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1.
磷脂酶C的β亚型(PLCβ)在突触传递和可塑性的调节中发挥着重要作用。东亚三角涡虫Dugesia japonica作为首次出现三胚层的两侧对称动物,是研究发育和进化的重要模式生物。为了研究DjPLCβ4基因在东亚三角涡虫胚胎发育不同阶段的表达,通过RT-PCR和RACE技术克隆并验证了DjPLCβ4 cDNA的功能与表达图谱。结果显示,DjPLCβ4基因全长3 245 bp,编码969个氨基酸。系统进化树显示,东亚三角涡虫与其他物种的PLCβ4亚型聚群,并位于两侧对称动物的基部,可能是PLCβ4的原始类型。通过整体原位杂交技术研究DjPLCβ4基因在胚胎中的时空表达,DjPLCβ4基因最开始表达于胚胎发育的第3阶段,阳性信号主要位于胚胎咽及胚带;随着发育,胚胎孵化出幼虫,DjPLCβ4基因主要表达于神经原基和中枢神经系统。综上所述,东亚三角涡虫DjPLCβ4基因参与胚胎神经原基的形成和分化。  相似文献   

2.
为了探索东亚三角涡虫Djp53基因在涡虫组织中的表达和功能,利用整体原位杂交、RT-PCR技术,检测了涡虫Djp53基因在组织中的表达分布特点,结果表明,Djp53基因在再生1、3、5天的胚基中具有较强的阳性信号,且3天的表达量最高;而在再生7、10天和成虫的实质组织中表达较弱.RNA干扰后的RT-PCR检测显示,Djp53表达量显著下降,涡虫不能正常再生或出现眼点缺陷.由此推断,东亚三角涡虫Djp53基因在早期胚基发育阶段,通过调节多功能干细胞的迁移和增殖分化影响早期胚基的形成,是涡虫早期胚基发育必不可少的一个基因,并且在涡虫成体和再生后期对多功能干细胞的维持具有重要的作用.  相似文献   

3.
东亚三角涡虫cDNA文库的构建及EST初步分析   总被引:1,自引:0,他引:1  
为了快速高效地分离鉴定东亚三角涡虫的发育和再生相关基因,以总RNA为模板,借助CreatorTM SMARTTM cDNA Library Construction Kit和Advantage 2 PCR Kit成功构建了东亚三角涡虫的cDNA文库.经测定,cDNA文库原始库容为1.22×105个独立克隆,重组率超过98 %,插入片段平均大小为900 bp.从文库中随机挑选重组克隆测序,并在NCBI数据库中比对,结果获得208个rRNA基因,148个编码蛋白基因,78个染色体片段基因.该研究为我国涡虫发育和再生的深入研究奠定了坚实的分子基础.  相似文献   

4.
由Wnt基因家族产物与其它相关基因产物构成的Wnt信号通路,是细胞发育和生长调节的一个关键途径,对动物的发育特别是生殖系统的发育起重要的调节作用。在人类和小鼠中,Wnt4蛋白是性腺分化过程中主要调节因子,在胚胎发育中起着关键作用。利用RACE技术从日本血吸虫19d童虫中首次扩增到一个Wnt家族基因,序列分析表明该基因的完整编码框含1311bp,编码436个氨基酸,理论分子量49.6kD。同源性分析结果表明,该基因的氨基酸序列具有典型Wnt家族蛋白特征,与日本三角涡虫、人Wnt4的氨基酸序列相似性分别达43%、37%,推测为血吸虫的Wnt4基因,命名为Sjwnt4(GenBank登陆号DQ643829)。实时定量PCR分析显示该基因在14d童虫、19d童虫、31d虫体、44d雌虫及44d雄虫中均有表达,其中19d童虫中的表达量明显高于其它发育阶段,44d雌虫中的表达量明显高于雄虫。构建了该基因的原核表达载体pGEX_4T_2_Sjwnt4,应用大肠杆菌系统进行了表达,表达蛋白以包涵体形式存在,Western印迹显示表达产物能被日本血吸虫成虫粗抗原免疫血清所识别。Sjwnt4基因及其表达产物的获得,为探索Wnt信号通路对血吸虫发育、生殖的调节提供了重要基础。  相似文献   

