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1.
Wnt信号通路与大脑发育和中枢神经系统成熟密切相关,参与神经突触调节和重塑,在突触可塑性和学习记忆中有重要作用。该文综述了Wnt信号在突触结构与功能中的作用,Wnt信号途径与突触结构和神经功能的建立与维持的关系,以及Wnt信号在学习记忆相关的突触重塑与稳定中的重要作用。对Wnt信号通路的深入了解有助于理解学习记忆的结构机制,为记忆障碍相关的疾病提供新型治疗策略。  相似文献   

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Wnt蛋白是一类分泌型糖蛋白家族,Wnt信号蛋白与细胞表面的多种受体相互作用,参与诸多生命过程。对神经系统发育的研究表明,Wnt信号通路在神经发生,神经祖细胞增值、分化,神经干细胞的自我更新,轴突导向等过程中起重要调控作用。多项研究已经证实,Wnt通路失调与诸多神经系统疾病有密切关系。Wnt信号通路的突变或异常,将会引起神经系统发育缺陷。然而,对Wnt非经典信号通路的研究,尤其是新受体Ryk的调控作用的认识迄今仍不全面。根据国内外相关研究,阐述了经典Wnt信号通路Wnt/β-catenin途径的同时也对Wnt/Ryk非经典信号途径这一研究新领域做了讨论。在非经典信号通路中,Ryk-ICD的剪接对于前体细胞的神经分化起重要作用。本文分析了Wnt/β-catenin和Wnt/Ryk信号通路在神经发育中的作用,有助于深入理解神经发育过程中Wnt信号通路的作用机制。然而,Ryk-ICD引导因子、分子机制等问题仍待进一步研究,而这将有利于理解神经干细胞分化机理。  相似文献   

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肝细胞癌是常见的恶性肿瘤,其发病机制尚未完全明确。Wnt信号通路与人体内多种病理生理过程相关,其中肝癌的发生、发展可能与经典的Wnt/β-catenin信号通路密切相关。Wnt/β-catein信号通路通过表达癌症相关基因、激活肝星状细胞、调控肝干细胞行为、促进肝癌细胞侵袭转移等方式调控肝癌的发生、发展。Wnt/β-catein信号通路在肝癌发生、发展中的作用有望为肝癌研究提供新的思路。  相似文献   

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Wnt信号通路与神经干细胞   总被引:2,自引:0,他引:2  
Zhang H  Yin ZS 《生理科学进展》2005,36(3):249-252
神经干细胞增殖、分化机制的研究为神经系统疾病治疗提供了新的途径,具有巨大的潜在应用价值和理论研究意义。业已发现,Wnt信号通路对神经干细胞的增殖发挥着决定性作用,但新近的研究却表明Wnt信号能够明显促进神经干细胞向神经元分化,这种不同的表现可能与神经干细胞的内在特点、周围环境及靶基因的不同有关。本文试从Wnt信号通路及其在调控神经干细胞的增殖、分化中的作用加以综述。  相似文献   

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Wnt信号通路:调控机理和生物学意义   总被引:1,自引:0,他引:1  
Wnt信号通路作为一种在进化中高度保守的信号通路,在生长、发育、代谢和干细胞维持等多种生物学过程中发挥重要作用。而Wnt通路的失控与癌症、肥胖和糖尿病等疾病的发生有密切联系。经典Wnt通路的调控过程,主要围绕beta-Catenin和TCF这两个关键调节因子进行,从而在转录水平上影响着大量与生长和代谢相关的靶基因的表达。本文将综合介绍近年来针对经典Wnt通路调控机理的研究进展,以及Wnt通路与疾病发生的关系。  相似文献   

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Wnt信号通路分为经典Wnt信号通路和非经典Wnt信号通路,而非经典Wnt信号通路又可分为Wnt/Ca^(2+)信号通路、Wnt/PCP信号通路和Wnt/PI3K信号通路。经典Wnt信号通路的恰当激活可有效抑制Notch信号通路,促进成肌分化和肌管融合。但经典Wnt信号通路过早或持续性激活,可通过调节多种细胞因子的表达,加重损伤骨骼肌纤维化,损害骨骼肌再生。而Wnt7a通过多条非经典Wnt信号通路刺激肌卫星细胞扩增、迁移,促进骨骼肌损伤修复,并能激活Akt/mTOR信号通路而诱导肌纤维肥大。  相似文献   

