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Notch 信号通路为一广泛应用且高度保守的信号转导途径,决定多能祖细胞的分化方向,其中在共同淋巴祖细胞向 T 淋巴细胞或 B 淋巴细胞分化选择中具有决定性作用 . Notch 信号通路参与淋巴细胞的发育过程,促进 Tαβ细胞的形成、诱导处女型 T 细胞变为调节型 T 细胞、阻止 CD4+T 细胞向 Th1 类型分化,以及增加外周免疫器官边缘区 B 细胞的数量 . 在分析 Notch 蛋白结构的基础上,综合最新进展,系统阐明了 Notch 信号通路的组成、作用机制、参与的淋巴细胞发育过程以及所起的作用 . 相似文献
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Notch信号通路在脊椎动物和无脊椎动物许多组织的发育过程和细胞间通讯中都发挥了关键的作用,包括调控细胞命运,调节细胞迁移,分化和增殖.Notch信号通路由Notch受体及其跨膜配体如Delta(Dl)和Serrate组成.Neuralized 蛋白(Neur)编码1个E3泛素连接酶,是Notch配体D1内吞所必需的.Neur蛋白包括3个从线虫到人高度保守的结构域:2个Neur同源重复结构域(NHR1和NHR2)和1个C端RING结构域.本文就Notch信号通路主要元件和Neru的结构与功能及其关系进行综述. 相似文献
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杨继苹;袁媛;李玉晶;李正;郭涛;刘良丽 《中国细胞生物学学报》2025,(4):943-950
缺血性脑卒中的发生通常与脑组织的缺氧和能量代谢障碍有关,导致组织的不可逆损伤和细胞死亡。在该研究中, Notch信号通路在神经胶质细胞中的功能引起了越来越多的关注。Notch信号通路是一种重要的细胞间信号转导机制,不仅参与神经发育,还与缺血性脑损伤的修复密切相关,针对Notch信号通路的靶向治疗策略正在成为研究的热点。该文主要以缺血性脑卒中的病理生理机制和胶质细胞的分类和反应为背景,结合缺血性脑卒中后Notch信号通路在胶质细胞中的激活过程、神经保护作用、治疗方案以及相关信号通路的联系等方面进行深入的总结探讨,以减轻缺血性脑卒中带来的危害。 相似文献
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神经干细胞作为一种具有自我更新能力和多向分化潜能的细胞,它的增殖和分化受到多种源于自身或外在、邻近或远程细胞信号通路的调控,各种细胞因子及胞间通讯在神经干细胞的增殖和分化中发挥着重要的作用。近年来的多种研究表明,Notch信号通路正是这样一种可以通过相邻细胞的配体与受体相互作用,从而传递信号,进一步发挥其生物学功能的重要信号通路。该通路参与了神经干细胞维持自我形态及向多种具有不同功能的神经细胞分化的过程.对于研究神经干细胞的增殖和分化具有巨大的意义。该文将就当前Notch信号通路对神经干细胞增殖分化影响的相关研究进行简要综述。 相似文献
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Notch家族是一组进化上高度保守的跨膜蛋白,可以广泛调节细胞的发育和分化.越来越多的研究发现,Notch信号通路可以通过调节多种免疫细胞的发育和功能来调节机体的免疫功能.本文综述了Notch家族的组成,其调控因素及其靶基因,Notch信号通路对造血干细胞、固有免疫细胞和适应性免疫细胞的调节作用以及Notch信号通路参与的免疫相关疾病.Notch信号通路对造血干细胞、巨噬细胞、树突状细胞、肥大细胞、T和B淋巴细胞的发育和功能的发挥都有重要的调节作用,并参与肿瘤、病毒感染、炎症反应和自身免疫疾病等免疫相关疾病的发生. 相似文献
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阿尔茨海默病相关的早老蛋白与Notch和Wnt信号通路 总被引:2,自引:0,他引:2
自 1 995年发现高度同源的早老蛋白(presenilin ,PS) 1、2基因突变可导致家族性早发型阿尔茨海默病 (Alzheimerdisease ,AD)以来 ,目前不仅已证实PS参与老年斑核心物质β 淀粉样蛋白 (β amyloid ,βA)的形成 ,还发现PS是一种多功能蛋白质 ,与细胞内的多种信号转导通路有关。PS介导Notch、Wnt/Wingless信号转导的机制、及其与AD病理改变的关系已成为AD研究领域的一个新的关注点。1 .PS和Notch信号通路的关系Notch信号在神经元发育中有重要作用 ,通过旁侧抑制… 相似文献
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Notch和Wnt信号通路能够调控细胞的分化、增殖、迁移和粘附等多种行为,在胚胎发育、干细胞分化及肿瘤生长等方面发挥多样性的调控作用.血管形成过程中的典型事件包括尖端细胞(tipcell)和柄细胞(stalkcell)分化、柄细胞增殖、内皮细胞迁移和粘附、血管重塑以及动静脉分化等.本文对Notch和Wnt信号通路在血管形成不同阶段的功能作一综述,以期描述Notch和Wnt是怎样在分子水平上协同作用进而调控血管的形成.从两条信号通路的分子水平及复杂信号网络中众多成员协调作用的角度了解血管形成的机制,对于调整肿瘤等涉及血管形成的相关疾病的治疗策略具有一定意义. 相似文献
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NOTCH signaling plays a key role in cell fate determination in both vertebrates and invertebrates. It is well known that Su(H)/RBP-J is a major mediator of NOTCH signaling. In a previous study, it was shown that NOTCH signaling was involved in cranial neural crest formation in avian embryos. However, Su(H)/RBP-J activity did not appear to be required in this process. In this study, the Deltex/Dtx gene was focussed on as a potential mediator of NOTCH signaling in neural crest formation. At the time of neural crest formation, quail Deltex2 was expressed throughout the ectoderm. Misexpression of a dominant-negative form of Deltex in the ectoderm caused reduced expression of Slug, a neural crest marker. Dominant-negative Deltex expression reduced the expression of Bmp4, a neural crest inducer, whereas co-transfection of Bmp4 with dominant-negative Deltex rescued Slug expression. In parallel, Hairy2 expression in the epidermis was regulated by a Su(H)-dependent pathway. These results indicate that NOTCH signaling has dual functions mediated by either Su(H) or Deltex in the avian embryonic ectoderm. 相似文献
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Fuwa TJ Hori K Sasamura T Higgs J Baron M Matsuno K 《Molecular genetics and genomics : MGG》2006,275(3):251-263
Notch (N) is a single-pass transmembrane receptor. The N signaling pathway is an evolutionarily conserved mechanism that controls
various cell-specification processes. Drosophila Deltex (Dx), a RING-domain E3 ubiquitin ligase, binds to the N intracellular domain, promotes N’s endocytic trafficking to
late endosomes, and was proposed to activate Suppressor of Hairless [Su(H)]-independent N signaling. However, it has been
difficult to evaluate the importance of dx, because no null mutant of a dx family gene has been available in any organism. Here, we report the first null mutant allele of Drosophila
dx. We found that dx was involved only in the subsets of N signaling, but was not essential for it in any developmental context. A strong genetic
interaction between dx and Su(H) suggested that dx might function in Su(H)-dependent N signaling. Our epistatic analyses suggested that dx functions downstream of the ligands and upstream of activated Su(H). We also uncovered a novel dx activity that suppressed N signaling downstream of N. 相似文献
