首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 125 毫秒
1.
陈利  丁芳  刘勇  吴风瑞  丁彪  王荣  李文雍 《遗传》2015,(1):77-83
孤雌胚胎的发育率比体内体外生成胚胎的发育率要慢,为研究小鼠孤雌胚、体外培养胚H3K9乙酰化(H3K9ac)模式与体内自然胚之间的差异、曲古抑菌素A(Trichostatin,TSA)对孤雌胚H3K9乙酰化模式的影响及表观遗传模式对孤雌胚、体外培养胚发育的影响,文章采用间接免疫荧光法对小鼠植入前各时期孤雌胚、体外培养胚及体内自然胚基因组组蛋白的H3K9乙酰化水平进行检测。结果显示,植入前各时期孤雌胚H3K9乙酰化模式与体内组变化趋势基本一致,但平均荧光强度较体内组普遍偏高;经TSA处理后孤雌胚H3K9乙酰化水平有所提高,原核期至8-细胞期差异显著(P0.05)。体外培养胚H3K9乙酰化荧光强度与体内组变化趋势也基本一致,但平均荧光强度较体内组普遍偏低。以上结果表明,小鼠孤雌胚H3K9乙酰化水平高于体内胚,使植入前胚胎发育过程中本应沉默的基因启动子发生超乙酰化,进而抑制胚胎发育,这可能是造成孤雌胚胎发育能力较差的重要原因之一;TSA处理可以部分弥补体外培养环境对胚胎发育带来的伤害,但TSA提高孤雌胚的发育能力可能并不完全是通过改变H3K9乙酰化水平来实现的。  相似文献   

2.
老龄小鼠卵母细胞发育过程中组蛋白乙酰化修饰的改变   总被引:1,自引:0,他引:1  
分别取年轻C57/B6雌性小鼠(3-4周龄)与老龄C57/B6雌性小鼠(40-42周龄)不同发育时期的卵母细胞,利用免疫荧光技术观察其组蛋白不同赖氨酸位点乙酰化的变化,并用RT-PCR法检测年轻小鼠与老龄小鼠卵母细胞不同发育时期Hdac1与Hdac3(组蛋白去乙酰化酶)mRNA的相对表达量。结果显示:(1)年轻小鼠和老龄小鼠卵母细胞组蛋白H4/K12、H4/K16、H4/K5及H3/K14的乙酰化水平均随发育进程逐渐升高,在完全生长期乙酰化水平达到峰值,至MⅡ期,除H4/K12外,其它三个位点的乙酰化全部消失;与年轻小鼠相比,完全生长期时老龄小鼠卵母细胞组蛋白乙酰化水平较低;(2)在完全生长期之前,年轻小鼠和老龄小鼠卵中Hdac-1与Hdac-3 mRNA的表达量呈逐渐降低趋势,但老龄小鼠在MⅡ期有所升高。与年轻小鼠相比,老龄小鼠完全生长期前各时期卵母细胞中Hdac1 mRNA的表达量均极显著降低(P<0.01);而Hdac3 mRNA的表达量二者之间无显著差异。结果表明:老龄小鼠卵母细胞中组蛋白乙酰化和组蛋白去乙酰化酶表达出现了异常变化。  相似文献   

3.
Trichostatin A(TSA)是一种特异的组蛋白去乙酰化酶抑制剂。研究显示,TSA可以特异地抑制组蛋白去乙酰化酶活性,提高细胞的组蛋白乙酰化水平,激活基因的表达。但是,目前还不是很清楚TSA处理是否对组蛋白甲基化产生影响。本研究以成纤维细胞为研究对象,利用免疫细胞化学技术及激光共聚焦显微镜,探讨了TSA处理体细胞对其组蛋白乙酰化及甲基化修饰的影响。结果显示,随TSA浓度增加,体细胞形态发生明显的改变,细胞变得扁平且核区较大,处理后组蛋白H4K8位点的乙酰化水平随着TSA浓度的增加明显提高。检测组蛋白H3上两个甲基化位点发现,随组蛋白乙酰化水平的增加,H3K4位点的三甲基化(H3K4me3)水平也显著提高。但是,对于H3K9的二甲基化水平(H3K9me2)则没有明显变化。以上结果显示,TSA的处理不仅可以提高体细胞的组蛋白乙酰化水平,同时也增加了与基因表达激活相关组蛋白修饰位点的甲基化水平,但是对于与沉默基因相关的组蛋白修饰位点则没有明显的影响。  相似文献   

