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1.
为获得高比例精原干细胞, 开展了不同月龄红鳍东方鲀精原干细胞分离纯化研究。采用组合酶消化法制备不同月龄的精巢单细胞悬液, 通过形态学观察和生殖细胞特异基因vasa免疫荧光鉴别精原干细胞, Percoll不连续梯度(10%、30%和50%)纯化精原干细胞。结果显示: 14月龄雄鱼精巢生殖细胞主要为A型精原细胞, 精原干细胞占比极显著性地高于22月龄(P<0.05)。纯化后精原干细胞主要分布在10%—30% Percoll梯度带中, 14月龄雄鱼生殖细胞主要分布在此层, 且纯化后精原干细胞占比远高于纯化前以及22月龄纯化前后。结果表明, 14月龄更适用组合酶消化分离, 并通过Percoll梯度离心法获得高比例的红鳍东方鲀精原干细胞。  相似文献   

2.
为了研究中华鲟(Acipenser sinensis)促性腺激素释放激素受体(Gonadotropin-releasing hormone receptor, GnRH-R)基因在中华鲟中的组织表达特征, 为中华鲟生长发育调控研究提供基础数据, 通过构建中华鲟(Acipenser sinensis)垂体的SMART cDNA质粒文库, 采用cDNA末端快速扩增(RACE), 克隆得到了中华鲟GnRH-R基因的cDNA全长序列。该序列全长1530 bp, 有478 bp的5′非翻译区, 579 bp的开放阅读框和473 bp的3′非翻译区, 共编码192个氨基酸, 其成熟多肽含有5个N连糖基化位点。通过和已知其他鱼类的GnRH-R基因进行氨基酸序列多重比对, 发现其与真鲷(Pagrus major)的同源性最高, 为76%, 与米氏叶吻银鲛(Callorhinchus milii)的同源性最低, 为39%。采用实时荧光定量PCR (Real time PCR)方法, 检测了GnRH-R的mRNA在中华鲟心、肝、脾、肾、肠道、精巢、肌肉及脑组织中的表达状况, 发现其在精巢中大量转录, 而在其他组织中则表达微弱。以上结果表明中华鲟GnRH-R基因在性腺发育特别是精子发生过程中可能起重要作用。  相似文献   

3.
为研究内分泌干扰物己烯雌酚(DES)对鱼类精巢发育和配子发生的影响, 研究用DES(0.1、1和10 g/L, 暴露20d)对内分泌干扰研究的经典模式动物斑马鱼(Danio rerio)雄性成鱼进行了处理。组织学研究结果表明, DES严重影响斑马鱼精子发生。同时, 研究克隆了斑马鱼与生殖细胞发育和减数分裂相关的vasa、dmc1的部分cDNA, 对其组织和细胞表达模式进行了研究。结果表明, vasa仅表达于精巢的精原细胞、初级精母细胞和卵巢不同时期的生殖细胞; 而dmc1则表达于精巢精母细胞和卵巢卵母细胞发育早期。半定量PCR结果表明, DES处理后vasa的表达没有明显变化; 而dmc1的表达则被明显抑制, 且呈时间依赖性和剂量依赖性效应; 而转录因子dmrt1和雄激素合成关键酶基因P450 11的表达也被显著抑制。因此本研究推测, DES可能通过抑制dmrt1和P450 11的表达诱导了斑马鱼生殖细胞凋亡; 并通过抑制dmc1的表达阻碍了减数分裂。    相似文献   

