, rats exposed to BDE-209 decreased the expression of ERα, whereas an elevated expression of Wnt3a and Wnt5a. Mechanistically, supplementation with propipyrazole triol (PPT, a selective ERα pathway agonist) rescued sperm quality and attenuated impairment of proliferation and differentiation of spermatogonia in BDE-209-induced rats. Therefore, ERα plays a crucial role in the proliferation and differentiation of spermatogonia during mitotic process. In conclusion, our study clarified the role of ERα in BDE-209-induced spermatogonia proliferation and differentiation in rats and provides a potential therapeutic application on poor sperm quality caused by BDE-209 exposure.  相似文献   

14.
Spermatogenesis is a process which includes the following phases: spermatogonial stem cell proliferation and differentiation, spermatogonia, spermatocyte, spermatid and mature sperm. Spermatogenic failure is the important factor resulting in male infertility. Recent studies showed that long noncoding RNA (lncRNA) have been found to be involved in the regulation of male reproduction. However, lncRNA associated with spermatogenesis and their mechanisms of action are unclear. The aim of this study is to explore the role and molecular mechanism of lncRNA in spermatogenesis. LncRNA microarray of germ cells and bioinformatic analysis showed lncRNA Gm2044 may play potential roles in spermatogenesis. The expression level of RNA and protein were analyzed by RT-qPCR and western blotting, respectively. The interaction of lncRNA with mRNA was detected by RNA pull down and cellular proliferation was measured using CCK-8 reagent. Testis-enriched lncRNA Gm2044 is abundant in mouse spermatocytes. Gm2044 can suppress the translation of adjacent spermatogenesis-related gene Utf1 by interacting with Utf1 mRNA. Furthermore, the proliferation of mouse spermatogonia GC-1 cell line and spermatocyte GC-2 cell line was inhibited by Gm2044. CONCLUSION: LncRNA Gm2044 was identified to inhibit Utf1 mRNA translation and play important roles in spermatogenesis.  相似文献   

15.
16.
Correct function of spermatogonia is critical for the maintenance of spermatogenesis throughout life, but the cellular pathways regulating undifferentiated spermatogonia proliferation, differentiation, and survival are only partially known. We show here that long glucocorticoid-induced leucine zipper (L-GILZ) is highly expressed in spermatogonia and primary spermatocytes and controls spermatogenesis. Gilz deficiency in knock-out (gilz KO) mice leads to a complete loss of germ cell lineage within first cycles of spermatogenesis, resulting in male sterility. Spermatogenesis failure is intrinsic to germ cells and is associated with increased proliferation and aberrant differentiation of undifferentiated spermatogonia and with hyperactivity of Ras signaling pathway as indicated by an increase of ERK and Akt phosphorylation. Spermatogonia differentiation does not proceed beyond the prophase of the first meiotic division due to massive apoptosis associated with accumulation of unrepaired chromosomal damage. These results identify L-GILZ as a novel important factor for undifferentiated spermatogonia function and spermatogenesis.  相似文献   

17.
We previously showed that mammalian FSH stimulates the proliferation of newt spermatogonia and induces their differentiation into primary spermatocytes in vitro. In the current study, to examine a possibility that stem cell factor (SCF) is involved in the proliferation of newt spermatogonia and/or their differentiation into primary spermatocytes, human recombinant SCF (rhSCF) was added to organ culture of testicular fragments. rhSCF was found to stimulate the spermatogonial proliferation and the spermatogonia progressed to the seventh generation that is the penultimate stage before primary spermatocyte stage. However, the spermatogonia did not differentiate into primary spermatocytes, but instead died of apoptosis. These results indicate that rhSCF promotes the proliferation of newt spermatogonia, but not the initiation of meiosis.  相似文献   

18.
Factors affecting spermatogenesis in the stallion   总被引:1,自引:0,他引:1  
Spermatogenesis is a process of division and differentiation by which spermatozoa are produced in seminiferous tubules. Seminiferous tubules are composed of somatic cells (myoid cells and Sertoli cells) and germ cells (spermatogonia, spermatocytes, and spermatids). Activities of these three germ cells divide spermatogenesis into spermatocytogenesis, meiosis, and spermiogenesis, respectively. Spermatocytogenesis involves mitotic cell division to increase the yield of spermatogenesis and to produce stem cells and primary spermatocytes. Meiosis involves duplication and exchange of genetic material and two cell divisions that reduce the chromosome number to haploid and yield four spermatids. Spermiogenesis is the differentiation without division of spherical spermatids into mature spermatids which are released from the luminal free surface as spermatozoa. The spermatogenic cycle (12.2 days in the horse) is superimposed on the three major divisions of spermatogenesis which takes 57 days. Spermatogenesis and germ cell degeneration can be quantified from numbers of germ cells in various steps of development throughout spermatogenesis, and quantitative measures are related to number of spermatozoa in the ejaculate. Germ cell degeneration occurs throughout spermatogenesis; however, the greatest seasonal impact on horses occurs during spermatocytogenesis. Daily spermatozoan production is related to the amount of germ cell degeneration, pubertal development, season of the year, and aging. Number of Sertoli cells and amount of smooth endoplasmic reticulum of Leydig cells and Leydig cell number are related to spermatozoan production. Seminiferous epithelium is sensitive to elevated temperature, dietary deficiencies, androgenic drugs (anabolic steroids), metals (cadmium and lead), x-ray exposure, dioxin, alcohol, and infectious diseases. However, these different factors may elicit the same temporary or permanent response in that degenerating germ cells become more common, multinucleate giant germ cells form by coalescence of spermatocytes or spermatids, the ratio of germ cells to Sertoli cells is reduced, and spermatozoan production is adversely affected. In short, spermatogenesis involves both mitotic and meiotic cell divisions and an unsurpassed example of cell differentiation in the production of the spermatozoon. Several extrinsic factors can influence spermatogenesis to cause a similar degenerative response of the seminiferous epithelium and reduce fertility of stallions.  相似文献   

19.
Summary Spermatogenesis inHydra carnea was investigated. The cell proliferation and differentiation kinetics of intermediates in the spermatogenesis pathway were determined, using quantitative determinations of cell abundance, pulse and continuous labelling with3H-thymidine and nuclear DNA measurements. Testes develop in the ectoderm of male hydra as a result of interstitial cell proliferation. Gonial stem cells and proliferating spermatogonia have cell cycles of 28 h and 22 h, respectively. Stem cells undergo four, five or six cell divisions prior to meiosis which includes a premeiotic S+G2 phase of 20 h followed by a long meiotic prophase (22 h).Spermatid differentiation requires 12–29 h. When they first appear, testes contain only proliferating spermatogonia; meiotic and postmeiotic cells appear after 2 and 3 days, respectively and release of mature sperm begins after 4 days. Mature testes produce about 27,000 sperm per day over a period of 4–6 days: about 220 gonial stem cells per testis are required to support this level of sperm differentiation. Further results indicate that somatic (e.g. nematocyte) differentiation does not occur in testes although it continues normally in ectodermal tissue outside testes. Our results support the hypothesis that spermatogenesis is controlled locally in regions of the ectoderm where testes develop.  相似文献   

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