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1.
《遗传》2019,(12)
体细胞核移植(somatic cell nuclear transfer, SCNT)是唯一能赋予体细胞基因组全能性的生殖工程技术,对动物种质资源保存、畜牧业发展和生物医学研究等具有重大意义。尽管该技术已经取得了许多研究进展,但哺乳动物克隆胚胎的发育效率依然很低,严重限制其在畜牧业和生物医学上的应用。导致克隆胚胎发育效率低的主要原因是体细胞重编程错误或重编程不完全,主要表现为:印记基因Xist表达异常、DNA甲基化异常,组蛋白修饰异常等。本文简要介绍了体细胞核移植技术,系统总结了哺乳动物克隆胚胎发育效率低的主要影响因素,以期为提升体细胞克隆效率相关研究与实践提供理论参考。  相似文献   

2.
体细胞核移植胚胎核重编程的研究进展   总被引:3,自引:0,他引:3  
杨正田  沈伟  邓继先 《遗传学报》2004,31(6):641-646
尽管在多种哺乳动物种系中成功制备了体细胞克隆后代,但当前的克隆技术仍有许多亟待解决的问题。体细胞核移植胚胎大多存在许多发育异常,造成了妊娠早期高流产率和出生后高死亡率。有研究认为,克隆胚胎发育障碍的一个重要的原因是供体细胞的遗传重编程不完全。哺乳动物种系中,DNA甲基化是胚胎发育期转录调节的必需步骤,除了单拷贝基因序列外,在基因组很多的区域都可以观测到克隆胚胎的异常甲基化。此外,克隆胚胎的基因印迹也存在异常。  相似文献   

3.
初次卵裂时间是猪克隆胚胎发育潜能的重要标识   总被引:2,自引:0,他引:2  
初次卵裂时间与哺乳动物胚胎发育潜能有关.比较了不同初次卵裂时间(20~24 h,早期;25~36 h,中期;37~48 h,晚期;20~48 h,对照)的猪孤雌(parthenogenetic,PA)、体细胞核移植(somatic cell nuclear transfer,SCNT)胚胎的囊胚发育率、扩张囊胚发育率和囊胚细胞数,评价其体外发育能力.发现早期卵裂的PA胚胎发育到第6天的囊胚发育率显著高于中期、晚期以及对照组(P < 0.05;54.0% vs. 19.6%,5.4%,18.7%).扩张囊胚发育率,早裂胚胎同样优于其他组.早期卵裂的SCNT胚胎发育到第6天的囊胚比率高于中期卵裂胚胎(32.2% vs. 23.5%),而晚期卵裂胚胎发育到囊胚的比率最低(6.3%).早期卵裂的SCNT胚胎发育到第6天的扩张囊胚比率显著高于其余各组 (P < 0.05;18.9% vs. 5.9%、3.1%、7.4%).囊胚细胞数在早期、中期、晚期三组之间表现出下降趋势.将早期卵裂的SCNT胚胎与未经挑选的对照组胚胎分别进行移植,观察其体内发育能力.移植早裂SCNT胚胎的受体在产仔数和克隆效率上均明显高于未经挑选胚胎的受体(4.7 vs. 2.1;3.9% vs. 0.9%),说明早裂胚胎着床后具有更强的发育能力.以上结果表明:初次卵裂时间可以作为猪克隆胚胎发育潜能的重要标识,选择早裂的胚胎进行移植,有助于提高克隆效率.  相似文献   

4.
印迹基因及其对胚胎发育的调控   总被引:1,自引:0,他引:1  
某个基因位点呈单等位基因表达,且通过某种基因修饰作用来特异地抑制另一等位基因的表达,将这一基因称为印迹基因,它是等位基因排斥作用的一种特殊形式. 多数印迹基因与胚胎发育有关,可以调节胚胎的生长、发育及新生儿的生长,印迹功能的紊乱可以导致多种发育异常及死胎. 印迹基因的形成、特异识别及印迹性表达缺陷的机制还不清楚.  相似文献   

