野生型秀丽隐杆线虫 DAF-2 激酶和厚生相关突变体的催化活性

Harini Krishnan, Sultan Ahmed, Stevan R. Hubbard, W. Todd Miller
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摘要

DAF-2是秀丽隐杆线虫胰岛素样受体的同源物,调节幼虫的发育、新陈代谢、应激反应和寿命。大量 DAF-2 突变等位基因的出现,使阐明这些生理过程的遗传机制成为可能。DAF-2通路与人类胰岛素/IGF-1信号通路有显著的保守性;它包括与人类IRS、GRB-2和PI3K同源的蛋白,因此是研究人类病理状况的一个重要模型。我们表达并纯化了野生型 DAF-2 的激酶结构域,以研究该酶的催化活性和底物特异性。与人类胰岛素受体激酶一样,DAF-2激酶也会使特定YxN或YxxM基团内的酪氨酸磷酸化,这些基团对招募下游效应物非常重要。DAF-2 激酶磷酸化的肽来自位于受体酪氨酸激酶 C 端延伸部分的 YxxM 和 YxN 基序,这与 DAF-2 受体可能具有独立信号能力的观点一致。与人类胰岛素或 IGF-1 受体激酶不同,DAF-2 激酶对小分子抑制剂林西替尼的抑制作用很弱。我们还表达并纯化了对应于daf-2等位基因的突变激酶,这些等位基因会导致秀丽隐杆线虫部分功能缺失表型。这些突变导致体外激酶功能完全丧失。我们的生化研究为了解DAF-2激酶的功能提供了新的视角,这种方法应该有助于研究其他突变,从而揭示DAF-2在秀丽隐杆线虫生理学中的信号转导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Catalytic activities of wild-type C. elegans DAF-2 kinase and dauer-associated mutants

Catalytic activities of wild-type C. elegans DAF-2 kinase and dauer-associated mutants

DAF-2, the Caenorhabditis elegans insulin-like receptor homolog, regulates larval development, metabolism, stress response, and lifespan. The availability of numerous daf-2 mutant alleles has made it possible to elucidate the genetic mechanisms underlying these physiological processes. The DAF-2 pathway is significantly conserved with the human insulin/IGF-1 signaling pathway; it includes proteins homologous to human IRS, GRB-2, and PI3K, making it an important model to investigate human pathological conditions. We expressed and purified the kinase domain of wild-type DAF-2 to examine the catalytic activity and substrate specificity of the enzyme. Like the human insulin receptor kinase, DAF-2 kinase phosphorylates tyrosines within specific YxN or YxxM motifs, which are important for recruiting downstream effectors. DAF-2 kinase phosphorylated peptides derived from the YxxM and YxN motifs located in the C-terminal extension of the receptor tyrosine kinase, consistent with the idea that the DAF-2 receptor may possess independent signaling capacity. Unlike the human insulin or IGF-1 receptor kinases, DAF-2 kinase was poorly inhibited by the small-molecule inhibitor linsitinib. We also expressed and purified mutant kinases corresponding to daf-2 alleles that result in partial loss-of-function phenotypes in C. elegans. These mutations caused a complete loss of kinase function in vitro. Our biochemical investigations provide new insights into DAF-2 kinase function, and the approach should be useful for studying other mutations to shed light on DAF-2 signaling in C. elegans physiology.

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