4.
黄鳝性腺自然逆转过程中vasa基因的表达分析   总被引:9,自引:0,他引:9  
本研究采用RNA反义探针原位杂交技术,对vasa基因在黄鳝(Monopterusalbus)性腺发育过程中的表达情况进行了分析。结果表明:vasamRNA在Ⅰ、Ⅱ、Ⅲ期卵母细胞的胞质中均匀分布,在Ⅳ、Ⅴ期卵母细胞中vasamRNA有向胞质外周皮层迁移集中的趋势,但不明显;退化的卵粒也呈现vasamRNA阳性反应;在Ⅲ、Ⅳ期卵巢的被膜中检测到带有vasa阳性信号的细胞,这些细胞可能是待向精原细胞分化、迁移到卵巢被膜上的原始生殖细胞(Primordialgermcell,PGC),在性逆转过程中这些PGC可能由卵巢被膜迁移到精小叶中并发育成精子;在成熟精巢中,vasa在精原细胞和初级精母细胞中表达。进一步采用碱性磷酸酶染色法分析黄鳝卵巢及精巢后发现:在卵巢中,除了卵母细胞外,卵巢被膜中也检测到了带有碱性磷酸酶阳性信号的细胞;在成熟精巢中,只在生殖腺囊内的雄性生殖细胞中检测到碱性磷酸酶,而精巢被膜中没有检测到带有碱性磷酸酶阳性信号的细胞。本研究结果初步表明:黄鳝的雄性生殖细胞可能起源于雌性阶段卵巢被膜中的原始生殖细胞[动物学报51(3):469-475,2005]。  相似文献   

5.
为研究大口黑鲈(Micropterus salmoides)抗缪勒氏管激素(amh)基因的表达及其在性腺发育中的潜在作用,研究利用RACE技术克隆得到了大口黑鲈amh基因,并制备Amh多克隆抗体,通过qRT-PCR、Western Blot分析Amh在大口黑鲈不同组织和不同发育阶段性腺中的表达模式,最后利用HE染色法和免疫组化观察不同发育阶段性腺的形态组织学变化及其与Amh表达的潜在关系。结果显示:大口黑鲈amh基因cDNA序列全长2050 bp,由24 bp5′非编码区、394 bp3′非编码区和1632 bp的开放阅读框组成,共编码543个氨基酸。amh基因mRNA在大口黑鲈11个组织中均有表达,其中雄鱼精巢中表达量最高,肌肉次之,雌鱼卵巢中表达量最高,肌肉次之。amh基因在雌雄鱼不同发育阶段的性腺中表达存在显著差异,精巢中表达量均显著高于卵巢(P<0.05)。同时, Western Blot结果显示Amh蛋白在精巢中表达丰度较高。amh基因在精巢中的表达量呈先上升后下降的趋势,且在孵化后65d鱼精巢中其表达量达到最高(P<0.05),免疫组化结果显示Amh表达于早期精...  相似文献   

6.
为监测成体干细胞向生殖细胞分化的过程,分析生殖细胞特异性DEAD-box家族ATP依赖RNA解旋酶vasa在不同日龄山羊睾丸组织中的表达情况并构建山羊生殖细胞特异性报告载体p VASA-EGFP。通过免疫荧光及RT-PCR法监测vasa的表达情况,利用分子技术构建报告载体p VASA-EGFP,脂质体法转染山羊骨髓间充质干细胞(Bone mesenchymal stem cells,BMSCs),经过视黄酸(Retinoic acid,RA)诱导后,观察绿色荧光蛋白表达情况以鉴定该报告载体的有效性。免疫荧光结果显示,Vasa在性成熟不同阶段的山羊睾丸组织中均有表达,RT-PCR结果表明vasa基因在3月龄、10月龄山羊睾丸组织中显著高于10日龄组。测序及酶切鉴定结果表明,扩增的vasa基因启动子片段成功连至N1载体,转染BMSCs后经4 d的RA诱导,发现有绿色荧光蛋白表达,表明成功构建了山羊vasa基因启动子调控的报告载体p VASA-EGFP。以上结果表明,vasa基因在不同日龄山羊睾丸组织中均有表达,所构建的山羊生殖细胞特异性报告载体p VASA-EGFP具有示踪山羊成体干细胞向生殖细胞分化过程的能力,为下一步监测山羊BMSCs向生殖细胞分化的过程提供了鉴定和筛选方法。  相似文献   

