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1.
Wnt信号通路与后口动物体轴的进化发育   总被引:2,自引:0,他引:2  
Qian GH  Wang YQ 《遗传》2011,33(7):684-694
动物体轴极性的建立和最初胚轴的形成涉及到一系列信号通路的调控,Wnt信号通路是其中一条十分保守的信号通路,并且Wnt/β-catenin信号通路中的关键成员早在海绵动物中就有发现,暗示这一信号通路相对于其他信号路径来说可能是最早参与原始后生动物体轴发育的信号通路之一,并且在体轴后端和腹部的发育及命运分化方面发挥着重要作用。近年来,随着体外功能实验体系的建立,人们发现Wnt信号通路中很多基因都不同程度地影响了早期胚轴的形成,例如wnt基因、母源性基因β-catenin以及一系列转录因子等。文章首先对参与后生动物体轴发育的wnt基因家族的起源与进化关系做一简要分析,并进一步就经典的Wnt/β-catenin通路与后口动物的海胆、文昌鱼、斑马鱼、爪蟾和小鼠等类群体轴极性的建立乃至整个体轴形成方面的研究进展做一综述。  相似文献   

2.
Wnt16属于非经典wnt信号途径上的一员,目前有大量的研究表明wnt16与胚胎的血液发育和骨骼发育相关。为了阐明wnt16在造血过程中的调控机制,利用RT-PCR(逆转录PCR)扩增斑马鱼wnt16基因的ORF(开放阅读框)序列全长,构建真核表达载体pCAGGS-P7/wnt16,测序正确后,用该表达载体免疫BALB/c雌鼠,进行DNA免疫,制备斑马鱼抗WNT16特异性多克隆抗体。结果表明:通过DNA免疫制备的斑马鱼抗WNT16抗血清能特异性识别WNT16蛋白。斑马鱼WNT16抗体成功制备为进一步的功能研究奠定了重要基础。  相似文献   

3.
摘要wnt信号通路在各种生物体内高度进化保守,与癌症的发生发展密切相关。BATF2是一个新近发现的基因,研究表明其具有抑癌基因的作用。目前,BATF2与wnt信号通路的关系尚不清楚,该文用荧光素酶报告基因检测、Real-timePCR和Western blot发现BATF2能影响wnt信号通路。过表达BArF2可明显下调TCF4/p-catenin的转录活性和Wnt信号通路下游基因的表达,可以下调细胞核中的β-caenin。推测BATF2可能通过下调细胞核中的p-catenin来实现对wnt信号通路的下调。上述结果为抑制Wnt信号通路用于肿瘤治疗提供了一定的依据。  相似文献   

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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   

6.
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   

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.
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   

9.
涡虫由于具有极强的再生能力而成为发育生物学及再生生物学研究的模式生物。此外,其在有性生殖方面所表现出来的独特性也备受人们关注。目前,涡虫生殖生物学研究领域主要围绕两个热点问题开展工作:1.无性生殖向有性生殖转化的诱因及机制的探讨;2.生殖相关基因的克隆、表达及功能分析。有关生殖转化机制方面的研究主要集中在涡虫的性化相关事件以及性化物质的本质探索;截至目前已克隆并对其表达和功能进行探讨的涡虫生殖相关基因主要有DjPTK1、vasa-like 基因、DeY1、Drygnanos相关基因以及Drpiwi-1等。此外,本文也对有关涡虫生殖生物学方面存在的问题及未来该领域的发展趋势进行了总结和展望。  相似文献   

10.
Cullin1蛋白是细胞周期进展的重要参与者,也是泛素连接酶E3的重要骨架蛋白。TGF-β信号通路在涡虫再生中发挥着重要作用,其下游分子TGF-β诱导核蛋白(Tinp1)也参与日本三角涡虫Dugesia japonica再生。虽然cullin1基因和tinp1基因在涡虫体内均呈阳性表达,但二者之间的关系还不清楚。本研究采用RNA干扰技术(RNAi)敲减日本三角涡虫体内Djcullin1基因的表达,然后运用整体原位杂交及Western Blotting技术检测基因敲减后TGF-β信号通路相关分子在涡虫体内的表达。结果显示,敲减日本三角涡虫Djcullin1基因可明显增强TGF-β信号通路相关分子Smad2/3及Smad4的表达,Tinp1的表达也明显增强。这些数据表明,在日本三角涡虫体内敲减Djcullin1基因可负性调控TGF-β信号通路和Djtinp1基因的表达。同时,敲减涡虫Djtinp1基因可增强Djcullin1基因及蛋白的表达,以上结果说明,这2个基因之间存在互相调节作用,Djtinp1基因反作用于Djcullin1基因的原因未知。  相似文献   

