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1.
自噬是细胞重要的自我保护机制,多种伤害性刺激激活的自噬具有维持细胞稳态和正常功能的作用.此外,自噬还参与调控恶性肿瘤、动脉粥样硬化等多种疾病的发生发展过程.体内细胞处于复杂的力学微环境中,力学刺激参与调控细胞自噬,如压力可诱导心肌细胞的自噬、牵张力调控运动系统多种细胞的自噬、流体剪切力可激活血管内皮细胞和肿瘤细胞的自噬.力学刺激诱导的细胞自噬依赖众多信号通路.细胞骨架作为重要的调节因子,不仅参与细胞力学信号转导,同时可参与调控细胞自噬.因此,细胞骨架与力学刺激诱导的细胞自噬密切相关.本文结合最新的研究成果,综述力学刺激对细胞自噬的影响及其分子机制,以期为研究力学刺激对细胞生物学行为的影响提供新的视角,进而为相关疾病的治疗提供新思路和分子靶点.  相似文献   

2.
微丝是细胞骨架的主要成分之一,广泛存在于所有真核细胞中。微丝与其相关蛋白介导的信号通路几乎在所有的生物学事件中发挥重要作用,参与了细胞形态维持、细胞运动、信号转导等细胞基本生物学行为的调控。同时,微丝及其相关蛋白还在个体发育中扮演重要角色,其异常与疾病发生发展过程密切相关。该文就微丝相关蛋白、微丝相关信号通路、微丝功能及其与疾病相关的最新研究进展进行小结,并对微丝的未来研究方向进行了初步的探讨。  相似文献   

3.
Rho蛋白作为细胞信号转导的分子开关之一,在细胞骨架动态变化中发挥着极其重要的作用。Rho蛋白对细胞骨架动态变化的调节是一个复杂的信号传递过程,涉及到Rho蛋白介导的信号通路中不同效应物间和Rho蛋白介导的多条信号通路间的相互作用。在Rho蛋白介导的信号通路中,上游调控因子、Rho蛋白、效应物在细胞中的正确定位对信号传递有着决定性的作用。  相似文献   

4.
白念珠菌引起的真菌感染严重威胁着人类健康。Ras/cAMP/PKA途径在白念珠菌菌丝发育、生物被膜形成、有性生殖以及耐药性中起着重要的调控作用,该通路由GTPases(Ras1和Ras2)、腺苷环化酶(Cyr1)、cAMP水解酶(Pde1和Pde2)以及PKA激酶(包括催化亚基Tpk1和Tpk2,调节亚基Bcy1)构成。环境因子通过Ras/cAMP/PKA途径调控下游转录因子,进而调节白念珠菌多种生物学行为。文中综述了近年来白念珠菌Ras/cAMP/PKA信号通路感应胞外环境因子和调控细胞行为等方面的研究进展。  相似文献   

5.
人PDZ和LIM域蛋白1(PDZ and LIM domain protein 1, PDLIM1)是PDZ-LIM蛋白家族的成员之一,参与多种生物学过程,包括细胞骨架组织和肿瘤发生。PDLIM1通过PDZ结构域结合相关蛋白质(如辅肌动蛋白α-actinin)以及通过LIM结构域与相关激酶(如clik1)结合,并定位到肌动蛋白应力纤维,进而参与细胞骨架调控。细胞骨架具有维持细胞形态的功能,在细胞运动中起着关键作用。肿瘤细胞的浸润与转移常表现为细胞运动能力的改变,这个改变过程往往涉及到细胞骨架在时空上的动态重组,而重组的时空调控由关键的细胞信号通路介导。因此,进一步研究PDLIM1在肿瘤浸润与转移过程中的信号调控机制,可能发现潜在的治疗靶点和预后因子,有助于在精准医疗时代进行更好的个性化肿瘤防治。  相似文献   

6.
癌症的产生是由于细胞正常行为的多个方面发生改变,例如基因突变的积累、失去控制的细胞增殖、细胞的异常迁移和侵染、染色体的不稳定性等。Rho小G蛋白相关信号通路涉及癌症发展进程的多个方面,例如细胞周期进程、细胞极性的调控、细胞骨架重排、细胞与细胞或细胞与基质相互作用调控的细胞迁移和侵染等。该文总结了近年来Rho小G蛋白在癌症的发生发展过程中相关作用的研究进展,重点阐述其家族成员在癌细胞的增殖、存活、侵染、转移等过程中的作用,并对以Rho小G蛋白信号通路作为癌症治疗靶点的研究进展进行概括总结。  相似文献   