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纤毛是以微管为核心组分、突出于细胞表面且高度保守的细胞器,具有运动、摄食、感知并传递外界信号等功能。纤毛发生是纤毛在细胞膜表面定位并装配的过程。多年来,对纤毛发生过程及其调控机制的探索始终是亚细胞结构与功能研究的热点之一。Wnt/PCP信号通路是参与胚胎及器官发育的主要信号转导途径之一。近年来大量研究显示,Wnt/PCP信号通路和纤毛发生密切相关。纤毛结构与功能的异常可造成Wnt/PCP信号通路异常,导致纤毛相关疾病的发生;同时,Wnt/PCP信号通路又决定着纤毛的形态和极性。因此,深入研究纤毛与Wnt/PCP信号通路的关系将有助于从细胞与分子生物学水平揭示纤毛发生的调控机制。  相似文献   

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Wnt蛋白是一组调控胚胎形成期间细胞间信号传导的高度保守的分泌信号分子.在过去的几年里,由Wnt蛋白触发的不同信号通路已经得到了详尽的研究.Wnt基因与Wnt信号通路组成分子的突变可引起发育缺陷,异常的Wnt信号传导可导致人类疾病包括肿瘤的发生.许多证据都表明,Wnt信号通路的失调与乳腺癌的发生发展密切相关.micro...  相似文献   

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Wnt/β-catenin信号通路作为一条进化保守的信号通路,有着广泛的生物学作用。研究发现,Wnt/β-catenin信号通路与干细胞衰老之间存在联系。激活Wnt/β-catenin信号通路可导致干细胞发生衰老变化,而抑制Wnt/β-catenin信号通路可延缓干细胞的衰老。本文对Wnt/β-catenin信号通路与干细胞衰老之间的关系及其作用机制作一综述。  相似文献   

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Wnt信号通路是一条高度保守的信号转导通路,在生物体多个发育过程以及一系列疾病发生中发挥重要作用。Wnt信号通路重要的生物学功能和复杂的信号转导调控网络引起了人们广泛和持续的研究兴趣。介绍了经典Wnt信号通路信号转导的分子框架,结合自身实验室新的研究发现,重点阐述Wnt信号由细胞膜上向细胞质内转导的机制。  相似文献   

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Temporal lobe epilepsy is a chronic disorder of nerve system, mainly characterized by hippocampal sclerosis with massive neuronal loss and severe gliosis. Aberrant neurogenesis has been shown in the epileptogenesis process of temporal lobe epilepsy. However, the molecular mechanisms underlying aberrant neurogenesis remain unclear. The roles of Wnt signalling cascade have been well established in neurogenesis during multiple aspects. Here, we used kainic acid‐induced rat epilepsy model to investigate whether Wnt/β‐catenin signalling pathway is involved in the aberrant neurogenesis in temporal lobe epilepsy. Immunostaining and western blotting results showed that the expression levels of β‐catenin, Wnt3a, and cyclin D1, the key regulators in Wnt signalling pathway, were up‐regulated during acute epilepsy induced by the injection of kainic acids, indicating that Wnt signalling pathway was activated in kainic acid‐induced temporal lobe epilepsy. Moreover, BrdU labelling results showed that blockade of the Wnt signalling by knocking down β‐catenin attenuated aberrant neurogenesis induced by kainic acids injection. Altogether, Wnt/β‐catenin signalling pathway mediated hippocampal neurogenesis during epilepsy, which might provide new strategies for clinical treatment of temporal lobe epilepsy. Temporal lobe epilepsy is a chronic disorder of nerve system, mainly characterized by hippocampal sclerosis. Aberrant neurogenesis has been shown to involve in the epileptogenesis process of temporal lobe epilepsy. In the present study, we discovered that Wnt3a/β‐catenin signalling pathway serves as a link between aberrant neurogenesis and underlying remodelling in the hippocampus, leading to temporal lobe epilepsy, which might provide new strategies for clinical treatment of temporal lobe epilepsy.  相似文献   