5.
由Wnt基因家族产物与其它相关基因产物构成的Wnt信号通路,是细胞发育和生长调节的一个关键途径,对动物的发育特别是生殖系统的发育起重要的调节作用。在人类和小鼠中,Wnt4蛋白是性腺分化过程中主要调节因子,在胚胎发育中起着关键作用。利用RACE技术从日本血吸虫19d童虫中首次扩增到一个Wnt家族基因,序列分析表明该基因的完整编码框含1311bp,编码436个氨基酸,理论分子量49.6kD。同源性分析结果表明,该基因的氨基酸序列具有典型Wnt家族蛋白特征,与日本三角涡虫、人Wnt4的氨基酸序列相似性分别达43%、37%,推测为血吸虫的Wnt4基因,命名为Sjwnt4(GenBank登陆号DQ643829)。实时定量PCR分析显示该基因在14d童虫、19d童虫、31d虫体、44d雌虫及44d雄虫中均有表达,其中19d童虫中的表达量明显高于其它发育阶段,44d雌虫中的表达量明显高于雄虫。构建了该基因的原核表达载体pGEX_4T_2_Sjwnt4,应用大肠杆菌系统进行了表达,表达蛋白以包涵体形式存在,Western印迹显示表达产物能被日本血吸虫成虫粗抗原免疫血清所识别。Sjwnt4基因及其表达产物的获得,为探索Wnt信号通路对血吸虫发育、生殖的调节提供了重要基础。  相似文献   

6.
为了表达东亚三角涡虫RhoA蛋白,采用温控表达载体pBV220-IL1,构建了原核表达重组质粒pBV220-IL1-RhoA,转化到E.coli DH5α中,利用42℃热激诱导表达,并进行了分离纯化和Western杂交鉴定,利用荧光免疫组织化学技术检测了在涡虫体内的分布。SDS-PAGE电泳表明诱导表达的融合蛋白约为18 kDa,Western杂交结果显示是目的蛋白,荧光免疫组织化学结果表明RhoA蛋白在东亚三角涡虫神经系统处表达。  相似文献   

7.
由Wnt基因家族产物与其它相关基因产物构成的Wnt信号通路,是细胞发育和生长调节的一个关键途径,对动物的发育特别是生殖系统的发育起重要的调节作用。在人类和小鼠中,Wnt4蛋白是性腺分化过程中主要调节因子,在胚胎发育中起着关键作用。利用RACE技术从日本血吸虫19d童虫中首次扩增到一个Wnt家族基因,序列分析表明该基因的完整编码框含1311bp,编码436个氨基酸,理论分子量49.6kD。同源性分析结果表明,该基因的氨基酸序列具有典型Wnt家族蛋白特征,与日本三角涡虫、人Wnt4的氨基酸序列相似性分别达43%、37%,推测为血吸虫的Wnt4基因,命名为Sjwnt4(GenBank登陆号DQ643829)。实时定量PCR分析显示该基因在14d童虫、19d童虫、31d虫体、44d雌虫及44d雄虫中均有表达,其中19d童虫中的表达量明显高于其它发育阶段,44d雌虫中的表达量明显高于雄虫。构建了该基因的原核表达载体pGEX-4T-2-Sjwnt4,应用大肠杆菌系统进行了表达,表达蛋白以包涵体形式存在,Western印迹显示表达产物能被日本血吸虫成虫粗抗原免疫血清所识别。Sjwnt4基因及其表达产物的获得,为探索Wnt信号通路对血吸虫发育、生殖的调节提供了重要基础。  相似文献   