5.
基因组印记对个体发育及动物克隆的影响   总被引:3,自引:0,他引:3  
侯晓军  焦丽红  陈新  王柳 《遗传学报》2005,32(5):550-554
介绍了印记基因对个体发育及动物克隆的深远影响。通过分析有关印记基因起源的几种不同假说,展现印记基因的作用方式与功能;探讨印记基因特殊的形成机制,有助于深入理解这一表观遗传修饰调节对动物个体发育和动物克隆的影响。印记基因对哺乳动物胎儿的发育具有十分重要的作用,对个体的生长与行为也有一定影响,特别是对胎盘发育极为重要。一旦表达失控就会导致多种疾病发生,大量证据表明许多肿瘤的发生都与其相应基因组印记丢失有关。在当前动物克隆研究中,克隆动物成活率低,具有大量表型异常及不同程度缺陷,而这些异常与许多印记基因表达失调导致的症状非常相似。因此,克隆动物的印记基因表达异常可能正是制约克隆效率提高的关键因素。  相似文献   

6.
胚胎神经发育过程中,众多基因时空性表达及其表达产物相互作用形成精确的调控,其中某些基因表达质或量的改变会引起胚胎发育异常,导致先天畸形的发生.这一精确的基因表达调控过程是在转录及转录后等不同水平进行的.MicroRNAs(miRNAs),是这个基因调控大家族中新的成员.目前研究表明miRNAs在神经干细胞的不同发育阶段和哺乳动物脑发育过程中有不同的表达模式,这表明miRNAs可能在胚胎神经发育过程中起作用.本文就miRNAs在胚胎神经发育过程中的表达及功能作一综述.  相似文献   

7.
体细胞核移植(somatic cell nuclear transfer,SCNT)技术可将体细胞重编程为全能细胞,但研究人员对这一过程中染色体3D构象的重塑却知之甚少。清华大学生命科学学院颉伟研究组与华中农业大学动科动医学院苗义良研究组通过少量细胞全基因组染色质构象捕获技术(sisHi-C)检测了小鼠SCNT胚胎和体外受精(in vitro fertilization, IVF)胚胎卵裂期染色体构象变化(2020年6月23日在线发表,doi:10.1016/j.molcel.2020.06.001)。研究发现胚胎在卵裂期发育过程中拓扑相关结构域(topologically associating domain, TADs)相较其供体细胞或MII卵显著减弱,但SCNT胚胎在1-细胞期TADs明显强于相应时期的体外受精胚胎,2-细胞期之后两种胚胎TADs的变化趋同,2-细胞期之后TADs减弱,至8-细胞期TADs重新增强。研究人员进一步在1-细胞期敲低了TADs关键蛋白Cohesin (黏连蛋白),发现Cohesin敲低的SCNT胚胎1-细胞期TADs和对照组相比明显减弱,胚胎发育至囊胚的比例显著增加。转录组测序发现Cohesin敲低后的染色体构象变化促进了初级合子基因组激活相关基因的表达,从而促进了SCNT胚胎的体外发育。该研究结果表明染色体构象的异常可能是SCNT胚胎发育能力较IVF胚胎低的重要原因,为提高SCNT胚胎发育能力提供了新思路。  相似文献   

8.
核移植后,克隆胎儿的发育需要通过胎盘与母体进行物质交换。供体核重编程的错误常导致克隆胎盘异常,如胎盘过大、滋养层异常和血管缺陷等,这些现象通常与蛋白质表达的异常有关。克隆胎盘的缺陷会影响克隆胎儿的发育,降低胎儿的出生率,这可能是造成动物克隆效率低下的一个重要原因。  相似文献   

9.
体细胞核移植(somatic cell nuclear transfer,SCNT)效率低下严重制约了克隆猪的产出,而在SCNT胚胎中表现出的表观遗传重编程(epigenetic reprogramming)不完全是导致该结果的重要原因。大量的研究表明组蛋白去乙酰化酶抑制剂(histone deacetylase inhibitor,HDACi),如Scriptaid(SCR),能够修复克隆胚胎的表观遗传重编程状态,包括提高供体核组蛋白的乙酰化水平、促进重要转录因子的转录活性以及增强染色质重塑等,从而促进SCNT胚胎的发育。本综述在参阅国内外研究成果的基础上对SCR在猪克隆中的应用进行分析和论述,以期为进一步在克隆猪的生产实践中加以应用奠定基础。  相似文献   