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《Structure (London, England : 1993)》2023,31(5):584-594.e5
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The Notch signaling pathway is an evolutionarily conserved mechanism that regulates many cell fate decisions. The deltex (dx) gene encodes an E3-ubiquitin ligase that binds to the intracellular domain of the Notch protein and regulates Notch signaling in a positive manner. However, it is still not clear how Dx does this. We generated a transgenic line, GMR-dx, which overexpresses dx in the developing Drosophila eye disc. The GMR-dx line showed a rough-eye phenotype, specific transformation of a photoreceptor cell (R3 to R4), and a rotation defect in the ommatidia. This phenotype was suppressed in combination with a dx loss-of-function mutant, indicating that it was due to a dx gain-of-function. We previously reported that overexpression of Dx results in the stabilization of Notch in late endosomes. Here, we found that three motifs in Dx, a region that binds to Notch, a proline-rich motif and a RING-H2 finger, were required for this stabilization, although the relative activity of these variants in this assay did not always correspond to the severity of the rough-eye phenotype. In an attempt to identify novel genes of the Notch pathway, we tested a large collection of chromosomal deficiencies for the ability to modify the eye phenotypes of the GMR-dx line. Twelve genomic segments that enhanced the rough-eye phenotype of GMR-dx were identified. To evaluate the specificity of these interactions, we then determined whether the deletions also interacted with the wing phenotypes associated with a loss-of-function mutation of dx, dx24. Analyses based on whole-genome information allowed us to conclude that we have identified two novel loci that probably include uncharacterized genes involved in Dx-mediated Notch signaling. 相似文献
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Here, we review recent studies that suggest that Notch signaling has two roles during neural crest development: first in establishing the neural crest domain within the ectoderm via lateral induction and subsequently in diversifying the fates of cells that arise from the neural crest via lateral inhibition. The first of these roles, specification of neural crest via lateral induction, has been explored primarily in the cranial neural folds from which the cranial neural crest arises. Evidence for such a role has thus far only been obtained from chick and frog; results from these two species differ, but share the feature that Notch signaling regulates genes that are expressed by cranial neural crest through effects on expression of Bmp family members. The second of these roles, diversification of neural crest progeny via lateral inhibition, has been identified thus far only in trunk neural crest. Evidence from several species suggests that Notch-mediated lateral inhibition functions in multiple episodes in this context, in each case inhibiting neurogenesis. In the 'standard' mode of lateral inhibition, Notch promotes proliferation and in the 'instructive' mode, it promotes specific secondary fates, including cell death or glial differentiation. We raise the possibility that a single molecular mechanism, inhibition of so-called proneural bHLH genes, underlies both modes of lateral inhibition mediated by Notch signaling. 相似文献
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Pat Whiteman Beatriz Hernandez de Madrid Paul Taylor Demin Li Rebecca Heslop Nattnee Viticheep Joyce Zi Tan Hideyuki Shimizu Juliana Callaghan Massimo Masiero Ji Liang Li Alison H. Banham Adrian L. Harris Susan M. Lea Christina Redfield Martin Baron Penny A. Handford 《The Journal of biological chemistry》2013,288(10):7305-7312
We have mapped a Jagged/Serrate-binding site to specific residues within the 12th EGF domain of human and Drosophila Notch. Two critical residues, involved in a hydrophobic interaction, provide a ligand-binding platform and are adjacent to a Fringe-sensitive residue that modulates Notch activity. Our data suggest that small variations within the binding site fine-tune ligand specificity, which may explain the observed sequence heterogeneity in mammalian Notch paralogues, and should allow the development of paralogue-specific ligand-blocking antibodies. As a proof of principle, we have generated a Notch-1-specific monoclonal antibody that blocks binding, thus paving the way for antibody tools for research and therapeutic applications. 相似文献
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