4.
研究p300乙酰化在卡介苗(bacillus Calmette Guérin,BCG)感染中的作用。构建THP-1巨噬细胞模型,比较BCG感染前后p300蛋白表达水平和组蛋白H3乙酰化水平的改变,加入p300特异性抑制剂Delphinidin,观察细胞内组蛋白H3乙酰化水平的变化。结果表明,在分化成熟的THP-1细胞系中,BCG感染能够上调p300蛋白表达水平和组蛋白H3乙酰化水平,加入p300特异性抑制剂Delphinidin后,组蛋白H3乙酰化水平降低。BCG感染通过p300途径导致蛋白质乙酰化水平发生改变。  相似文献   

5.
组蛋白乙酰化及去乙酰化是表观遗传修饰一个重要部分,其对哺乳动物卵母细胞成熟和胚胎发育具有重要的调节作用。因此深入研究组蛋白乙酰化的发生机制,对于改善卵母细胞和早期胚胎的发育具有重要意义。对哺乳动物卵母细胞及胚胎发育过程中的组蛋白乙酰化动态修饰进行综述。  相似文献   

6.
卵巢是雌性哺乳动物的生殖器官,担负着产生成熟卵子和分泌性激素的功能。卵巢的功能调控涉及细胞生长和分化相关基因的有序激活和抑制。近年研究发现组蛋白翻译后修饰因可影响DNA复制、损伤修复及基因转录活性,且一些调节组蛋白修饰的酶为转录因子相关的共激活因子或共抑制因子,在卵巢功能调控和相关疾病发生和发展中起重要作用。本文以卵泡发育和性激素分泌与作用的机制为主线,概括常见组蛋白修饰(主要是乙酰化和甲基化)在生殖周期中的动态变化规律及其对重要分子事件的基因表达调控,如组蛋白乙酰化的特殊动态变化对卵母细胞减数分裂的阻滞与恢复意义重大,而组蛋白(尤其是H3K4)甲基化通过调控卵母细胞的染色质转录活性与减数分裂进程影响其成熟,排卵前组蛋白乙酰化或甲基化亦可促进类固醇激素的合成与分泌等。最后简述了异常组蛋白翻译后修饰在两种常见卵泡发育障碍性疾病(早发性卵巢功能不全、多囊卵巢综合征)发生和发展中的作用。本综述将为理解卵巢功能的复杂调控机制和探索相关疾病的潜在治疗靶点提供有益参考。  相似文献   

7.
目的:明确GDNF启动子I区在人脑胶质瘤中H,赖氨酸残基9位乙酰化(H3K9Ac)情况,探讨其对于GDNF在胶质瘤中表达的影响。方法:RT-PCR检测各组中GDNFmRNA的表达;建立基于Real.timePCR分析的染色质免疫共沉淀(CHIP)方法,检测12例胶质瘤与6例正常脑组织中GDNF基因启动子I区王H3组蛋白乙酰化情况。结果:Real-timePCR验证人脑胶质瘤GDNFmRNA的表达,转录水平随级另q的增高而增高,且低级别组、高级别组与正常组之间存在显著的统计学差异(P〈0.05)。启动子I区的H,组蛋白乙酰化水平,正常组与低级别组和高级别组之间比较均有显著性差异(P〈0.05),且低级别与高级别之间也有显著性差异。结论:在人脑胶质瘤组织中,GDNF启动子I区发生了H3组蛋白高乙酰化修饰,这种修饰很可能会影响GDNF基因的表达。  相似文献   

8.
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   

9.
生发泡(germinal vesicle,GV)移植到去核的GV期卵母细胞后,获得重构卵,重构卵在体外能成熟,受精和进行胚胎发育。GV移植到去核的第二次减数分裂中期(metaphase Ⅱ,MII)卵母细胞后,重构卵能发生GV破裂,但难以排出第一极体。GV移植后,通过连续核移植,重构合子具有发育到终期的能力。GV移植为研究卵母细胞的发育提供了一种重要工具。  相似文献   

