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1.
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   

2.
Wnt信号分子是一类在无脊椎与脊椎动物的多种组织中广泛表达且进化上高度保守的信号刺激因子,由于它们在生长、发育、代谢和干细胞调节等多种生物学过程中的重要生物学功能而被广泛重视。根据其激活的信号通路不同,Wnt分子可分为经典和非经典两类。经典类和非经典类Wnt分子分别通过激活β-catenin、Ca2+及JNK信号通路而发挥作用。近年来的研究显示,经典和非经典Wnt信号通路均在造血干细胞的自我更新和功能维持的调控中发挥关键作用。该文通过对经典和非经典Wnt信号通路的分子调控机理的探讨,对近年来有关Wnt信号通路在HSC自我更新调控中的研究进展进行了综述,对Wnt信号通路与造血微环境中其他信号通路在造血发生、维持和重建中的关系进行了讨论。  相似文献   

3.
Wnt信号通路参与细胞增殖、胚胎发育、组织再生和干细胞维持等多种生物学过程。近年来,Wnt信号通路在骨骼系统发育及代谢过程中的作用引起广泛关注。探讨Wnt信号通路调节成骨细胞分化、增殖以及维持整个骨骼系统平衡的分子机制,对于临床治疗各种骨疾病(如骨质疏松)具有重要意义。  相似文献   

4.
Wnt/β-catenin信号通路是一条高度保守的细胞内信号转导通路,具有介导细胞黏附、调控增殖、凋亡、参与炎症反应等多种生物学功能,在多种细菌的感染和致病过程中发挥重要作用。研究Wnt/β-catenin信号通路激活的分子机制及其在疾病发生、发展中的作用,不但可以了解细菌的致病机制,还为其治疗提供了新的靶点和策略。现将该信号通路在衣原体、结核分枝杆菌、铜绿假单胞菌和幽门螺杆菌致病中的作用作一概述。  相似文献   

5.
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   

6.
经典Wnt信号通路是一条极其保守的信号通路,在多种组织器官发育及疾病发生过程中起重要作用,这条信号通路在胰腺中的作用近年来才逐渐被揭示.研究表明,经典Wnt信号通路在胰腺命运特化、胰腺祖细胞增殖等发育过程中起重要调控作用.另外.这条信号通路与Ⅱ型糖尿病和胰腺肿瘤的发生密切相关.本文对经典Wnt信号通路在胰腺发育及搪尿病和胰腺癌中的作用进行综述.  相似文献   

7.
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   

8.
巨噬细胞作为机体固有免疫的重要成员,具有高度异质性,在肿瘤发生发展过程中的多个方面发挥重要作用。Wnt信号通路分子广泛表达于胚胎和成年个体组织,在胚胎/成体干细胞分化、发育和功能调控中发挥重要作用,而且参与多种肿瘤的发生发展过程。近年来越来越多研究表明,Wnt信号通路参与调控巨噬细胞的分化及功能。本文就巨噬细胞与Wnt信号通路对肿瘤发生发展作用的研究进展作一综述。  相似文献   

9.
Dapper在胚胎发育和信号调控中的作用   总被引:4,自引:0,他引:4  
高霞  陈旭煌  陈晔光 《生命科学》2007,19(5):471-476
Dapper(Dpr)是近期发现的信号调控分子。目前研究结果表明,爪蟾和斑马鱼等低等动物的Dpr在早期胚胎发育的多个过程中起重要作用,这些作用主要通过对Wnt和Nodal/TGF-β信号通路的负调控来完成。Wnt和TGF-β信号通路在胚胎发育和疾病发生过程中起着非常重要的作用,因而Dpr可能是通过影响这些信号通路而参与生理、病理过程。研究Dpr在体内的作用方式和机制对于理解生物体生长发育和疾病发生具有重要意义。  相似文献   

10.
Wnt信号通路包括经典通路和非经典通路两种,其中Wnt经典通路又称为Wnt/β-catenin通路,其在成骨细胞的分化、增殖过程中发挥这重要的作用。Wnt信号通路实现过程中有多种因子参与,包括Wnt蛋白、β-catenin、蛋白激酶GSK-3β以及APC蛋白等多种。Wnt蛋白家族是由19种Wnt蛋白组成的,主要分为经典Wnt蛋白和非经典Wnt蛋白,其本质是一系列高度保守的分泌性糖蛋白,并且不同的Wnt蛋白对成骨细胞发挥着不同的作用,其中经典Wnt蛋白通过经典Wnt信号作用于成骨细胞对成骨细胞的增殖、分化有着重要的影响。本综述通过对Wnt经典信号通路过程中的多种因子与成骨细胞分化、增殖的关系进行分析总结,了解Wnt/β-catenin通路对成骨细胞的作用。  相似文献   