10.
表观遗传修饰在基因表达和克隆胚胎的早期发育方面有重要作用.表现遗传修饰至少发生在两个关键时期--配子形成期和植入前胚胎,如果在此期间发生异常,则会导致胚胎的死亡及出生后各种疾病的发生.其中DNA的甲基化是最重要的一种表观遗传修饰类型,DNA甲基化在哺乳动物发育过程中起关键作用.综述几种类型抗肿瘤药物作用机制——其使胚胎的DNA甲基化降低,引起转录活性降低,进而导致胚胎发育停滞.  相似文献   

11.
Findings from recent studies have suggested that the low survival rate of animals derived via somatic cell nuclear transfer (SCNT) may be in part due to epigenetic abnormalities brought about by this procedure. DNA methylation is an epigenetic modification of DNA that is implicated in the regulation of imprinted genes. Genes subject to genomic imprinting are expressed monoallelically in a parent of origin-dependent manner and are important for embryo growth, placental function, and neurobehavioral processes. The vast majority of imprinted genes have been studied in mice and humans. Herein, our objectives were to characterize the bovine SNRPN gene in gametes and to compare its methylation profile in in vivo-produced, in vitro-produced, and SCNT-derived Day 17 elongating embryos. A CpG island within the 5' region of SNRPN was identified and examined using bisulfite sequencing. SNRPN alleles were unmethylated in sperm, methylated in oocytes, and approximately 50% methylated in somatic samples. The examined SNRPN region appeared for the most part to be normally methylated in three in vivo-produced Day 17 embryos and in eight in vitro-produced Day 17 embryos examined, while alleles from Day 17 SCNT embryos were severely hypomethylated in seven of eight embryos. In this study, we showed that the SNRPN methylation profiles previously observed in mouse and human studies are also conserved in cattle. Moreover, SCNT-derived Day 17 elongating embryos were abnormally hypomethylated compared with in vivo-produced and in vitro-produced embryos, which in turn suggests that SCNT may lead to faulty reprogramming or maintenance of methylation imprints at this locus.  相似文献   

12.
The great majority of embryos generated by somatic cell nuclear transfer (SCNT) display defined abnormal phenotypes after implantation, such as an increased likelihood of death and abnormal placentation. To gain better insight into the underlying mechanisms, we analyzed genome-wide gene expression profiles of day 6.5 postimplantation mouse embryos cloned from three different cell types (cumulus cells, neonatal Sertoli cells and fibroblasts). The embryos retrieved from the uteri were separated into embryonic (epiblast) and extraembryonic (extraembryonic ectoderm and ectoplacental cone) tissues and were subjected to gene microarray analysis. Genotype- and sex-matched embryos produced by in vitro fertilization were used as controls. Principal component analysis revealed that whereas the gene expression patterns in the embryonic tissues varied according to the donor cell type, those in extraembryonic tissues were relatively consistent across all groups. Within each group, the embryonic tissues had more differentially expressed genes (DEGs) (>2-fold vs. controls) than did the extraembryonic tissues (P<1.0×10–26). In the embryonic tissues, one of the common abnormalities was upregulation of Dlk1, a paternally imprinted gene. This might be a potential cause of the occasional placenta-only conceptuses seen in SCNT-generated mouse embryos (1–5% per embryos transferred in our laboratory), because dysregulation of the same gene is known to cause developmental failure of embryos derived from induced pluripotent stem cells. There were also some DEGs in the extraembryonic tissues, which might explain the poor development of SCNT-derived placentas at early stages. These findings suggest that SCNT affects the embryonic and extraembryonic development differentially and might cause further deterioration in the embryonic lineage in a donor cell-specific manner. This could explain donor cell-dependent variations in cloning efficiency using SCNT.  相似文献   