7.
Stra 8基因的激活与精原干细胞的特异性分化研究   总被引:2,自引:0,他引:2  
视黄酸对维持正常的雄性睾丸结构和功能起着重要的作用。近来的研究发现,在雄性生殖腺发育过程中有一组基因,它们可以被视黄酸特异性的诱导活化,称为Stra(Stimulated by Retinoic Acid)基因。从鼠源分离得到的Stra8基因编码一种细胞质蛋白,该基因只特异性的在成熟雄性生殖细胞中表达,其功能被认为与精子形成有关。为研究Stra8基因的表达特性,我们从小鼠的基因组中克隆了Stra8基因的启动子序列(1.4kb)。将Stra8基因的1.4kb启动子序列克隆到pEGFP-1载体的EGFP基因之前,构建成由Stra8基因1.4kb启动子序列调控表达绿色荧光蛋白的pStra8-EGFP载体。将其分别转化到不同类型的细胞中,如小鼠ES-129细胞、人胎儿胰腺干细胞、小鼠骨髓间充质干细胞和小鼠精原干细胞等,通过荧光显微镜观察发现,绿色荧光蛋白只在小鼠精原干细胞中表达,表明Stra8基因是组织特异性表达的基因。将pStra8-EGFP转化小鼠骨髓间充质干细胞,经G418筛选2周后,用视黄酸诱导,12h培养后,有一部分转化pStra8-EGFP载体的细胞表达绿色荧光蛋白。RT-PCR证明这些细胞中有精原干细胞特异表达基因Stra8的转录,还有生殖细胞特异表达基因CyclinA8和Oct4的转录,这些结果说明小鼠骨髓间充质细胞经视黄酸的诱导可以向生殖细胞方向分化。  相似文献   

8.
文昌鱼Sertoli细胞超微结构的进一步研究   总被引:5,自引:0,他引:5  
方永强 《动物学报》1991,37(2):123-126
用光镜和电镜技术观察厦门文昌鱼(Branchiostoma belcheri Gray)精巢中Sertoli细胞在不同发育时期的细微结构后发现:精巢发育Ⅰ—Ⅱ期,Sertoli细胞贴近基底膜,与生殖细胞相间排列;Ⅲ—Ⅳ期时,逐渐向管腔方向移动;这种细胞在核的顶部及其周围胞质中,有丰富的粗面内质网、发育良好的高尔基复合体、大量溶酶体及糖元颗粒,并可见精细胞附着在Sertoli细胞的胞质中。据此,我们认为Sertoli细胞具有营养、吞噬和释放精子的功能。本文旨在为研究这种细胞的内分泌功能提供有价值的依据。  相似文献   

9.
研究利用中华鳖为研究模型进行爬行类生殖细胞发育分化成熟等生物学研究,克隆了中华鳖vasa基因的cDNA序列,全长3865 bp,包括5'端非编码区90 bp,3'端非编码区1699 bp,开放阅读框长2076 bp,共编码691个氨基酸。中华鳖Vasa氨基酸序列包含DEAD-box家族蛋白8个保守保守功能域,在N末端有4个RGG重复序列和2个GG富集区,与小鼠Vasa蛋白的同源性较高(72%)。荧光定量PCR的结果表明,中华鳖vasa mRNA主要精巢和卵巢中表达,其他体组织中均难检测到表达。卵巢冰冻切片原位杂交结果显示:中华鳖vasa mRNA在生殖细胞中特异表达;在卵子发生过程中的不同发育期卵母细胞中呈现动态的变化。即vasa mRNA在初级卵母细胞及生长期卵母细胞中表达最强,且均匀分布在细胞质中,随着卵母细胞的逐渐增大,信号逐渐减弱,直至在成熟的卵母细胞中几乎检测不到表达信号,说明vasa可能在中华鳖早期卵母细胞发育中起重要作用。同时,vasa基因可作为中华鳖生殖细胞分子标记物,根据其mRNA的表达水平来鉴别不同发育时期的卵母细胞。研究结果为进一步开展中华鳖胚胎生殖细胞发育及配子生成,特别是研究中华鳖,乃至爬行类原始生殖细胞(Primordial Germ Cells,PGCs)的起源、迁移、分化等研究奠定了基础。  相似文献   

10.
vasa基因研究进展   总被引:3,自引:0,他引:3  
DEAD-box家族基因编码一类ATP依赖的RNA解旋酶。经系统进化分析可将该家族蛋白分为VASA、PL10和p68三个亚家族。其中,vasa基因最先在果蝇(Drosophila melanogaster)中被发现,在许多动物中都已经克隆得到其同源基因,研究显示,vasa基因在生殖细胞系中特异性表达,在许多生物中为生殖细胞形成和配子发生所需。有趣的是在果蝇中VASA蛋白是生殖质的组成部分,而在斑马鱼(Danio rerio)中vasa mRNA才是生殖质的组成部分。本文主要综述了vasa基因及其蛋白的结构、功能、表达和作为原生殖细胞分子标记物的应用等方面的内容,并展望了其研究前景。  相似文献   