11.
《Organogenesis》2013,9(2):68-75
The Wnt signaling pathway is an ancient and evolutionarily conserved pathway that regulates crucial aspects of cell fate determination, cell migration, cell polarity, neural patterning and organogenesis during embryonic development. The Wnts are secreted glycoproteins and comprise a large family of nineteen proteins in humans hinting to a daunting complexity of signaling regulation, function and biological output. To date major signaling branches downstream of the Fz receptor have been identified including a canonical or Wnt/β-catenin dependent pathway and the non-canonical or β-catenin-independent pathway which can be further divided into the Planar Cell Polarity and the Wnt/Ca2+ pathways, and these branches are being actively dissected at the molecular and biochemical levels. In this review, we will summarize the most recent advances in our understanding of these Wnt signaling pathways and the role of these pathways in regulating key events during embryonic patterning and morphogenesis.  相似文献   

12.
BackgroundWnt signaling pathway plays a major role during development like gastrulation, axis formation, organ development and organization of body plan development. Wnt signaling aberration has been linked with various disease conditions like osteoporosis, colon cancer, hair follicle tumor, Leukemia, and Alzheimer's disease. Phytochemicals like flavonoid, glycosides, polyphenols, have been reported to directly target the markers of Wnt signaling in different disease models.PurposeThe study deals in detail about the different phytochemical targeting key players of Wnt signaling pathway in diseases like Cancer, Osteoporosis, and Alzheimer's disease. We have focused on the Pharmacological basis of disease alleviation by phytochemical specifically targeting the Wnt signaling markers in this study.MethodsThe study focused on the published articles from the preclinical rodent and invitro cell line studies related to Wnt signaling and Phytochemicals related to Cancer, Alzheimer's and Osteoporosis. The electronic databases Scopus, Web of Science and Pubmed database were used for the systematic search of literatures from 2005 up to 2019 using keywords Canonical Wnt signaling pathway, Cancer, Alzheimer's disease, Osteoporosis, Phytochemicals. The focus was to identify the target specific modulation of Wnt signaling mediated by phytochemicals.ResultsApproximately 30 phytochemicals of different class have been identified to modulate Wnt signaling pathway acting through Axin, β-catenin translocation, GSK-3β, AKT, Wif-1 in various experimental studies. The down regulation of Wnt signaling is observed in Cancer mostly colorectal cancer, breast cancer mediated through mutations in APC and Axin genes. Different class of Phytochemicals such as flavonoid, glycosides, polyphenol, alkaloids etc. have been found to target Wnt signaling markers and alleviate Cancer. Similarly, Up regulation of Wnt signaling has been reported in Osteoporosis and neurodegenerative disease like Alzheimer's disease.ConclusionThis review highlights the possibility of the Phytochemicals to target Wnt markers and its potential to either activate or deactivate the Wnt signaling pathway. It also describes the challenges in proper targeting of Wnt signaling and the potential risk and consequences of either up regulation or down regulation of the signaling pathway. This article highlights the possibility of Wnt signaling pathway as a therapeutic option in different diseases.  相似文献   

13.
Wnt signal transduction pathways   总被引:5,自引:0,他引:5  
The Wnt signaling pathway is an ancient and evolutionarily conserved pathway that regulates crucial aspects of cell fate determination, cell migration, cell polarity, neural patterning and organogenesis during embryonic development. The Wnts are secreted glycoproteins and comprise a large family of nineteen proteins in humans hinting to a daunting complexity of signaling regulation, function and biological output. To date major signaling branches downstream of the Fz receptor have been identified including a canonical or Wnt/β-catenin dependent pathway and the non-canonical or β-catenin-independent pathway which can be further divided into the Planar Cell Polarity and the Wnt/Ca2+ pathways, and these branches are being actively dissected at the molecular and biochemical levels. In this review, we will summarize the most recent advances in our understanding of these Wnt signaling pathways and the role of these pathways in regulating key events during embryonic patterning and morphogenesis.Key words: Wnt, frizzled, dishevelled, canonical, non-canonical, β-catenin, Planar Cell Polarity  相似文献   

14.
The Wnt/Wingless (Wg) signaling cascade controls a number of biological processes in animal development and adult life; aberrant Wnt/Wg signaling can cause diseases. In the 1980s genes were discovered that encode core Wnt/Wg pathway components: their mutant phenotypes were similar and an outline of a signaling cascade emerged. Over the years our knowledge of this important signaling system increased and more components were uncovered that are instrumental for Wnt/Wg secretion and transduction. Here we provide an overview of these discoveries, the technologies involved, with a particular focus on the important role Drosophila screens played in this process.  相似文献   

15.
As the crucial biological regulators, microRNAs that act by suppressing their target genes are involved in a variety of pathophysiological processes. It is generally accepted that microRNAs are often dysregulated in many types of neoplasm and other human diseases. In neoplasm, microRNAs may function as oncogenes or tumor suppressors. As constitutive activation of the Wnt signaling pathway is a common feature of neoplasm and contributes to its development, progression and metastasis in various cancers, numerous studies have revealed that microRNA-mediated gene regulation are interconnected with the Wnt/β-catenin signaling pathway, forming a Wnt/β-catenin–microRNA regulatory network, which is critical to successful targeting of the Wnt/β-catenin pathway for oncotherapy. In this review, we aim to accumulate recent advances on microRNAs that work in tandem with Wnt/β-catenin signaling in tumorigenesis, with particular focus on how microRNAs affect Wnt/β-catenin activity as well as how microRNAs are regulated through the Wnt/β-catenin pathway.  相似文献   