10.
组蛋白去乙酰化酶(histone deacetylase, HDAC)通过参与调节组蛋白乙酰化修饰调控基因表达. 研究发现多种HDAC参与成脂分化,但其机制尚不清楚. 本研究旨在探讨间充质干细胞C3H10T1/2成脂分化过程中组蛋白去乙酰化酶(HDAC)的表达变化及其对成脂分化的影响. 本研究首先建立了C3H10T1/2体外成脂分化的模型并以油红O染色鉴定成功诱导成脂分化. PCR检测C3H10T1/2细胞成脂分化过程中11种HDAC的变化趋势,发现成脂分化过程中,HDAC1、2、5、9和10的mRNA表达量下降而HDAC3、6、8和11的mRNA表达量明显上升,其中HDAC11上升最为显著. 进一步通过RNA干扰沉默HDAC11表达, PCR检测成脂分化的关键转录因子PPARγ2和成脂标志物Perilipin、Adipoq 的mRNA表达量下降,但Fabp4表达变化不明显. 油红O染色结果表明,诱导C3H10T1/2成脂分化过程中,干扰HDAC11表达,胞浆内脂滴形成数量减少,成脂分化受到抑制. 总之,我们实验的结果提示C3H10T1/2细胞成脂分化伴随着多种HDAC表达的变化,其中HDAC11的增加最显著,干扰HDAC11的表达可以抑制C3H10T1/2细胞的成脂分化.  相似文献   

11.
Nuclear core histone modifications influence chromosome structures and functions. Recently, the involvement of histone acetylations in the cell memory of gene expression has been suggested in mouse oocyte maturation. At present, there is little available data on histone modifications in mammalian oocyte maturation. In the present study, we examined changes in the acetylation of histone H3 lysines 9 (H3K9) and 14 (H3K14), and histone H4 lysines 5 (H4K5), 8 (H4K8) and 12 (H4K12), and trimethylation of H3K9 during in vitro maturation of porcine oocytes. Immunocytochemical analyses revealed that the all of the lysines examined were highly acetylated in the germinal vesicle stage, and this level of acetylation was maintained until the first prometaphase. In the first metaphase, the lysines near the N-terminal end, H3K9 and H4K5, were completely deacetylated. The acetylation of the lysines far from the N-terminal end, H3K14, H4K8, and H4K12, was markedly decreased but still present. The acetylations were increased transiently at the first anaphase and telophase, and then decreased again at the second metaphase to the same level as the first metaphase. Since effective concentrations of trichostatin A (TSA) to inhibit the deacetylation were different in various lysine residues, multiple histone deacetylases (HDACs) were suggested to function during meiotic maturation. The trimethylation of H3K9 was maintained in a high level throughout maturation. These results suggest that the histone acetylation during porcine oocyte maturation is precisely controlled by the cell cycle.  相似文献   

12.
Histone acetylation is associated with a diversity of chromatin-related processes in mitosis. However, its roles in mammalian oocyte meiosis are largely unknown. In the present study, we first investigated in detail the acetylation changes during porcine oocyte maturation using a panel of antibodies specific for the critical acetylated forms of histone H3 and H4, and showed meiosis stage-dependent and lysine residue-specific patterns of histone acetylation. By using trichostatin A (TSA), a general inhibitor of histone deacetylases (HDACs), we further determined that selective inhibition of histone deacetylation (thereby maintaining hyperacetylation) delayed the onset of germinal vesicle breakdown and produced a high frequency of lagging chromosomes or chromatin bridges at anaphase and telophase I (AT-I), suggesting that histone deacetylation is required for orderly meiotic resumption and accurate chromosome segregation in porcine oocytes. In addition, we examined the localization and expression of HDAC1 by performing immunofluorescence and immunoblotting analysis. The results showed that subcellular translocation, expression level and phosphorylated modification of HDAC1 were temporally regulated and likely to co-participate in the establishment of histone acetylation profiles in oocyte meiosis.  相似文献   

13.
Changes in histone acetylation during mouse oocyte meiosis   总被引:11,自引:0,他引:11  
We examined global changes in the acetylation of histones in mouse oocytes during meiosis. Immunocytochemistry with specific antibodies against various acetylated lysine residues on histones H3 and H4 showed that acetylation of all the lysines decreased to undetectable or negligible levels in the oocytes during meiosis, whereas most of these lysines were acetylated during mitosis in preimplantation embryos and somatic cells. When the somatic cell nuclei were transferred into enucleated oocytes, the acetylation of lysines decreased markedly. This type of deacetylation was inhibited by trichostatin A, a specific inhibitor of histone deacetylase (HDAC), thereby indicating that HDAC is able to deacetylate histones during meiosis but not during mitosis. Meiosis-specific deacetylation may be a consequence of the accessibility of HDAC1 to the chromosome, because HDAC1 colocalized with the chromosome during meiosis but not during mitosis. As histone acetylation is thought to play a role in propagating the gene expression pattern to the descendent generation during mitosis, and the gene expression pattern of differentiated oocytes is reprogrammed during meiosis to allow the initiation of a new program by totipotent zygotes of the next generation, our results suggest that the oocyte cytoplasm initializes a program of gene expression by deacetylating histones.  相似文献   