11.
To determine the relationship between germ cell degeneration or germ cell:Sertoli cell ratio and daily sperm production, testes were obtained during the months of May to July (breeding season) and November to January (nonbreeding season) from adult (4 to 20-yr-old) stallions with either high (n = 15) or low (n = 15) sperm production. Serum was assayed for concentrations of LH, FSH and testosterone. Testes were assayed for testosterone content and for the number of elongated spermatids, after which parenchymal samples were prepared for histologic assessment. Using morphometric procedures, the types and numbers of spermatogonia, germ cells and Sertoli cells were determined. High sperm producing stallions had greater serum testosterone concentration, total intratesticular testosterone content, testicular parenchymal weight, seminiferous epithelial height, diameter of seminiferous tubules, numbers of A and B spermatogonia per testis, number of Sertoli cells per testis, and number of B spermatogonia, late primary spermatocytes, round spermatids and elongated spermatids per Sertoli cell than low sperm producing stallions (P < 0.05). The number of germ cells (total number of all spermatocytes and spermatids in Stage VIII tubules) accommodated by Sertoli cells was reduced in low sperm producing stallions (18.6 +/- 1.3 germ cells/Sertoli cell) compared with that of high sperm producing stallions (25.4 +/- 1.3 germ cells/Sertoli cell; P < 0.001). The conversion from (yield between) early to late primary spermatocytes and round to elongated spermatids was less efficient for the low sperm producing stallions (P < 0.05). Increased germ cell degeneration during early meiosis and spermiogenesis and reduced germ cell:Sertoli cell ratio was associated with low daily sperm production. These findings can be explained either by a compromised ability of the Sertoli cells to support germ cell division and/or maturation or the presence of defects in germ cells that predisposed them to degeneration.  相似文献   

12.
The gap junction proteins, connexins (Cx), are present in the testis and among them Cx43 play an essential role in spermatogenesis. By using an in vitro proliferation model of germ cells and Sertoli cells, we tempted here to clarify the role of Cx43 in the control of Sertoli and germ cell proliferation and apoptosis. Cx43 was detected in purified preparations of Sertoli cells and spermatogonia and immunolocalized in both cell types identified by vimentin and c-kit, respectively. Inhibition of gap junction coupling by the gap junction inhibitor α-GA significantly enhanced BrdU incorporation in Sertoli cells and reduced the number of activated caspase-3 positive germ cells. Similarly, inhibitory Cx43 and pan-Cx mimetic inhibitory peptides increased proliferation of Sertoli cells and stimulated survival of germ cells. Cx32 mimetic inhibitory peptide also stimulated Sertoli cell proliferation without altering germ cell proliferation and apoptosis. The present results reveal that Cx43 gap junctions between Sertoli cells participate in the control of Sertoli cell proliferation and that Cx43 gap junctions between Sertoli cells and spermatogonia are indirectly involved in germ cell number increase by controlling germ cell survival rather than germ cell proliferation.  相似文献   

13.
卵胎生硬骨鱼褐菖(鱼良)鲉精巢的周期发育   总被引:10,自引:2,他引:8  
研究了卵胎生硬骨鱼褐菖(鱼良)鲉(Sebastiscus marmoratus)的精巢结构和生殖周期.褐菖(鱼良)鲉精巢属于小叶型.每年8~9月,精巢处于精原细胞增殖期.初级精原细胞分裂增殖,产生次级精原细胞.后者和支持细胞组成精小囊.10月~翌年1月进入精子发生期.精小囊中的生殖细胞进一步发育,逐渐形成精子.2~7月是精子退化吸收期,精巢中仅有初级精原细胞和残余的精子.在生殖季节,精子经由输出管和输精管运至尿殖突,通过体内受精方式送入雌鱼生殖道.  相似文献   