8.
已知绒山羊毛囊的发育受Wnt等信号通路控制,但Wnt通路相关基因在绒山羊胚胎毛囊启动和生长发育过程中的表达及作用机制尚不清楚。本文采用RNA-Seq技术对45 d,55 d和65 d的绒山羊胚胎体侧皮肤进行了转录组测序,鉴定Wnt通路相关基因的表达。 RNA- Seq技术结合blast搜索,将转录组有效测序数据与云南黑山羊参考基因组序列(http://goat. kiz.ac. cn/GGD/download.htm)比对,获得了已知的Wnt通路(pathway hsa04310)中的123个相关基因(86.0%)。进而采用实时荧光定量PCR技术检测,验证了差异表达的Sfrp4、Wnt3、Wnt10a(上调)和Apc2(下调)基因在绒山羊胚胎不同时期皮肤中的表达量,初步探索了绒山羊毛囊在胚胎期启动、发育过程中,Wnt通路部分基因的表达模式,为进一步研究Wnt通路部分基因在绒山羊胚胎毛囊启动、发育过程中的作用机制提供了有意义的线索。  相似文献   

9.
小鼠胚胎发育过程中Brachyury对Wnt信号通路的作用研究   总被引:1,自引:0,他引:1  
Brachyury对调控小鼠胚胎发育起着至关重要的作用,缺乏Brachyury蛋白的小鼠胚胎不能正常发育。Wnt信号通路在小鼠胚胎发育中可控制胚胎的轴向发育等重要的生理过程,Brachyury可能通过与Wnt信号通路的相互作用导致短尾表型的产生。为了揭示Brachyury与Wnt信号通路相互作用关系,本研究制作了Brachyury突变小鼠,通过提取不同时期的胚胎并提取总RNA,经反转录进行qPCR检测Brachyury与Wnt信号通路相关成分的表达关系。结果显示,Brachyury、Axin2、Dkk1及Wnt3a的表达在突变胚胎和野生胚胎中的表达有显著差异。因此,Brachyury作为转录因子对上述Wnt信号通路成分的表达有调节作用,它们形成一个调控网络调控小鼠胚胎的正常发育。本研究为小鼠胚胎发育期间Brachyury (T)的功能作用提供了理论基础。  相似文献   

10.
通过构建东亚三角涡虫(Dujesia japonica)cDNA文库,随机挑选重组阳性克隆进行测序,对部分序列进行引物步移法测序,获得1个三角涡虫新基因——Rab蛋白基因(DjR),涡虫Rab蛋白cDNA全长2 141 bp,开放性阅读框(ORF)621bp,编码206个氨基酸,相对分子量为23.1 kD,等电点6.59,属亲水性蛋白,主要定位于细胞质中,在氨基酸第20和21位之间有信号肽剪切位点。有8个磷酸化位点。含有小G蛋白家族5个保守的鸟苷酸结合区域。同源性比较分析结果表明,其碱基序列与已经报道的其他23个物种的相似性为53%-90%,且符合种属之间的进化关系。  相似文献   

11.
Wnt(wingless-type MMTV integration site family members)信号通路与细胞的发育分化密切相关,尤其对动物胚胎期中枢神经系统的发育至关重要。在眼的早期发育中,视泡背部视网膜色素上皮细胞(RPE)Wnt/βcatenin信号通路高度活跃,对神经视网膜及RPE的发育调控起重要作用。本文结合目前该领域研究进展,综合评述Wnt信号通路、Wnt蛋白家族以及Wnt信号通路与RPE发育的关系。  相似文献   

12.
The question of how the vertebrate embryo gives rise to a nervous system is of paramount interest in developmental biology. Neural induction constitutes the earliest step in this process and is tightly connected with development of the embryonic body axes. In the Xenopus embryo, perpendicular gradients of BMP and Wnt signals pattern the dorsoventral and anteroposterior body axes. Both pathways need to be inhibited to allow anterior neural induction to occur. FGF8 and IGF are active neural inducers that together with BMP and Wnt signals are integrated at the level of Smad 1/5/8 phosphorylation. Hedgehog (Hh) also contributes to anterior neural induction. Suppressor-of-fused plays an important role in intertwining the Hh and Wnt pathways. Distinct mechanisms are discussed that establish morphogen gradients and integrate retinoic acid and FGF signals during posterior development. These findings not only improve our understanding of regional specification in neural induction, but have profound implications for mammalian stem cell research and regenerative medicine.  相似文献   

