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胰岛素刺激下,鼠脂肪细胞中胰岛素受体和胰岛素受体底物-1的反直觉磷酸化动力学的机制解释。

Mechanistic explanations for counter-intuitive phosphorylation dynamics of the insulin receptor and insulin receptor substrate-1 in response to insulin in murine adipocytes.

机构信息

Department of Clinical and Experimental Medicine, Diabetes and Integrative Systems Biology, Linköping University, Sweden.

出版信息

FEBS J. 2012 Mar;279(6):987-99. doi: 10.1111/j.1742-4658.2012.08488.x. Epub 2012 Feb 15.

DOI:10.1111/j.1742-4658.2012.08488.x
PMID:22248283
Abstract

Insulin signaling through insulin receptor (IR) and insulin receptor substrate-1 (IRS1) is important for insulin control of target cells. We have previously demonstrated a rapid and simultaneous overshoot behavior in the phosphorylation dynamics of IR and IRS1 in human adipocytes. Herein, we demonstrate that in murine adipocytes a similar overshoot behavior is not simultaneous for IR and IRS1. The peak of IRS1 phosphorylation, which is a direct consequence of the phosphorylation and the activation of IR, occurs earlier than the peak of IR phosphorylation. We used a conclusive modeling framework to unravel the mechanisms behind this counter-intuitive order of phosphorylation. Through a number of rejections, we demonstrate that two fundamentally different mechanisms may create the reversed order of peaks: (i) two pools of phosphorylated IR, where a large pool of internalized IR peaks late, but phosphorylation of IRS1 is governed by a small plasma membrane-localized pool of IR with an early peak, or (ii) inhibition of the IR-catalyzed phosphorylation of IRS1 by negative feedback. Although (i) may explain the reversed order, this two-pool hypothesis alone requires extensive internalization of IR, which is not supported by experimental data. However, with the additional assumption of limiting concentrations of IRS1, (i) can explain all data. Also, (ii) can explain all available data. Our findings illustrate how modeling can potentiate reasoning, to help draw nontrivial conclusions regarding competing mechanisms in signaling networks. Our work also reveals new differences between human and murine insulin signaling.

摘要

胰岛素通过胰岛素受体 (IR) 和胰岛素受体底物-1 (IRS1) 信号转导对于胰岛素对靶细胞的控制非常重要。我们之前已经证明,在人类脂肪细胞中,IR 和 IRS1 的磷酸化动力学存在快速且同时的过冲行为。在此,我们证明在小鼠脂肪细胞中,IR 和 IRS1 的过冲行为并不同时。IRS1 的磷酸化峰值是 IR 磷酸化和激活的直接结果,先于 IR 磷酸化的峰值出现。我们使用了一个结论性的建模框架来揭示这种反直觉的磷酸化顺序背后的机制。通过多次否定,我们证明了两种基本不同的机制可能导致峰的顺序颠倒:(i) 两个磷酸化 IR 池,其中内化的 IR 大量池峰值较晚,但 IRS1 的磷酸化受 IR 的小质膜局部池控制,该池具有早期峰值,或 (ii) 负反馈抑制 IR 催化的 IRS1 磷酸化。虽然 (i) 可以解释相反的顺序,但这种双池假设本身需要大量的 IR 内化,这与实验数据不符。然而,在 IRS1 浓度有限的额外假设下,(i) 可以解释所有数据。此外,(ii) 可以解释所有可用的数据。我们的研究结果表明,建模如何增强推理,帮助得出关于信号网络中竞争机制的非平凡结论。我们的工作还揭示了人类和小鼠胰岛素信号之间的新差异。

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