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1.
胰岛素受体信号传递   总被引:11,自引:0,他引:11  
Liu R  Bai H  Liu BW 《生理科学进展》2001,32(3):254-256
胰岛素受体是具有酪氨酸蛋白激酶活性的膜受体。胰岛素与靶细胞相应受体结合后,引起受体酪氨酸残基自身磷酸化及β亚基酪氨酸蛋白激酶活化,后者使靶细胞内底物如IRS1或Hhc的酪氨酸残基磷酸化,酪氨酸蛋白激酶在胰岛素受体信号传递中发挥重要作用。胰岛素信号所激发的信号传递途径主要有二:一为Ras-MAP激酶途径,一为PI3-激酶途径,胰岛素的作用与此有关。  相似文献   

2.
胰岛素受体底物家族与Ⅱ型糖尿病关系性的研究进展   总被引:2,自引:0,他引:2  
胰岛素受体底物分子(IRS)是调节胰岛素信号通路的关键物质,在维持细胞生长,分裂和代谢中起着重要作用。目前已发现的家族成员有四个(IRS-1、IRS-2、IRS-3、IRS-4)。目前研究表明,糖尿病的发生与之密切相关:胰岛素信号通路与其他信号通路发生交叉发生干扰,从而导致胰岛素抵抗,引发Ⅱ型糖尿病;IRS蛋白的结构、表达水平异常导致胰岛素信号的中断或减弱,并表现为胰岛素抵抗;四种IRS分子表达的不平衡,致使胰岛素分泌调节的稳态被破坏也可能是糖尿病发病的原因之一。Fox蛋白家族是动物细胞内的一类转录因子,与细胞代谢密切相关。Fox蛋白靶点有可能作为研究治疗糖尿病方法的一种新思路。  相似文献   

3.
综述了近年来关于IGF-Ⅰ和胰岛素表现生理功能的结构基础和分子基础研究进展.IGF-Ⅰ和胰岛素是胰岛素家族中的2个重要成员, 两者的分子结构高度同源, 两者的受体相似且属同一家族, 两者的生理功能可彼此交叉, 但各自具有主要的生理功能.IGF-Ⅰ的主要生理功能是促进细胞生长, 胰岛素的主要生理功能是促进葡萄糖的摄取和代谢.生物大分子的功能及其表现的基础是分子结构及参与功能表现的诸多分子, 如受体、信号分子等等.  相似文献   

4.
Eph-ephrin介导反向信号传递的研究进展   总被引:1,自引:0,他引:1  
双向信号传递是细胞间通讯领域中新近阐明的机制,酪氨酸激酶受体-配体(Eph-ephrin)介导的双向信号传递是此机制中的一个重要代表.Eph酪氨酸激酶家族受体及其配体ephrin家族成员是在神经发育、血管新生等方面起重要作用的分子,通过Eph向细胞内传递的信号称为正向信号,通过其配体ephrin的信号称为反向信号.Ephrin家族又可根据分子结构分为2个亚家族,其中ephrinB为跨膜蛋白,可通过酪氨酸磷酸化依赖和PDZ结合结构域介导2种方式向胞内传递反向信号,活化FAK、JNK、Wnt等信号通路,ephrinA为糖基磷脂酰肌醇锚定蛋白,也具有反向信号传递功能.  相似文献   

5.
糖基化对Notch信号传递系统的影响   总被引:2,自引:0,他引:2  
Notch信号分子是多细胞生物发育过程中高度保守的一类十分重要的跨膜信 号受体糖蛋白家族.这一信号途径通过局部细胞间的相互作用而产生对多种不成熟细胞分化 的抑制信号, 精确调控细胞的分化潜能,在细胞发育、增殖、分化中起关键作用,参与造血 、T细胞发育、血管生成等重要生理过程.Notch受体分子上具有多种寡糖链,包括N-聚糖、O-岩藻糖聚糖、O-葡萄糖聚糖等,这些寡糖以及相关糖基转移酶对Notch受体-配体结合以及Notch信号传递功能有重要影响.本文就近年来有关Notch受体糖基化及其对Notch信号传递过程的研究进行综述.  相似文献   

6.
胰岛素受体底物蛋白参与多种激素,细胞因子的信号转导,可联系下游含SH2结构域的蛋白,它是一种极为重要的信号传递中介分子,胰岛素受体底物家族有4个成员。本文从基因结构,蛋白质结构介绍新发现的两个成员(IRS-3,IRS-4)的一些基本特征。  相似文献   