13.
The Wnt/beta-catenin pathway plays important roles during embryonic development and growth control. The B56 regulatory subunit of protein phosphatase 2A (PP2A) has been implicated as a regulator of this pathway. However, this has not been investigated by loss-of-function analyses. Here we report loss-of-function analysis of PP2A:B56epsilon during early Xenopus embryogenesis. We provide direct evidence that PP2A:B56epsilon is required for Wnt/beta-catenin signaling upstream of Dishevelled and downstream of the Wnt ligand. We show that maternal PP2A:B56epsilon function is required for dorsal development, and PP2A:B56epsilon function is required later for the expression of the Wnt target gene engrailed, for subsequent midbrain-hindbrain boundary formation, and for closure of the neural tube. These data demonstrate a positive role for PP2A:B56epsilon in the Wnt pathway.  相似文献   

14.
Ablations of the Axin family genes demonstrated that they modulate Wnt signaling in key processes of mammalian development. The ubiquitously expressed Axin1 plays an important role in formation of the embryonic neural axis, while Axin2 is essential for craniofacial skeletogenesis. Although Axin2 is also highly expressed during early neural development, including the neural tube and neural crest, it is not essential for these processes, apparently due to functional redundancy with Axin1. To further investigate the role of Wnt signaling during early neural development, and its potential regulation by Axins, we developed a mouse model for conditional gene activation in the Axin2-expressing domains. We show that gene expression can be successfully targeted to the Axin2-expressing cells in a spatially and temporally specific fashion. High levels of Axin in this domain induce a region-specific effect on the patterning of neural tube. In the mutant embryos, only the development of midbrain is severely impaired even though the transgene is expressed throughout the neural tube. Axin apparently regulates beta-catenin in coordinating cell cycle progression, cell adhesion and survival of neuroepithelial precursors during development of ventricles. Our data support the conclusion that the development of embryonic neural axis is highly sensitive to the level of Wnt signaling.  相似文献   

15.
Wnt signaling plays an important role in cell growth, differentiation, polarity formation, and neural development. We have recently identified the Coiled-coil-DIX1 (Ccd1) gene encoding a third type of a DIX domain-containing protein. Ccd1 forms homomeric and heteromeric complexes with Dishevelled and Axin, and positively regulates the Wnt/beta-catenin pathway. Here, we examined the spatiotemporal expression pattern of Ccd1 mRNA in mouse embryos from embryonic day 6.5 (E6.5) to E17.5 by in situ hybridization. Ccd1 expression was detected in the node region in gastrula embryos, in the cephalic mesenchyme and tail bud at E8.5, and in the branchial arch and forelimb bud at E9.5. In the central nervous system, Ccd1 expression began and persisted in the regions where the neurons differentiated, so that it was observed throughout the brain and spinal cord at E17.5. Ccd1 expression was also strong in the peripheral nervous system, including sensory cranial ganglia (trigeminal, facial, and vestibulocochlear ganglia), dorsal root ganglia, and autonomic ganglia (sympathetic ganglia, celiac ganglion, and hypogastric plexus). Ccd1 was detected in the sensory organs, such as the inner nuclear layer of the neural retina, saccule and cochlea of the inner ear, and nasal epithelium. Outside the nervous system, Ccd1 mRNA was observed in the cartilage, tongue, lung bud, stomach, and gonad at E12.5-E14.5, and in the tooth bud, bronchial epithelium, and kidney at E17.5. Taken together, these findings demonstrate that Ccd1 expression is observed in all the neurons in the nervous system, closely associated with neural crest-derived tissues, and largely overlapping with the regions where several Wnt genes are reported to play a role.  相似文献   