11.
Regeneration in planarians is an intriguing phenomenon, based on the presence of pluripotent stem cells, known as neoblasts. Following amputation, these cells activate mitotic divisions, migrate distally and undergo differentiation, giving rise to the regeneration blastema. We have identified two msh/msx-related genes, Djmsh1 and Djmsh2, which are expressed in distinct cell populations of the planarian Dugesia japonica and activated, with different patterns, during head regeneration. We demonstrate that RNA interference of Djmsh1 or Djmsh2 generates a delay in the growth of cephalic blastema, interfering with the dynamics of mitoses during its initial formation. Our data also reveal that the activity of the two planarian msh genes is required to regulate Djbmp expression during head regeneration. This study identifies, for the first time, a functional association between muscle segment homeobox (MSH) homeoproteins and BMP signaling during stem cell-based regeneration of the planarian head and provides a functional analysis of how msh genes may regulate in vivo the regenerative response of planarian stem cells.  相似文献   

12.
WNTs are secreted signaling molecules which control cell differentiation and proliferation. They are known to play essential roles in various developmental processes. Wnt genes have been identified in a variety of animals, and it has been shown that their amino acid sequences are highly conserved throughout evolution. To investigate the role of wnt genes during fish development from the evolutionary viewpoint, six medaka wnt genes (wnt4, wnt5a, wnt6, wnt7b, wnt8b and wnt8-like) were isolated and their embryonic expression was examined. These wnt genes were expressed in various tissues during embryonic development, and most of their expression patterns were conserved or comparable to those of other vertebrates. Thus, these wnt genes may be useful as molecular markers to investigate development and organogenesis using the medaka. Focus was on wnt5a, which was expressed in the pectoral fin buds, because its expression pattern was particularly comparable to that in tetrapod limbs. Its detailed expression pattern was further examined during pectoral fin bud development. The conservation and diversification of Wnt5a expression through the evolutionary transition from fish fins to tetrapod limbs is discussed.  相似文献   

13.
In contrast to mammals, lower vertebrates have a remarkable capacity to regenerate complex structures damaged by injury or disease. This process, termed epimorphic regeneration, involves progenitor cells created through the reprogramming of differentiated cells or through the activation of resident stem cells. Wnt/beta-catenin signaling regulates progenitor cell fate and proliferation during embryonic development and stem cell function in adults, but its functional involvement in epimorphic regeneration has not been addressed. Using transgenic fish lines, we show that Wnt/beta-catenin signaling is activated in the regenerating zebrafish tail fin and is required for formation and subsequent proliferation of the progenitor cells of the blastema. Wnt/beta-catenin signaling appears to act upstream of FGF signaling, which has recently been found to be essential for fin regeneration. Intriguingly, increased Wnt/beta-catenin signaling is sufficient to augment regeneration, as tail fins regenerate faster in fish heterozygous for a loss-of-function mutation in axin1, a negative regulator of the pathway. Likewise, activation of Wnt/beta-catenin signaling by overexpression of wnt8 increases proliferation of progenitor cells in the regenerating fin. By contrast, overexpression of wnt5b (pipetail) reduces expression of Wnt/beta-catenin target genes, impairs proliferation of progenitors and inhibits fin regeneration. Importantly, fin regeneration is accelerated in wnt5b mutant fish. These data suggest that Wnt/beta-catenin signaling promotes regeneration, whereas a distinct pathway activated by wnt5b acts in a negative-feedback loop to limit regeneration.  相似文献   