7.
胰岛素受体底物(insulin receptor substrate,IRS)是胰岛素信号转导通路中一个极其重要的信号分子,对胰岛素信号级联效应具有至关重要的作用。目前有关胰岛素受体底物活性调节的研究主要集中在两个方面,一方面是磷酸化水平的调节机制,另一方面是细胞因子信号阻抑剂(suppressor of cytokine signaling,COCS)所介导的直接和间接调控。了解胰岛素受体底物活性调节机制将有助于进一步探索胰岛素抵抗和Ⅱ型糖尿病的发病机制。  相似文献   

8.
Src激酶的功能研究新进展   总被引:2,自引:0,他引:2  
Src激酶家族是具有酪氨酸蛋白激酶活性的蛋白质,作为连接许多细胞外和细胞内重要信号途径的膜结合开关分子,Src激酶在受体介导的信号传递及细胞间通讯中具中心调节作用。最近发现它在淋巴因子介导的细胞存活及血管内皮生长因子介导的血管发生中也具有重要作用。  相似文献   

9.
胰岛素的促生长作用   总被引:16,自引:1,他引:15  
除了经典的代谢调节作用之外,胰岛素还具有重要的促生长作用:在体外胰岛素能够刺激众多细胞的增殖与分化,一些实验证明胰岛素在体内可能也是一种重要的生长调节因子.胰岛素的促生长作用通过细胞表面的胰岛素受体介导,但在较高的胰岛素浓度下也可以通过类胰岛素生长因子Ⅰ(IGF-Ⅰ)受体进行,在不同细胞体系中可能会有所不同.受体后的信号转导经过了一系列磷酸化和去磷酸化等途径,其中有胰岛素受体底物1(IRS-1)、Shc蛋白、Ras蛋白以及磷酸肌醇3激酶(PI3-K)等的参与.在胰岛素的分子表面很可能存在一些区域或位点,对其促生长作用有着更大的贡献,通过对一些高促生长活性的胰岛素类似物的研究已揭示出一些初步的证据.  相似文献   

10.
Notch信号通路是在进化上非常保守的单次跨膜信号受体蛋白家族,广泛表达于脊椎动物与无脊椎动物中,主要由Notch受体、Notch配体及细胞内效应分子CSL蛋白组成。Notch信号通路是多种组织和器官早期发育所必需的细胞间调节信号,参与对细胞增殖、分化、凋亡的调控。近年的研究表明,Notch信号通路参与肺纤维化的发生发展,阻断或激活这一途径可以影响肺纤维化的进展,本文就Notch信号通路与肺纤维化的关系的研究进展做一综述。  相似文献   

11.
Role of binding proteins to IRS-1 in insulin signalling   总被引:7,自引:0,他引:7  
Insulin elicits its divergent metabolic and mitogenic effects by binding to its specific receptor, which belongs to the family of receptor tyrosine kinases. The activated insulin receptor phosphorylates the intracellular substrate IRS-1, which then binds various signalling molecules that contain SRC homology 2 domains, thereby propagating the insulin signal. Among these IRS-1-binding proteins, the Grb2-Sos complex and the protein tyrosine phosphatase SHP-2 transmit mitogenic signals through the activation of Ras, and phosphoinositide 3-kinase is implicated in the major metabolic actions of insulin. Although substantial evidence indicates the importance of IRS-1 in insulin signal transduction, the generation of IRS-1-deficient mice has revealed the existence of redundant signalling pathways.  相似文献   

12.
Insulin regulates glucose homeostasis via binding and activation of the insulin receptor dimer at two distinct pairs of binding sites 1 and 2. Here, we present cryo-EM studies of full-length human insulin receptor (hIR) in an active state obtained at non-saturating, physiologically relevant insulin conditions. Insulin binds asymmetrically to the receptor under these conditions, occupying up to three of the four possible binding sites. Deletion analysis of the receptor together with site specific peptides and insulin analogs used in binding studies show that both sites 1 and 2 are required for high insulin affinity. We identify a homotypic interaction of the fibronectin type III domain (FnIII-3) of IR resulting in tight interaction of membrane proximal domains of the active, asymmetric receptor dimer. Our results show how insulin binding at two distinct types of sites disrupts the autoinhibited apo-IR dimer and stabilizes the active dimer. We propose an insulin binding and activation mechanism, which is sequential, exhibits negative cooperativity, and is based on asymmetry at physiological insulin concentrations with one to three insulin molecules activating IR.  相似文献   