14.
We have obtained a PrP-Cre-ER(T) transgenic mouse line (28.8) that selectively expresses in testis the tamoxifen-inducible Cre-ER(T) recombinase under the control of a mouse Prion protein (PrP) promoter-containing genomic fragment. Cre-ER(T) is expressed in spermatogonia and spermatocytes, but not in Sertoli and Leydig cells. We also established reporter PrP-L-EGFP-L transgenic mice harboring a LoxP-flanked enhanced green fluorescent protein (EGFP) Cre reporter cassette under the control of the same PrP promoter-containing genomic fragment that exhibits prominent EGFP expression in brain and testis. Using the PrP-L-EGFP-L as well as other Cre-reporter mice, we demonstrate that tamoxifen administration efficiently and selectively induces Cre-mediated recombination in the germ cell lineage. The established PrP-Cre-ER(T) line should provide a valuable tool for studying functions of germ cell-expressed genes involved in spermatogenesis.  相似文献   

15.
The gilthead seabream is a protandrous hermaphrodite seasonal breeding teleost with a bisexual gonad that offers an interesting model for studying the testicular regression process that occurs in both seasonal testicular involution and sex change. Insofar as fish reproduction is concerned, little is known about cell renewal and elimination during the reproductive cycle of seasonal breeding teleosts with asynchronous spermatogenesis. We have previously described how acidophilic granulocytes infiltrate the testis during postspawning where, surprisingly, they produce interleukin-1beta, a known growth factor for mammalian spermatogonia, rather than being directly involved in the elimination of degenerative germ cells. In this study, we are able to discriminate between spermatogonia stem cells and primary spermatogonia according to their nuclear and cytoplasmic diameters and location in the germinal epithelium, finding that these two cell types, together with Sertoli cells, proliferate throughout the reproductive cycle with a rate that depends on the reproductive stage. Thus, during spermatogenesis the spermatogonia stem cells, the Sertoli cells, and the developing germ cells (primary spermatogonia, A and B spermatogonia, and spermatocytes) in the germinal compartment, and cells with fibroblast-shaped nuclei in the interstitial tissue proliferate. However, during spawning, the testis shows few proliferating cells. During postspawning, the resumption of proliferation, the occurrence of apoptotic spermatogonia, and the phagocytosis of nonshed spermatozoa by Sertoli cells lead to a reorganization of both the germinal compartment and the interstitial tissue. Finally, the proliferation of spermatogonia increases during resting when, unexpectedly, both oogonia and oocytes also proliferate. This proliferative pattern was correlated with the gonadosomatic index, testicular morphology, and testicular and gonad areas, suggesting that complex mechanisms operate in the regulation of gonocyte proliferation in hermaphrodite fish.  相似文献   

16.
Germ cell survival and development critically depend on the cells' contact with Sertoli cells in the vertebrate testis. Fish and amphibians are different from mammals in that they show a cystic type of spermatogenesis in which a single germ cell clone is enclosed by and accompanied through the different stages of spermatogenesis by an accompanying group of Sertoli cells. We show that in maturing and adult testes from African catfish and Nile tilapia, Sertoli cell proliferation occurs primarily during spermatogonial proliferation, allowing the cyst-forming Sertoli cells to provide the increasing space required by the growing germ cell clone. In this regard, coincident with a dramatic increase in cyst volume and number of germ cells per cyst, in Nile tilapia, the number of Sertoli cells per cyst was strikingly increased from primary spermatogonia to spermatocyte cysts. In both African catfish and Nile tilapia, Sertoli cell proliferation is strongly reduced when germ cells have proceeded into meiosis, and stops in postmeiotic cysts. We conclude that Sertoli cell proliferation is the primary factor responsible for the increase in testis size and sperm production observed in teleost fish. In mammals, Sertoli cell proliferation in the adult testis is not observed under natural conditions. However, on the level of the individual spermatogenic cyst--similar to mammals--Sertoli cell proliferation ceases when germ cells have entered meiosis and when tight junctions are established between Sertoli cells. This suggests that fish are valid vertebrate models for studying Sertoli cell physiology.  相似文献   

