The insulin receptor: structure, function, and signaling

胰岛素受体 GRB10型 自磷酸化 胰岛素受体底物 受体酪氨酸激酶 胰岛素样生长因子1受体 IRS2 受体 生物化学 酪氨酸激酶 生物 ROR1型 细胞生物学 胰岛素 化学 信号转导 激酶 血小板源性生长因子受体 胰岛素抵抗 内分泌学 蛋白激酶A 生长因子
作者
Jongsoon Lee,Paul F. Pilch
出处
期刊:American Journal of Physiology-cell Physiology [American Physical Society]
卷期号:266 (2): C319-C334 被引量:442
标识
DOI:10.1152/ajpcell.1994.266.2.c319
摘要

The insulin receptor is a member of the ligand-activated receptor and tyrosine kinase family of transmembrane signaling proteins that collectively are fundamentally important regulators of cell differentiation, growth, and metabolism. The insulin receptor has a number of unique physiological and biochemical properties that distinguish it from other members of this large well-studied receptor family. The main physiological role of the insulin receptor appears to be metabolic regulation, whereas all other receptor tyrosine kinases are engaged in regulating cell growth and/or differentiation. Receptor tyrosine kinases are allosterically regulated by their cognate ligands and function as dimers. In all cases but the insulin receptor (and 2 closely related receptors), these dimers are noncovalent, but insulin receptors are covalently maintained as functional dimers by disulfide bonds. The initial response to the ligand is receptor autophosphorylation for all receptor tyrosine kinases. In most cases, this results in receptor association of effector molecules that have unique recognition domains for phosphotyrosine residues and whose binding to these results in a biological response. For the insulin receptor, this does not occur; rather, it phosphorylates a large substrate protein that, in turn, engages effector molecules. Possible reasons for these differences are discussed in this review. The chemistry of insulin is very well characterized because of possible therapeutic interventions in diabetes using insulin derivatives. This has allowed the synthesis of many insulin derivatives, and we review our recent exploitation of one such derivative to understand the biochemistry of the interaction of this ligand with the receptor and to dissect the complicated steps of ligand-induced insulin receptor autophosphorylation. We note possible future directions in the study of the insulin receptor and its intracellular signaling pathway(s).
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