16.
In the past twenty years, secreted signaling molecules of the Wnt family have been found to play a central role in controlling embryonic development from hydra to human. In the developing vertebrate limb, Wnt signaling is required for limb bud initiation, early limb patterning (which is governed by several well-characterized signaling centers), and, finally, late limb morphogenesis events. Wnt ligands are unique, in that they can activate several different receptor-mediated signal transduction pathways. The most extensively studied Wnt pathway is the canonical Wnt pathway, which controls gene expression by stabilizing beta-catenin in regulating a diverse array of biological processes. Recently, more attention has been given to the noncanonical Wnt pathway, which is beta-catenin-independent. The noncanonical Wnt pathway signals through activating Ca(2+) flux, JNK activation, and both small and heterotrimeric G proteins, to induce changes in gene expression, cell adhesion, migration, and polarity. Abnormal Wnt signaling leads to developmental defects and human diseases affecting either tissue development or homeostasis. Further understanding of the biological function and signaling mechanism of Wnt signaling is essential for the development of novel preventive and therapeutic approaches of human diseases. This review provides a critical perspective on how Wnt signaling regulates different developmental processes. As Wnt signaling in tumor formation has been reviewed extensively elsewhere, this part is not included in the review of the clinical significance of Wnt signaling.  相似文献   

17.
《Journal of Asia》2022,25(1):101869
The Wnt signaling pathway, as a highly conserved signaling pathway in evolution, plays an important role in many biological processes. The research of Wnt signaling pathway through gene editing has been implemented in a variety of organisms. Among the various genome editing tools available for functional genomic research, CRISPR is popular because of its ease of use and versatility. Here, we use the CRISPR/Cas9 system to knock out the HaWnt1 gene of the important agricultural pest Helicoverpa armigera to explore the impacts on embryo development. Direct injection of Cas9 protein and Wnt1-specific single guide RNA (sgRNA) into H. armigera embryos successfully induced Wnt1 gene deletion mutants, which showed high lethality, abnormal segmentation, defected appendages and defected pigmentation. qRT-PCR analysis revealed that the deletion of Wnt1 gene affected the expression of several genes, which were closely related to the growth and development of insects. Our results indicate that HaWnt1 signaling pathway is essential for embryonic development of H. armigera. The study of the function of HaWnt1 gene not only lays the foundation for the study of the somatic development pattern of H. armigera, but also provides a candidate gene for genetic control of H. armigera.  相似文献   

18.
近年来,随着对肿瘤的深入研究,Wnt信号的研究也受到了高度的关注.Wnt信号通路是一条在进化上保守的信号途径,在控制胚胎发育,调节细胞生长、迁移、分化,调控正常组织重建等生命活动中发挥重要的作用,其异常活化与众多人类肿瘤的发生、发展密切相关.Wnt信号途径异常的核心是β-catenin在细胞内累积,并通过其下游途径引起特异靶基因的转录.本文着重介绍Wnt/β-catenin信号转导通路的研究进展及其与肿瘤的关系,了解该通路在肿瘤发生过程中的具体分子机制有助于为临床诊断提供依据,为早期干预治疗提供方法.  相似文献   

19.
Increasingly complex: new players enter the Wnt signaling network   总被引:11,自引:0,他引:11  
Wnt proteins can activate different intracellular signaling cascades in various organisms by interacting with receptors of the Frizzled family. The first identified Wnt signaling pathway, the Wnt/beta-catenin pathway, has been studied in much detail and is highly conserved among species. As to non-canonical Wnt pathways, the current situation is more nebulous partly because the intracellular mediators of this pathway are not yet fully understood and, in some cases, even identified. However, there are increasing data that prove the existence of non-canonical Wnt signaling and demonstrate its involvement in different developmental processes. In vertebrates, Wnt-11 and Wnt-5A can activate the Wnt/JNK pathway, which resembles the planar cell polarity pathway in Drosophila. The Wnt/Ca(2+)-pathway has only been described in Xenopus and zebrafish so far and it is unclear whether it also exists in other organisms. Two recent papers provide us with new insight into non-canonical Wnt signaling by (1) presenting a new intracellular mediator of non-canonical signaling in Xenopus1 and (2) implicating the existence of an additional non-canonical Wnt signaling pathway in flies.  相似文献   

20.
《Fly》2013,7(4):218-225
The Wnt/Wingless (Wg) signaling cascade controls a number of biological processes in animal development and adult life; aberrant Wnt/Wg signaling can cause diseases. In the 1980s genes were discovered that encode core Wnt/Wg pathway components: their mutant phenotypes were similar and an outline of a signaling cascade emerged. Over the years our knowledge of this important signaling system increased and more components were uncovered that are instrumental for Wnt/Wg secretion and transduction. Here we provide an overview of these discoveries, the technologies involved, with a particular focus on the important role Drosophila screens played in this process.  相似文献   

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