13.
Shen CJ  Cheng WT  Wu SC  Chen HL  Tsai TC  Yang SH  Chen CM 《PloS one》2012,7(2):e32812
DNA methylation is a major epigenetic modification in the mammalian genome that regulates crucial aspects of gene function. Mammalian cloning by somatic cell nuclear transfer (SCNT) often results in gestational or neonatal failure with only a small proportion of manipulated embryos producing live births. Many of the embryos that survive to term later succumb to a variety of abnormalities that are likely due to inappropriate epigenetic reprogramming. Aberrant methylation patterns of imprinted genes in cloned cattle and mice have been elucidated, but few reports have analyzed the cloned pig genome. Four surviving cloned sows that were created by ear fibroblast nuclear transfer, each with a different life span and multiple organ defects, such as heart defects and bone growth delay, were used as epigenetic study materials. First, we identified four putative differential methylation regions (DMR) of imprinted genes in the wild-type pig genome, including two maternally imprinted loci (INS and IGF2) and two paternally imprinted loci (H19 and IGF2R). Aberrant DNA methylation, either hypermethylation or hypomethylation, commonly appeared in H19 (45% of imprinted loci hypermethylated vs. 30% hypomethylated), IGF2 (40% vs. 0%), INS (50% vs. 5%), and IGF2R (15% vs. 45%) in multiple tissues from these four cloned sows compared with wild-type pigs. Our data suggest that aberrant epigenetic modifications occur frequently in the genome of cloned swine. Even with successful production of cloned swine that avoid prenatal or postnatal death, the perturbation of methylation in imprinted genes still exists, which may be one of reason for their adult pathologies and short life. Understanding the aberrant pattern of gene imprinting would permit improvements in future cloning techniques.  相似文献   

14.
15.
Su J  Wang Y  Li Y  Li R  Li Q  Wu Y  Quan F  Liu J  Guo Z  Zhang Y 《PloS one》2011,6(8):e23805
Aberrant epigenetic nuclear reprogramming results in low somatic cloning efficiency. Altering epigenetic status by applying histone deacetylase inhibitors (HDACi) enhances developmental potential of somatic cell nuclear transfer (SCNT) embryos. The present study was carried out to examine the effects of Oxamflatin, a novel HDACi, on the nuclear reprogramming and development of bovine SCNT embryos in vitro. We found that Oxamflatin modified the acetylation status on H3K9 and H3K18, increased total and inner cell mass (ICM) cell numbers and the ratio of ICM∶trophectoderm (TE) cells, reduced the rate of apoptosis in SCNT blastocysts, and significantly enhanced the development of bovine SCNT embryos in vitro. Furthermore, Oxamflatin treatment suppressed expression of the pro-apoptotic gene Bax and stimulated expression of the anti-apoptotic gene Bcl-XL and the pluripotency-related genes OCT4 and SOX2 in SCNT blastocysts. Additionally, the treatment also reduced the DNA methylation level of satellite I in SCNT blastocysts. In conclusion, Oxamflatin modifies epigenetic status and gene expression, increases blastocyst quality, and subsequently enhances the nuclear reprogramming and developmental potential of SCNT embryos.  相似文献   

16.
Wei Y  Huan Y  Shi Y  Liu Z  Bou G  Luo Y  Zhang L  Yang C  Kong Q  Tian J  Xia P  Sun QY  Liu Z 《PloS one》2011,6(5):e20154
The low success rate of somatic cell nuclear transfer (SCNT) in mammalian cloning is largely due to imprinting problems. However, little is known about the mechanisms of reprogramming imprinted genes during SCNT. Parental origin-specific DNA methylation regulates the monoallelic expression of imprinted genes. In natural fertilization, methylation imprints are established in the parental germline and maintained throughout embryonic development. However, it is unclear whether methylation imprints are protected from global changes of DNA methylation in cloned preimplantation embryos. Here, we demonstrate that cloned porcine preimplantation embryos exhibit demethylation at differentially methylated regions (DMRs) of imprinted genes; in particular, demethylation occurs during the first two cell cycles. By RNAi-mediated knockdown, we found that Dnmt1 is required for the maintenance of methylation imprints in porcine preimplantation embryos. However, no clear signals were detected in the nuclei of oocytes and preimplantation embryos by immunofluorescence. Thus, Dnmt1 is present at very low levels in the nuclei of porcine oocytes and preimplantation embryos and maintains methylation imprints. We further showed that methylation imprints were rescued in nonenucleated metaphase II (MII) oocytes. Our results indicate that loss of Dnmt1 in the maternal nucleus during SCNT significantly contributes to the unfaithful maintenance of methylation imprints in cloned embryos.  相似文献   