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Our previous experiments suggest that treatment with Bcl-2 increases proliferation and differentiation of neuronal progenitors induced by ischemic injury and ameliorates neurological functional deficits after stroke. However, in addition to its traditional anti-apoptotic effect, little is known about the concrete molecular modulation mechanism. In this study, Bcl-2-expressing plasmids were injected into the lateral ventricle of rat brains immediately following a 30-min occlusion of the middle cerebral artery to determine the role of Bcl-2 in adult neurogenesis. Bcl-2 overexpression reduced ischemic infarct and astrogenesis, and enhanced ischemia-induced striatal neurogenesis. We further found that Bcl-2 increased β-catenin, a key mediator of canonical Wnt/β-catenin signaling pathway, and reduced bone morphogenetic proteins-4 (BMP-4) expression in the ipsilateral striatum following ischemia. Treatment of stroke with β-catenin siRNA (i.c.v.) showed that β-catenin siRNA antagonized Bcl-2 neuroprotection against ischemic brain injury. More interestingly, β-catenin siRNA simultaneously abolished Bcl-2-mediated reduction of BMP-4 expression and enhancement of neurogenesis in the ipsilateral striatum. This effect is independent of Noggin, the known BMP antagonist. These findings highlight a new regulatory mechanism that Bcl-2 elevates ischemia-induced striatal neurogenesis by down-regulating expression of BMP-4 via activation of the Wnt/β-catenin signaling pathway in adult rat brains.  相似文献   

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Disrupted-in-schizophrenia 1 (DISC1) is a multifunctional scaffold protein which plays an important role in neurogenesis and neural development in the adult brain, especially in the dentate gyrus (DG) of the hippocampus. Accumulated research has unveiled the role of DISC1 in several aspects of neural development and neurogenesis, such as neuronal maturation, proliferation, migration, positioning, differentiation, dendritic growth, axonal outgrowth, and synaptic plasticity. Studies on the function of this protein have explored multiple facets, including variants and missense mutants in genetics, proteins interactivity and signaling pathways in molecular biology, and pathogenesis and treatment targets of major mental illness, and more. In this review, we present several signaling pathways discussed in recent research, such as the AKT signaling pathway, GABA signaling pathway, GSK3β signaling pathway, Wnt signaling pathway, and NMDA-R signaling pathway. DISC1 interacts, directly or indirectly, with these signaling pathways and they co-regulate the process of adult neurogenesis in the hippocampus.  相似文献   

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Parkinson disease(PD) is a progressive neurodegenerative movement disorder. Both environmental and genetic factors play important roles in PD etiology. A number of environmental toxins cause parkinsonism in human and animal models. Genetic studies of rare early onset familial PD cases resulted in identification of disease-linked mutations in multiple genes. Nevertheless, the potential interaction between environment and genetics in PD pathogenesis remains largely unknown. We hypothesized that environmental factors induce abnormal epigenetic regulation that is involved in the pathogenesis of both familial and sporadic PD. We determined the global methylation status of 80,000e110,000 Cp G sites in each of the five sporadic PD patient brains and five age and postmodern interval matched control brains utilizing bisulfite padlock sequencing. Multiple genes involved in neurogenesis, particularly the ones in the Wnt signaling pathway, were hypermethylated in PD brains compared to their matched control brains. Consistent with the DNA methylation changes, marked reduction of protein expression was observed for four Wnt and neurogenesis related genes(FOXC1, NEURG2, SPRY1, and CTNNB1) in midbrain dopaminergic(DA) neurons of PD. The treatment of low concentration of 1-methyl-4-phenylpyridinium(MPPt) for cells resulted in downregulation of Wnt related genes. The study revealed an important link between the epigenetic disregulation of Wnt signaling and the pathogenesis and progression of PD.  相似文献   

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