17.
In cultivated male eel, spermatogonia are the only germ cells present in testis. Our previous studies using an organ culture system have shown that gonadotropin and 11-ketotestosterone (11-KT, a potent androgen in teleost fishes) can induce all stages of spermatogenesis in vitro. for detailed investigation of the control mechanisms of spermatogenesis, especially of the interaction between germ cells and testicular somatic cells during 11-KT-induced spermatogenesis in vitro, we have established a new culture system in which germ cells and somatic cells are cocultured after they are aggregated into pellets by centrifugation. Germ cells (spermatogonia) and somatic cells (mainly Sertoli cells) were isolated from immature eel testis. Coculture of the isolated germ cells and somatic cells without forming aggregation did not induce spermatogenesis, even in the presence of 11-KT. In contrast, when isolated germ cells and somatic cells were formed into pellets by centrifugation and were then cultured with 11-KT for 30 days, the entire process of spermatogenesis from premitotic spermatogonia to spermatozoa was induced. However, in the absence of 11-KT in the culture medium spermatogenesis was not induced, even when germ cell and somatic cells were aggregated. These results demonstrate that physical contact of germ cells to Sertoli cells is required for inducing spermatogenesis in response to 11-KT.  相似文献   

18.
Using subtractive hybridization and polymerase chain reaction, we developed a differential cloning system, the fragmented cDNA subtraction method, that requires only small amounts of materials. The cloning system was used to isolate several cDNA fragments expressed more abundantly in the premeiotic day 3 post-natal mouse testis than in the adult mouse testis. The isolated cDNA fragments included cDNA encoding the murine cyclin D2. Northern blot and in situ hybridization analyses revealed that, during testis development, cyclin D2 expression was most abundant in the neonatal proliferating Sertoli cells. Those type A spermatogonia that were thought to divide mitotically also expressed cyclin D2 mRNA. Other spermatogenic cells, such as mitotically arrested gonocytes in neonatal testis and meiotically dividing germ cells in adult testis as well as adult Sertoli cells, were negative for the cyclin D2 signal. Adult W/W v mutant mice lacking germ cells expressed cyclin D2 mRNA in terminally differentiated Sertoli cells. Elimination of germ cells other than the undifferentiated type A spermatogonia by treating wild-type mice with an anti-c- kit monoclonal antibody did not result in the expression of cyclin D2 in Sertoli cells. These results demonstrate that there are lineage- and developmental-specific expression patterns of cyclin D2 mRNA during mouse testis development. At the same time, it is suggested that primitive type A spermatogonia affect the cyclin D2 expression of Sertoli cells.  相似文献   

19.
The function of protease during male meiosis has not been well studied. We previously cloned and characterized four testis-specific serine proteases in the mouse testis. One of the proteases, Prss41/Tessp-1, was expressed in the germ and Sertoli cell. This time, to examine the involvement of Prss41/Tessp-1 in spermatogenesis, we conducted the organ culture of testis fragments in the presence of the anti-Prss41/Tessp-1 antibody. Because in the Sertoli cell, the Prss41/Tessp-1 protein was mostly associated with the membrane of intracellular organelles by glycosylphosphatidylinositol, the antibody was expected to affect Prss41/Tessp-1 at the plasma membrane of spermatogonia. By adding the antibody, the number of germ cells was decreased in some seminiferous tubules. The marker genes expression strongly suggested that meiosis was arrested at spermatogonia, and the number of apoptotic germ cells increased by terminal deoxynucleotidyl transferase dUTP nick end labeling assay. These data indicated that Prss41/Tessp-1 was necessary for the progression of meiosis at the stage of spermatogonia during in vitro spermatogenesis. Together with our previous study, the current results suggest that the Prss/Tessp proteases are important for the progression of meiosis at each stage.  相似文献   

20.
The localization of albumin and transferrin was examined immunohistochemically in germ cells and Sertoli cells during rat gonadal morphogenesis and postnatal development of the testis. These proteins appeared as early as the 13th day of gestation in migrating primordial germ cells before Sertoli cell differentiation. In the fetal testis, strong immunoreactivity was only detected in the gonocytes. In the prepubertal testis, spermatogonia, primary spermatocytes, and some Sertoli cells accumulate albumin and transferrin. At puberty, different patterns of immunostaining of the germ cells were observed at the various stages of the cycle of the seminiferous epithelium. Diplotene spermatocytes at stage XIII, spermatocytes in division at stage XIV, and round spermatids at stages IV–VIII showed maximal staining. Labeling was evident in the cytoplasm of adult Sertoli cells. Albumin and transferrin staining patterns paralleled each other during ontogenesis.  相似文献   

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