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胰岛素受体与其下游效应器之间的相互作用。利用单独表达的受体结构域进行结构/功能分析。

Interaction between the insulin receptor and its downstream effectors. Use of individually expressed receptor domains for structure/function analysis.

作者信息

Paz K, Voliovitch H, Hadari Y R, Roberts C T, LeRoith D, Zick Y

机构信息

Department of Chemical Immunology, the Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

J Biol Chem. 1996 Mar 22;271(12):6998-7003. doi: 10.1074/jbc.271.12.6998.

DOI:10.1074/jbc.271.12.6998
PMID:8636129
Abstract

A structural analysis has been carried out to determine which part of the intracellular domain of the insulin receptor (IR) beta subunit is involved in direct interaction with the receptor substrates IRS-1 and Shc. Toward this end, the juxtamembrane (JM) domain (amino acids 943-984) and the carboxyl-terminal (CT) region (amino acids 1245-1 331) of IR were expressed in bacteria as (His)6-fusion peptides, and their interaction with IRS-1 and Shc was studied. We could demonstrate that the CT region of IR was sufficient to bind Shc, although significant, but much lower binding of Shc to the JM region could be detected as well. Furthermore, in vitro Tyr phosphorylation of the CT region potentiated its interactions with Shc 2-fold. In contrast, the JM region, but not the CT domain of the IR, was sufficient to mediate interactions between the IR and IRS-1. These interactions did not involve the pleckstrin homology (PH) region of IRS-1, since an IRS-1 mutant, in which four "blocks" of the PH domain (Pro5-Pro65) were deleted, interacted with the JM region of IR with the same efficiency as native IRS-1. These results suggest that the IR interacts with its downstream effectors through distinct receptor regions, and that autophosphorylation of Tyr residues located at the CT domain of the IR can modulate these interactions.

摘要

已进行结构分析以确定胰岛素受体(IR)β亚基细胞内结构域的哪一部分参与与受体底物IRS-1和Shc的直接相互作用。为此,IR的近膜(JM)结构域(氨基酸943 - 984)和羧基末端(CT)区域(氨基酸1245 - 1331)在细菌中作为(His)6融合肽表达,并研究它们与IRS-1和Shc的相互作用。我们能够证明IR的CT区域足以结合Shc,尽管也能检测到Shc与JM区域有显著但低得多的结合。此外,CT区域的体外酪氨酸磷酸化增强了其与Shc的相互作用达2倍。相比之下,IR的JM区域而非CT结构域足以介导IR与IRS-1之间的相互作用。这些相互作用不涉及IRS-1的普列克底物蛋白同源(PH)区域,因为一个缺失了PH结构域四个“片段”(Pro5 - Pro65)的IRS-1突变体与IR的JM区域相互作用的效率与天然IRS-1相同。这些结果表明,IR通过不同的受体区域与其下游效应器相互作用,并且位于IR的CT结构域的酪氨酸残基的自身磷酸化可以调节这些相互作用。

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Interaction between the insulin receptor and its downstream effectors. Use of individually expressed receptor domains for structure/function analysis.胰岛素受体与其下游效应器之间的相互作用。利用单独表达的受体结构域进行结构/功能分析。
J Biol Chem. 1996 Mar 22;271(12):6998-7003. doi: 10.1074/jbc.271.12.6998.
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Interaction between the phosphotyrosine binding domain of Shc and the insulin receptor is required for Shc phosphorylation by insulin in vivo.Shc的磷酸酪氨酸结合结构域与胰岛素受体之间的相互作用是Shc在体内被胰岛素磷酸化所必需的。
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Differential modulation of the tyrosine phosphorylation state of the insulin receptor by IRS (insulin receptor subunit) proteins.胰岛素受体底物(IRS)蛋白对胰岛素受体酪氨酸磷酸化状态的差异调节。
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Serine residues 1177/78/82 of the insulin receptor are required for substrate phosphorylation but not autophosphorylation.胰岛素受体的丝氨酸残基1177/78/82是底物磷酸化所必需的,但不是自身磷酸化所必需的。
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