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The planarian central nervous system (CNS) can be used as a model for studying neural regeneration in higher organisms. Despite its simple structure, recent studies have shown that the planarian CNS can be divided into several molecular and functional domains defined by the expression of different neural genes. Remarkably, a whole animal, including the molecularly complex CNS, can regenerate from a small piece of the planarian body. In this study, a collection of neural markers has been used to characterize at the molecular level how the planarian CNS is rebuilt. Planarian CNS is composed of an anterior brain and a pair of ventral nerve cords that are distinct and overlapping structures in the head region. During regeneration, 12 neural markers have been classified as early, mid-regeneration and late expression genes depending on when they are upregulated in the regenerative blastema. Interestingly, the results from this study show that the comparison of the expression patterns of different neural genes supports the view that at day one of regeneration, the new brain appears within the blastema, whereas the pre-existing ventral nerve cords remain in the old tissues. Three stages in planarian CNS regeneration are suggested.  相似文献   

16.
The mechanisms that define the body pattern during development and regeneration are the object of major concern in developmental biology. To understand the process and sequence of antero-posterior pattern formation of planarian body regions during regeneration, regenerating organisms were treated with exogenous retinoic acid, which affects development and regeneration in other systems, and the sequence of regional determination has been monitored by a specific molecular marker for the central region, which includes the pharynx. The sequence of gross regional specification have never been analysed in planarians using molecular regional markers or by direct disruption of the regeneration process. Exogenous retinoic acid administration on regenerating planarians disrupts anterior, but not posterior regeneration. The period of maximum sensitivity to exogenous retinoic acid is one day after amputation, during which time the determination of the head has been reported to occur. The data obtained allow us to suggest that gross regional specification during planarian regeneration is disto-proximal, from the regenerative blastema to the old stump, and thus takes place by intercalation of the central region between the anterior and posterior ones.  相似文献   

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Wnt proteins are a family of highly conserved secreted glycoproteins that regulate cell-to-cell interactions during embryogenesis. They act as signaling molecules and take part in many crucial decisions throughout the development of organisms ranging from Hydra to human. We have isolated and characterized the expression of a member of the Wnt family, Gtwnt-5 gene in the planarian Girardia tigrina. Planarians are free-living members (Class Turbellaria) of the Phylum Platyhelminthes. They are best known for their high regenerative capabilities. These organisms have an apparently simple central nervous system (CNS) from a morphological perspective, with cephalic ganglia in the dorsal anterior region and two ventral main nerve cords along the body. However, a large number of planarian neural genes have recently been identified and therefore it is possible to define different molecular and functional domains in the planarian brain. The present study shows expression of Gtwnt-5 in a subpopulation of the whole CNS of intact organisms, being activated during regeneration. Gtwnt-5 reveals a differential spatial pattern: the expression is preferentially found in the most external region of the CNS. In addition, a kind of iterative pattern has been observed at the ganglia level, suggesting that the planarian brain might not be a continuous structure but compartmented or regionalized. Gtwnt-5 signal is also detected at the sensors of the worm: at the auricle level and all around the cephalic periphery. All these data provide us with a new neural marker for the planarian brain, and can be used to follow regeneration of the CNS.  相似文献   

19.
Although patterning during regeneration in adult planarians has been studied extensively, very little is known about how the initial planarian body plan arises during embryogenesis. Herein, we analyze the process of embryo patterning in the species Schmidtea polychroa by comparing the expression of genes involved in the establishment of the metazoan body plan. Planarians present a derived ectolecithic spiralian development characterized by dispersed cleavage within a yolk syncytium and an early transient embryo capable of feeding on the maternally supplied yolk cells. During this stage of development, we only found evidence of canonical Wnt pathway, mostly associated with the development of its transient pharynx. At these stages, genes involved in gastrulation (snail) and germ layer determination (foxA and twist) are specifically expressed in migrating blastomeres and those giving rise to the temporary gut and pharyngeal muscle. After yolk ingestion, the embryo expresses core components of the canonical Wnt pathway and the BMP pathway, suggesting that the definitive axial identities are established late. These data support the division of planarian development into two separate morphogenetic stages: a highly divergent gastrulation stage, which segregates the three germ layers and establishes the primary organization of the feeding embryo; and subsequent metamorphosis, based on totipotent blastomeres, which establishes the definitive adult body plan using mechanisms that are similar to those used during regeneration and homeostasis in the adult.  相似文献   

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