7.
PI3K/Akt信号通路是由酶联受体介导的信号转导通路,该通路不仅参与多种生长因子、细胞因子和细胞外基质等的信号转导,同时还参与细胞增殖、分化、凋亡和葡萄糖转运等多种细胞功能的调节,特别是在细胞凋亡、细胞存活以及调控细胞糖代谢等方面具有重要作用。本研究综述了PI3K-Akt信号通路的结构组成、通路活化、通信过程、调控机制及其生物学功能等方面的研究进展,为进一步研究PI3K/Akt信号通路的生物学调控作用机制提供启示。  相似文献   

8.
植物细胞壁是地球上最丰富的可再生资源,也是植物细胞区别于动物细胞的特殊结构之一,它与细胞质膜及细胞骨架共同构成了植物细胞表面的细胞壁-质膜-细胞骨架连续体.细胞壁为植物细胞提供外部支撑结构,细胞骨架则在细胞内构成内部网络支架结构.近年来,有关植物细胞骨架调控细胞壁形成的研究有了很大进展,本文从细胞骨架参与细胞壁物质膜泡运输、细胞骨架调控纤维素微纤丝沉积、细胞骨架调控次生细胞壁加厚以及细胞骨架参与细胞壁形成信号的调控等方面进行了阐述和总结,并对今后的研究方向进行了展望.  相似文献   

9.
病原体细菌通过自身分泌系统分泌效应蛋白并注入宿主体内,修饰宿主的信号转导系统,破坏宿主细胞中天然免疫有关信号通路,发挥毒性作用使宿主产生疾病。吞噬作用在天然免疫系统中发挥重要作用,这个过程涉及肌动蛋白细胞骨架的重排。Rho(Ras homolog family)小G蛋白家族成员作为细胞骨架结构的重要调控蛋白可调节这一过程,其相关信号通路成为细菌效应蛋白的作用靶点。细菌效应蛋白可以模仿Rho的调节因子破坏信号通路,可以通过剪切Rho C-端的尾部结构使其从细胞膜解离并失去活性,可以直接模仿Rho发挥调控功能,可以影响Rho上游的调控事件影响其活性,也可通过对Rho进行直接的翻译后修饰使其失活,形成有利于细菌生存、繁殖、毒力释放的环境。由此导致的Rho信号通路功能紊乱使宿主产生智力缺陷、免疫功能障碍、癌症等多种疾病。  相似文献   

10.
周欣  李伟芸  王红艳 《遗传》2017,39(7):642-649
Hippo信号通路通过一系列激酶级联反应,实现对细胞增殖、器官大小以及组织再生等方面的调控。其中,MST1/2是核心激酶Hippo蛋白在哺乳动物中的同源物,对于下游信号通路的激活至关重要。此外,MST1/2在细胞分化、形态和细胞骨架重排等方面也发挥重要作用。近期多项研究工作指出,MST1/2参与调控免疫T细胞的粘附、迁移、归巢和抑制性Treg细胞的成熟与功能,以及心肌细胞自噬等过程。有趣的是,这一功能是不依赖经典的Hippo信号通路的,被称为“非经典Hippo信号通路”。最新的研究结果揭示了MST1/2通过非经典Hippo信号通路调控先天免疫巨噬细胞对病原菌或病毒的免疫应答,包括巨噬细胞的吞噬、细胞因子(炎症因子、趋化因子、Ⅰ型干扰素等)和线粒体活性氧的产生,从而在机体抵抗细菌病毒感染、炎症相关癌症、动脉粥样硬化等疾病中发挥重要功能。本文对MST1/2调控先天免疫功能、相关分子机制和疾病进行了总结和讨论。  相似文献   