14.
In our study, we have examined the pattern of global histone modification changes in somatic cell nuclei after their transfer into mouse oocytes at different stages of maturation or after their parthenogenetic activation. While germinal vesicle (GV) staged immature oocytes are strongly labeled with anti-acetylated histone H3 and H4 antibodies, the signal is absent in both metaphase I and metaphase II oocytes (MI, MII). In contrast, the oocytes of all maturation stages show a presence of trimethylated H3/K4 in their chromatin. When somatic cells were fused to intact or enucleated GV oocytes, both the GV and the somatic cell nucleus showed a very strong signal for all the antibodies used. On the other hand, when somatic cells nuclei that are AcH3 and AcH4 positive before fusion are introduced into either intact or enucleated MI or MII oocytes, their acetylation signal decreased rapidly and was totally absent after a prolonged culture. This was not the case when anti-trimethyl H3/K4 antibody was used. The somatic cell chromatin showed only a slight decrease in the intensity of labeling after its transfer into MI or MII oocytes. This decrease was, however, evident only after a prolonged culture. These results suggest not only a relatively higher stability of the methylation modification but also some difference between the oocyte and somatic chromatin. The ability to deacetylate the chromatin of transferred somatic nuclei disappears rapidly after the oocyte activation. Our results indicate that at least some reprogramming activity appears in the oocyte cytoplasm almost immediately after GV breakdown (GVBD), and that this activity rapidly disappears after the oocyte activation.  相似文献   

15.
16.
Histone acetylation is an important epigenetic modification implicated in the regulation of chromatin structure and, subsequently, gene expression. Global histone deacetylation was reported in mouse oocytes during meiosis but not mitosis. The regulation of this meiosis-specific deacetylation has not been elucidated. Here, we demonstrate that p34(cdc2) kinase activity and protein synthesis are responsible for the activation of histone deacetylases and the inhibition of histone acetyltransferases (HATs), respectively, resulting in deacetylation of histone H4 at lysine-12 (H4K12) during mouse oocyte meiosis. Temporal changes in the acetylation state of H4K12 were examined immunocytochemically during meiotic maturation using an antibody specific for acetylated H4K12. H4K12 was deacetylated during the first meiosis, temporarily acetylated around the time of the first polar body (PB1) extrusion, and then deacetylated again during the second meiosis. Because these changes coincided with the known oscillation pattern of p34(cdc2) kinase activity, we investigated the involvement of the kinase in H4K12 deacetylation. Roscovitine, an inhibitor of cyclin-dependent kinase activity, prevented H4K12 deacetylation during both the first and second meiosis, suggesting that p34(cdc2) kinase activity is required for deacetylation during meiosis. In addition, cycloheximide, a protein synthesis inhibitor, also prevented deacetylation. After PB1 extrusion, at which time H4K12 had been deacetylated, H4K12 was re-acetylated in the condensed chromosomes by treatment with cycloheximide but not with roscovitine. These results demonstrate that HATs are present but inactivated by newly synthesized protein(s) that is (are) not involved in p34(cdc2) kinase activity. Our results suggest that p34(cdc2) kinase activity induces the deacetylation of H4K12 and that the deacetylated state is maintained by newly synthesized protein(s) that inhibits HAT activity during meiosis.  相似文献   

17.
Histone modifications are associated with many fundamental biological processes in cells. An emerging notion from recent studies is that meiosis stage-dependent histone modifications are crucial for the oocyte development in mammals. In this paper, we review the changes and regulation as well as functions of histone modifications during meiotic maturation of mammalian oocyte, with particular emphasis on histone acetylation, phosphorylation and methylation. In general, dynamic and differential modification patterns have been revealed during oocyte maturation, indicative of functional requirement. Disruption of histone modifications leads to defective chromosome condensation and segregation, delayed maturation progression and even oocyte aging. Although several histone-modifying enzymes have been identified in mammalian oocytes, more works are necessary to determine how they direct histone modifications globally and individually in oocytes. Studies on chromatin modification during oocyte development will have implications for our understanding of the mechanisms controlling nuclear architecture and genomic stability in female germ line.  相似文献   