13.
Insulin resistance is a key feature of Type 2 diabetes and an important therapeutic target to address glycemic control to prevent diabetic complications. Lifestyle advice is the first step in the ADA/EASD consensus guidelines followed by metformin therapy. Aerobic exercise (AE) can increase insulin sensitivity by several molecular pathways including upregulation of insulin transporters in the cellular membrane of insulin-dependent cells. In addition, AE improves insulin sensitivity by amelioration of the pathophysiologic pathways involved in insulin resistance such as the reduction of adipokines, inflammatory and oxidative stress responses, and improvement of insulin signal transduction via different molecular pathways. This review details the molecular pathways by which AE induces beneficial effects on insulin resistance  相似文献   

14.
Insulin receptor internalization and signalling   总被引:5,自引:0,他引:5  
The insulin receptor kinase (IRK) is a tyrosine kinase whose activation, subsequent to insulin binding, is essential for insulin-signalling in target tissues. Insulin binding to its cell surface receptor is rapidly followed by internalization of insulin-IRK complexes into the endosomal apparatus (EN) of the cell. Internalization of insulin into target organs, especially liver, is implicated in effecting insulin clearance from the circulation. Internalization mediates IRK downregulation and hence attenuation of insulin sensitivity although most internalized IRKs readily recycle to the plasma membrane at physiological levels of insulin. A role for internalization in insulin signalling is indicated by the accumulation of activated IRKs in ENs. Furthermore, the maximal level of IRK activation has been shown to exceed that attained at the cell surface. Using an in vivo rat liver model in which endosomal IRKs are exclusively activated has revealed that IRKs at this intracellular locus are able by themselves to promote IRS-1 tyrosine phosphorylation and induce hypoglycemia. Furthermore, studies with isolated rat adipocytes reveal the EN to be the principle site of insulin-stimulated IRS-1 tyrosine phosphorylation and associated PI3K activation. Key steps in the termination of the insulin signal are also operative in ENs. Thus, an endosomal acidic insulinase has been identified which limits the extent of IRK activation. Furthermore, IRK dephosphorylation is effected in ENs by an intimately associated phosphotyrosine phosphatase(s) which, in rat liver, appears to regulate IRK activity in both a positive and negative fashion. Thus, insulin-mediated internalization of IRKs into ENs plays a crucial role in effecting and regulating signal transduction in addition to modulating the levels of circulating insulin and the cellular concentration of IRK in target tissues.  相似文献   

15.
Spatial compartmentalization of signal transduction in insulin action   总被引:5,自引:0,他引:5  
Insulin resistance is thought to be the primary defect in the pathophysiology of type 2 diabetes. Thus, understanding the cellular mechanisms of insulin action may contribute significantly to developing new treatments for this disease. Although the effects of insulin on glucose and lipid metabolism are well documented, gaps remain in our understanding of the precise molecular mechanisms of signal transduction for the hormone. One potential clue to understanding the unique cellular effects of insulin may lie in the compartmentalization of signaling molecules and metabolic enzymes. We review this evidence, and speculate on how PI-3 kinase-independent and -dependent signaling pathways both diverge from the insulin receptor and converge at discrete targets to insure the specificity of insulin action.  相似文献   

16.
Most human cells utilize glucose as the primary substrate, cellular uptake requiring insulin. Insulin signaling is therefore critical for these tissues. However, decrease in insulin sensitivity due to the disruption of various molecular pathways causes insulin resistance (IR). IR underpins many metabolic disorders such as type 2 diabetes and metabolic syndrome, impairments in insulin signaling disrupting entry of glucose into the adipocytes, and skeletal muscle cells. Although the exact underlying cause of IR has not been fully elucidated, a number of major mechanisms, including oxidative stress, inflammation, insulin receptor mutations, endoplasmic reticulum stress, and mitochondrial dysfunction have been suggested. In this review, we consider the role these cellular mechanisms play in the development of IR.  相似文献   

17.
胰岛素受体家族的结构与功能研究   总被引:2,自引:0,他引:2  
胰岛素(insulin)与胰岛素样生长因子-1(IGF-1)分别是由胰岛β细胞和肝细胞分泌的 多肽类激素.它们通过结合并激活位于细胞膜上的受体酪氨酸激酶(RTKs),发挥重要的生理作用. 作为起始信号传导的第一步,胰岛素与IGF-1是如何与各自受体的膜外区域(ectodomain) 结合并进一步激活受体的细胞膜内酪氨酸激酶活性一直属于科学研究的关键基础问题.本文 概述了胰岛素受体家族(IR和IGF-1R)及其配体的结构与功能的特点和关系,并重点介绍 了近年来国内外在胰岛素受体家族复合体结构和功能上的研究手段和取得的突破性进展.  相似文献   