11.
BACKGROUND: Seven-transmembrane receptor (7-TMR)-G protein networks are molecular sensors of extracellular signals in all eukarya. These pathways cycle through activated (sensitized) and inhibited (desensitized) states, and, while many of the molecular components for signal activation have been described, inhibitory mechanisms are not well characterized. In Dictyostelium, 7-TM cAMP receptors direct chemotaxis and development but also regulate the periodic synthesis of their own ligand, the chemoattractant/morphogen cAMP. We now demonstrate through loss-of-function/gain-of-function studies that the novel heterotrimeric Galpha9 protein subunit regulates an inhibitory pathway during early Dictyostelium development for the cAMP signal response.RESULTS: galpha9 null cells form more cAMP signaling centers, are more resistant to compounds that inhibit cAMP signaling, and complete aggregation sooner and at lower cell densities than wild-type cells. These phentoypes are consistent with the loss of an inhibitory signaling pathway during development of galpha9 null cells. Cells expressing constitutively activated Galpha9 are defective in cAMP signaling center formation and development at low cell density and display an increased sensitivity to cAMP signal inhibition that is characteristic of enhanced suppression of the cAMP signal response. Finally, we demonstrate that galpha9 null cells, which have been codeveloped with a majority of wild-type cells, primarily establish cAMP signaling centers and are able to non-autonomously direct wild-type cells to adopt a galpha9 null-like phenotype.CONCLUSIONS: We suggest that Galpha9 functions in an inhibitory-feedback pathway that regulates cAMP signaling center formation and propagation. Galpha9 may be part of the mechanism that regulates lateral signal inhibition or that modulates receptor desensitization.  相似文献   

12.
cAMP controls many cellular processes mainly through the activation of protein kinase A (PKA). However, more recently PKA-independent pathways have been established through the exchange protein directly activated by cAMP (Epac), a guanine nucleotide exchange factor for the small GTPases Rap1 and Rap2. In this report, we show that cAMP can induce integrin-mediated cell adhesion through Epac and Rap1. Indeed, when Ovcar3 cells were treated with cAMP, cells adhered more rapidly to fibronectin. This cAMP effect was insensitive to the PKA inhibitor H-89. A similar increase was observed when the cells were transfected with Epac. Both the cAMP effect and the Epac effect on cell adhesion were abolished by the expression of Rap1-GTPase-activating protein, indicating the involvement of Rap1 in the signaling pathway. Importantly, a recently characterized cAMP analogue, 8-(4-chloro-phenylthio)-2'-O-methyladenosine-3',5'-cyclic monophosphate, which specifically activates Epac but not PKA, induced Rap-dependent cell adhesion. Finally, we demonstrate that external stimuli of cAMP signaling, i.e., isoproterenol, which activates the G alpha s-coupled beta 2-adrenergic receptor can induce integrin-mediated cell adhesion through the Epac-Rap1 pathway. From these results we conclude that cAMP mediates receptor-induced integrin-mediated cell adhesion to fibronectin through the Epac-Rap1 signaling pathway.  相似文献   

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We demonstrate here the regulatory role of cAMP in cell cycle of Candida albicans. cAMP was found to be a positive signal for growth and morphogenesis. Phosphodiesterase inhibitor aminophylline exhibited significant effects, i.e., increased growth, as well as induced morphogenesis. Atropine and trifluoperazine negatively regulated (inhibited) growth and did not induce morphogenesis. These changes were attributed to increase in cAMP levels and protein kinase A (PKA) activity in presence of aminophylline, while reduction was observed in atropine and trifluoperazine (TFP) grown cells. Alteration in cAMP signaling pathway affected the cell cycle progression in Candida albicans. Increased cAMP levels in aminophylline grown cells reduced the duration of cell cycle by inciting the cell cycle-specific expression of G1 cyclins (CLN1 and CLN2). However atropine and trifluoperazine delayed the expression of G1 cyclins and hence prolonged the cell cycle. Implication of cAMP signaling pathway in both the cell cycle and morphogenesis further opened the channels to explore the potential of this pathway to serve as a target for development of new antifungal drugs.  相似文献   