17.
In vitro systems for oocyte maturation, fertilization and embryo culture [in vitro production (IVP)] have the potential for more wide-spread use in creative breeding programs for dairy and beef cattle. However, one negative consequence of both IVP and somatic cell nuclear transfer (SCNT) in cattle and other species is that embryos, fetuses, placentas, and offspring can differ significantly in morphology and developmental competence compared with those from embryos produced in vivo. Fetuses and placentas derived from IVP and SCNT embryos may fall within the normal range of development, may have obvious abnormalities such as increased fetal and placental weights, or may have subtle abnormalities such as aberrant development of fetal skeletal muscle, placental blood vessels, and altered metabolism. Failures in physiologic and/or genetic mechanisms essential for proper fetal growth and survival outside of the uterus contribute significantly to pregnancy and neonatal losses. Oversized fetuses are at increased risk of death during parturition and the adverse consequences of severe dystocia may compromise the dam. Collectively, these abnormalities have been referred to as 'large offspring syndrome' or 'large calf syndrome'. Abnormal phenotypes resulting from IVP and SCNT embryos are stochastic in occurrence and they have not been consistently linked to aberrant expression of single genes or specific pathophysiology. Thus, reliable methods of early diagnosis of the condition are not yet available. The objective of this paper is to examine abnormal development of fetuses and placentas resulting from embryos produced using in vitro systems. The term 'abnormal offspring syndrome (AOS)' is introduced and a classification system of developmental outcomes is proposed to facilitate research efforts on the mechanisms of the various abnormal phenotypes. We also discuss potential genetic and physiologic mechanisms that may contribute to abnormal phenotypes following transfer of IVP and SCNT embryos.  相似文献   

18.
Platonov ES 《Ontogenez》2005,36(4):300-309
Genomic imprinting belongs by its nature to problems of epigenetics, which studies hereditary changes in gene expression not related to defective sequences of DNA nucleotides. Epigenetic mechanisms of control, including genomic imprinting, are involved in many processes of normal and pathological development of humans and animals. Disturbances of genomic imprinting may lead to various consequences, such as formation of developmental anomalies and syndromes in humans, appearance of the large offspring syndrome and increased mortality upon cloning of mammals, and death of parthenogenetic embryos soon after implantation and beginning of organogenesis. The death of diploid parthenogenetic or androgenetic mammalian embryos is determined by the absence of expression of the genes of imprinted loci of the maternal or paternal genome, which leads to significant defects in development of tissues and organs. A review is provided of the studies aimed at search of possible normalization of misbalanced gene activity and modulation of genomic imprinting effects during parthenogenetic development in mammals.  相似文献   

19.
20.
Although cloning of mammals has been achieved successfully, the percentage of live offspring is very low because of reduced fetal size and fewer implantation sites. Recent studies have attributed such pathological conditions to abnormal reprogramming of the donor cell used for cloning. The inability of the oocyte to fully restore the differentiated status of a somatic cell to its pluripotent and undifferentiated state is normally evidenced by aberrant DNA methylation patterns established throughout the genome during development to blastocyst. These aberrant methylation patterns are associated with abnormal expression of imprinted genes, which among other genes are essential for normal embryo development and gestation. We hypothesized that embryo loss and low implantation rates in cattle derived by somatic cell nuclear transfer (SCNT) are caused by abnormal epigenetic reprogramming of imprinted genes. To verify our hypothesis, we analyzed the parental expression and the differentially methylated domain (DMD) methylation status of the H19 gene. Using a parental-specific analysis, we confirmed for the first time that H19 biallelic expression is tightly associated with a severe demethylation of the paternal H19 DMD in SCNT embryos, suggesting that these epigenetic anomalies to the H19 locus could be directly responsible for the reduced size and low implantation rates of cloned embryos in cattle.  相似文献   

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