18.
Localization of the insulin receptor in caveolae of adipocyte plasma membrane.   总被引:15,自引:0,他引:15  
The insulin receptor is a transmembrane protein of the plasma membrane, where it recognizes extracellular insulin and transmits signals into the cellular signaling network. We report that insulin receptors are localized and signal in caveolae microdomains of adipocyte plasma membrane. Immunogold electron microscopy and immunofluorescence microscopy show that insulin receptors are restricted to caveolae and are colocalized with caveolin over the plasma membrane. Insulin receptor was enriched in a caveolae-enriched fraction of plasma membrane. By extraction with beta-cyclodextrin or destruction with cholesterol oxidase, cholesterol reduction attenuated insulin receptor signaling to protein phosphorylation or glucose transport. Insulin signaling was regained by spontaneous recovery or by exogenous replenishment of cholesterol. beta-Cyclodextrin treatment caused a nearly complete annihilation of caveolae invaginations as examined by electron microscopy. This suggests that the receptor is dependent on the caveolae environment for signaling. Insulin stimulation of cells prior to isolation of caveolae or insulin stimulation of the isolated caveolae fraction increased tyrosine phosphorylation of the insulin receptor in caveolae, demonstrating that insulin receptors in caveolae are functional. Our results indicate that insulin receptors are localized to caveolae in the plasma membrane of adipocytes, are signaling in caveolae, and are dependent on caveolae for signaling.  相似文献   

19.
Insulin signal transmission through the plasma membrane was studied in terms of relationship between basal autophosphorylation of the β-subunit and the ability by bind insulin by the -subunit of the insulin receptor. In a cell free system, receptors phosphorylated on tyrosine residues in the absence of insulin were separated from non-phosphorylated receptors using antiphosphotyrosine antibodies. Insulin binding assays were then performed on basally autophosphorylated and on non-phosphorylated receptors. We found that the tyrosine phosphorylated receptors, which corresponded to 25% of the total number of receptors, were accountable for 60–80% of insulin binding. Scatchard representation of binding data has shown that the plot corresponding to tyrosine phosphorylated receptors was localized above, and was steeper than the plot corresponding to non-phosphorylated receptors. These data make it likely that the conformation of -subunit which favours ligand binding is connected to the conformation of β-subunit which favours phosphate reception on tyrosine residues. Reciprocally, the high-affinity conformation of insulin receptor seems to become stabilized by basal autophosphorylation.  相似文献   

20.
Insulin exerts its cellular control through receptor binding in caveolae in plasmalemma of target cells (Gustavsson, J., Parpal, S., Karlsson, M., Ramsing, C., Thorn, H., Borg, M., Lindroth, M., Peterson, K. H., Magnusson, K.-E., and Str?lfors, P. (1999) FASEB. J. 13, 1961-1971). We now report that a progressive cholesterol depletion of 3T3-L1 adipocytes with beta-cyclodextrin gradually destroyed caveolae structures and concomitantly attenuated insulin stimulation of glucose transport, in effect making cells insulin-resistant. Insulin access to or affinity for the insulin receptor on rat adipocytes was not affected as determined by (125)I-insulin binding. By immunoblotting of plasma membranes, total amount of insulin receptor and of caveolin remained unchanged. Receptor autophosphorylation in response to insulin was not affected by cholesterol depletion. Insulin treatment of isolated caveolae preparations increased autophosphorylation of receptor before and following cholesterol depletion. Insulin-increased tyrosine phosphorylation of an immediate downstream signal transducer, insulin receptor substrate-1, and activation of the further downstream protein kinase B were inhibited. In contrast, insulin signaling to mitogenic control as determined by control of the extracellular signal-related kinases 1/2, mitogen-activated protein kinase pathway was not affected. Insulin did not control Shc phosphorylation, and Shc did not control extracellular signal-related kinases 1/2, whereas cholesterol depletion constitutively phosphorylated Shc. In conclusion, caveolae are critical for propagating the insulin receptor signal to downstream targets and have the potential for sorting signal transduction for metabolic and mitogenic effects.  相似文献   

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