16.
Little is known about the molecular mechanisms responsible for axis establishment during non-embryonic processes such as regeneration and homeostasis. To address this issue, we set out to analyze the role of the canonical Wnt pathway in planarians, flatworms renowned for their extraordinary morphological plasticity. Canonical Wnt signalling is an evolutionarily conserved mechanism to confer polarity during embryonic development, specifying the anteroposterior (AP) axis in most bilaterians and the dorsoventral (DV) axis in early vertebrate embryos. beta-Catenin is a key element in this pathway, although it is a bifunctional protein that is also involved in cell-cell adhesion. Here, we report the characterization of two beta-catenin homologs from Schmidtea mediterranea (Smed-betacatenin1/2). Loss of function of Smed-betacatenin1, but not Smed-betacatenin2, in both regenerating and intact planarians, generates radial-like hypercephalized planarians in which the AP axis disappears but the DV axis remains unaffected, representing a unique example of a striking body symmetry transformation. The radial-like hypercephalized phenotype demonstrates the requirement for Smed-betacatenin1 in AP axis re-establishment and maintenance, and supports a conserved role for canonical Wnt signalling in AP axis specification, whereas the role of beta-catenin in DV axis establishment would be a vertebrate innovation. When considered alongside the protein domains present in each S. mediterranea beta-catenin and the results of functional assays in Xenopus embryos demonstrating nuclear accumulation and axis induction with Smed-betacatenin1, but not Smed-betacatenin2, these data suggest that S. mediterranea beta-catenins could be functionally specialized and that only Smed-betacatenin1 is involved in Wnt signalling.  相似文献   

17.
Wnt signaling plays a crucial role in the control of morphogenesis in several tissues. Herein, we describe the role of Wnt11 during cardiac differentiation of embryonic stem cells. First, we examined the expression profile of Wnt11 during the course of differentiation in embryoid bodies, and then compared its expression in retinoic acid-treated embryoid bodies with that in untreated. In differentiating embryoid bodies, Wnt11 expression rose along with that of Nkx2.5 expression and continued to increase. When the embryoid bodies were treated with retinoic acid, Wnt11 expression decreased in parallel with the decreased expression of cardiac genes. Further, treatment of embryoid bodies with medium containing Wnt11 increased the expression of cardiac marker genes. Based on these results, we propose that Wnt11 plays an important role for cardiac development by embryoid bodies, and may be a key regulator of cardiac muscle cell proliferation and differentiation during heart development.  相似文献   

18.
Yoo S  Kim Y  Lee H  Park S  Park S 《Molecules and cells》2012,34(1):103-108
Tiam-1 has been implicated in the development of the central nervous system. However, the in vivo function of Tiam-1 has not been fully determined in the developing mouse brain. In this study, we generated Tiam-1 knockout mice using a Tiam-1 gene-trapped embryonic stem cell line. Insertion of a gene trap vector into a genomic site downstream of exon 5 resulted in a mutant allele encoding a truncated protein fused with the β-geo LacZ gene. Primary mouse embryonic fibroblasts lacking Tiam-1 revealed a significant decrease in Rac activity and cell proliferation. In addition, whole-mount embryonic LacZ expression analysis demonstrated that Tiam-1 is specifically expressed in regions of the developing brain, such as the caudal telencephalon and rostral diencephalon. More importantly, mouse embryos deficient in Tiam-1 gene expression displayed a severe defect in embryonic brain development, including neural tube closure defects or a dramatic decrease in brain size. These findings suggest that embryonic Tiam-1 expression plays a critical role during early brain development in mice.  相似文献   

19.
The expression of heparan sulfate glycosaminoglycan (HS-GAG) was examined in Xenopus embryos during the developmental stages. Chemical analysis showed the existence of HS-GAG in the 35S-labeled embryos. By western blot analysis using a specific anti-HS monoclonal antibody, HS-GAG related epitope was found after the neurulation on two protein bands, whose molecular weights were approximately 90 kDa and 100 kDa, respectively. Immunohistochemistry revealed that HS-GAG occurred exclusively in the animal hemisphere in early gastrulae, and then appeared predominantly on the sheath of the neural tube, the notochord and epithelium. To address whether HS-GAG chains contribute to Xenopus embryonic development, we eliminated the embryonic HS-GAG by injecting purified Flavobacterium heparitinases (HSase) into their blastocoels. Most of the injected embryos were aberrant in mesodermal and neural formation, and became acephalic. Histological examination showed that these embryos were completely devoid of the central nervous system and the mesodermal tissues. Neither heat-inactivated heparitinase nor chondroitinase showed such abnormality. The HS-GAG-eliminated embryos showed decreased expression of both muscular and neural-specific markers. These results suggest that HS-GAG plays an indispensable role in establishing the fundamental body plan during early Xenopus development.  相似文献   

20.
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