16.
The extracellular signal regulated kinase (ERK1/2) signaling cascade has been implicated as both a pro-apoptotic and anti-apoptotic pathway depending on cell type and context. In the T84 intestinal epithelial cell line, cAMP activates ERK1/2 resulting in the inhibition of apoptosis. Cyclic-AMP signaling relies on the binding and activation of a cAMP binding protein. In most cell types, the majority of this signaling occurs through an isoform of protein kinase A (PKAI or PKAII). Despite evidence to the contrary, we hypothesized that ERK1/2 activation is through a PKA isoform. Pharmacological activators and inhibitors of PKA as well as siRNA were used to further interrogate this potential signaling pathway. Our results demonstrate that at doses sufficient to increase PKA activity, PKAII specific cAMP analogs activate ERK1/2 while PKAI analogs do not. Pharmacological inhibition of the PKAII regulatory subunit and catalytic subunit as well as siRNA knockdown of the catalytic subunit blocks ERK1/2 activation. We conclude that in the T84 cell line, cAMP binding to the PKAII regulatory subunit leads to the subsequent phosphorylation of ERK1/2 and provides insight into the mechanism of cAMP mediated survival signaling in the intestinal epithelium. These results directly implicate PKAII as a mediator of cell survival in T84 cells and provide evidence for an additional means by which cAMP can influence intestinal cell turnover.  相似文献   

17.
Mechanisms by which odorants activate signaling pathways in addition to cAMP are hard to evaluate in heterogeneous mixtures of primary olfactory neurons. We used single cell calcium imaging to analyze the response to odorant through odorant receptor (OR) U131 in the olfactory epithelial cell line Odora (Murrell and Hunter 1999), a model system with endogenous olfactory signaling pathways. Because adenylyl cyclase levels are low, agents activating cAMP formation do not elevate calcium, thus unmasking independent signaling mediated by OR via phospholipase C (PLC), inositol-1,4,5-trisphosphate (IP(3)), and its receptor. Unexpectedly, we found that extracellular calcium is required for odor-induced calcium elevation without the release of intracellular calcium, even though the latter pathway is intact and can be stimulated by ATP. Relevant signaling components of the PLC pathway and G protein isoforms are identified by western blot in Odora cells as well as in olfactory sensory neurons (OSNs), where they are localized to the ciliary zone or cell bodies and axons of OSNs by immunohistochemistry. Biotinylation studies establish that IP(3) receptors type 2 and 3 are at the cell surface in Odora cells. Thus, individual ORs are capable of elevating calcium through pathways not directly mediated by cAMP and this may provide another avenue for odorant signaling in the olfactory system.  相似文献   

18.
cAMP signals are received and transmitted by multiple isoforms of cAMP-dependent protein kinases (PKAs), typically determined by their specific regulatory subunits. We describe changes in the cAMP signal transduction pathway during cell cycle progression in synchronized rat thyroid cells. Both PKA type II (PKAII) localization and nuclear cAMP signaling are significantly modified during G(0) and G(1)-S transitions. G(1) is characterized by PKA activation and amplified cAMP signal transduction. This is associated with a decrease in the concentration of RI and RII regulatory subunits and enhanced anchoring of PKAII to the Golgi-centrosome region. Just prior to S, the cAMP pathway is depressed. Up-regulation of the pathway by exogenous cAMP in G(1) inhibited the subsequent decay of the Cdk inhibitor p27 and delayed the onset of S phase. Forced translocation of endogenous PKAII to the cytosol down-regulated cAMP signaling, advancing the timing of p27 decay and inducing premature exit from G(1). These data indicate that membrane-bound PKA amplifies the transduction of cAMP signals in G(1) and that the length of G(1) is influenced by cAMP-PKA.  相似文献   

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Cells of the vertebrate neural crest (crest cells) are an invaluable model system to address cell fate specification. Crest cells are amenable to tissue culture, and they differentiate to a variety of neuronal and nonneuronal cell types. Earlier studies have determined that bone morphogenetic proteins (BMP-2, -4, and -7) and agents that elevate intracellular cyclic AMP (cAMP) stimulate the development of the sympathoadrenal (SA, adrenergic) lineage in neural crest cultures. To investigate whether interactive mechanisms between signaling pathways influence crest cell differentiation, we characterized the combinatorial effects of BMP-2 and cAMP-elevating agents on the development of quail trunk neural crest cells in primary culture. We report that the cAMP signaling pathway modulates both positive and negative signals influencing the development of SA cells. Specifically, we show that moderate activation of cAMP signaling promotes, in synergy with BMP-2, SA cell development and the expression of the SA lineage-determining gene Phox2a. By contrast, robust activation of cAMP signaling opposes, even in the presence of BMP-2, SA cell development and the expression of the SA lineage-determining ASH-1 and Phox2 genes. We conclude that cAMP signaling acts as a bimodal regulator of SA cell development in neural crest cultures.  相似文献   

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