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Model-Based Hypothesis Testing of Key Mechanisms in Initial Phase of Insulin Signaling

机译:胰岛素信号传导初期关键机制的基于模型的假设检验

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摘要

Type 2 diabetes is characterized by insulin resistance of target organs, which is due to impaired insulin signal transduction. The skeleton of signaling mediators that provide for normal insulin action has been established. However, the detailed kinetics, and their mechanistic generation, remain incompletely understood. We measured time-courses in primary human adipocytes for the short-term phosphorylation dynamics of the insulin receptor (IR) and the IR substrate-1 in response to a step increase in insulin concentration. Both proteins exhibited a rapid transient overshoot in tyrosine phosphorylation, reaching maximum within 1 min, followed by an intermediate steady-state level after approximately 10 min. We used model-based hypothesis testing to evaluate three mechanistic explanations for this behavior: (A) phosphorylation and dephosphorylation of IR at the plasma membrane only; (B) the additional possibility for IR endocytosis; (C) the alternative additional possibility of feedback signals to IR from downstream intermediates. We concluded that (A) is not a satisfactory explanation; that (B) may serve as an explanation only if both internalization, dephosphorylation, and subsequent recycling are permitted; and that (C) is acceptable. These mechanistic insights cannot be obtained by mere inspection of the datasets, and they are rejections and thus stronger and more final conclusions than ordinary model predictions.
机译:2型糖尿病的特征在于靶器官的胰岛素抵抗,这是由于胰岛素信号传导受损所致。已经建立了提供正常胰岛素作用的信号传递介质的骨架。但是,仍未完全了解详细的动力学及其机理的产生。我们测量了初级人类脂肪细胞中胰岛素受体(IR)和IR底物1的短期磷酸化动力学的时程,以响应胰岛素浓度的逐步增加。两种蛋白在酪氨酸磷酸化中均表现出快速的瞬时过冲,在1分钟内达到最大值,然后在大约10分钟后达到中间稳态水平。我们使用基于模型的假设检验来评估对此行为的三种机理解释:(A)仅质膜上IR的磷酸化和去磷酸化; (B)IR胞吞的其他可能性; (C)从下游中间体向IR反馈信号的替代附加可能性。我们得出的结论是(A)并不是令人满意的解释; (B)仅在允许内在化,脱磷酸化和随后的再循环的情况下才可以作为解释; (C)是可以接受的。仅通过检查数据集就无法获得这些机械的见解,并且它们是被拒绝的,因此比普通模型的预测更结实,更具结论性。

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