18.
Histone acetylation plays an important role in the regulation of chromatin structure and gene function. In mammalian oocytes, histones H3 and H4 are highly acetylated during the germinal vesicle (GV) stage, and global histone deacetylation takes place via a histone deacetylase (HDAC)-dependent mechanism after GV breakdown (GVBD). The presence of HDACs in the GVs of mammalian oocytes in spite of the high acetylation states of nuclear histones indicates that the HDACs in the nucleus are inactive but become activated after GVBD. However, the fluctuation pattern, the localization of HDAC activity during meiotic maturation and, moreover, the responsibility of nuclear HDACs for global histone deacetylation are still unknown. Here, we demonstrated using porcine oocytes that total HDAC activity was maintained throughout meiotic maturation, and high HDAC activity was observed in both the nucleus and the cytoplasm at the GV stage. The experiments with valproic acid (VPA), a specific class I HDAC inhibitor, revealed that the HDACs in GVs were class I, and those in the cytoplasm were other than class I. Interestingly, VPA had no effect on global histone deacetylation after GVBD, indicating that nuclear HDACs were not required for global histone deacetylation. To confirm this possibility, we removed the nuclei from immature oocytes, injected somatic cell nuclei into the enucleated oocytes, and showed that injected somatic cell nuclei were dramatically deacetylated after nuclear envelope breakdown. These results revealed that nuclear contents, including class I HDACs, are not required for the global histone deacetylation during meiosis, and that cytoplasmic HDACs other than class I are responsible for this process.  相似文献   

19.
Aging decreases the fertility of mammalian females. In old oocytes at metaphase II stage (MII) there are alterations of the chromatin configuration and chromatin modifications such as histone acetylation. Recent data indicate that alterations of histone acetylation at MII initially arise at germinal vesicle stage (GV). Therefore, we hypothesized that the chromatin configuration and histone methylation could also change in old GV oocytes. In agreement with our hypothesis, young GV oocytes had non-surrounded nucleolus (NSN) and surrounded nucleolus (SN) chromatin configurations, while old GV oocytes also had chromatin configurations that could not be classified as NSN or SN. Regarding histone methylation, young GV and MII oocytes showed dimethylation of lysines 4, 9, 36 and 79 in histone 3 (H3K4me2, H3K9me2, H3K36me2, H3K79me2), lysine 20 in histone H4 (H4K20me2) and trimethylation of lysine 9 in histone 3 (H3K9me3) while a significant percentage of old GV and MII oocytes lacked H3K9me3, H3K36me2, H3K79me2 and H4K20me2. The percentage of old oocytes lacking histone methylation was similar at GV and MII suggesting that alterations of histone methylation in old MII oocytes initially arise at GV. Besides, the expression of the histone methylation-related factors Cbx1 and Sirt1 was also found to change in old GV oocytes. In conclusion, our study reports changes of chromatin configuration and histone methylation in old GV oocytes, which could be very useful for further understanding of human infertility caused by aging.  相似文献   

20.
《Theriogenology》2011,75(9):1539-1547
Aging decreases the fertility of mammalian females. In old oocytes at metaphase II stage (MII) there are alterations of the chromatin configuration and chromatin modifications such as histone acetylation. Recent data indicate that alterations of histone acetylation at MII initially arise at germinal vesicle stage (GV). Therefore, we hypothesized that the chromatin configuration and histone methylation could also change in old GV oocytes. In agreement with our hypothesis, young GV oocytes had non-surrounded nucleolus (NSN) and surrounded nucleolus (SN) chromatin configurations, while old GV oocytes also had chromatin configurations that could not be classified as NSN or SN. Regarding histone methylation, young GV and MII oocytes showed dimethylation of lysines 4, 9, 36 and 79 in histone 3 (H3K4me2, H3K9me2, H3K36me2, H3K79me2), lysine 20 in histone H4 (H4K20me2) and trimethylation of lysine 9 in histone 3 (H3K9me3) while a significant percentage of old GV and MII oocytes lacked H3K9me3, H3K36me2, H3K79me2 and H4K20me2. The percentage of old oocytes lacking histone methylation was similar at GV and MII suggesting that alterations of histone methylation in old MII oocytes initially arise at GV. Besides, the expression of the histone methylation-related factors Cbx1 and Sirt1 was also found to change in old GV oocytes. In conclusion, our study reports changes of chromatin configuration and histone methylation in old GV oocytes, which could be very useful for further understanding of human infertility caused by aging.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号