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在胸腺细胞中 ITK 激活动力学的计算模型表明,竞争的正反馈和负反馈 IP4 介导的反馈增加了鲁棒性。

In silico modeling of Itk activation kinetics in thymocytes suggests competing positive and negative IP4 mediated feedbacks increase robustness.

机构信息

Battelle Center for Mathematical Medicine, The Research Institute at the Nationwide Children's Hospital, Columbus, Ohio, United States of America.

出版信息

PLoS One. 2013 Sep 16;8(9):e73937. doi: 10.1371/journal.pone.0073937. eCollection 2013.

Abstract

The inositol-phosphate messenger inositol(1,3,4,5)tetrakisphosphate (IP4) is essential for thymocyte positive selection by regulating plasma-membrane association of the protein tyrosine kinase Itk downstream of the T cell receptor (TCR). IP4 can act as a soluble analog of the phosphoinositide 3-kinase (PI3K) membrane lipid product phosphatidylinositol(3,4,5)trisphosphate (PIP3). PIP3 recruits signaling proteins such as Itk to cellular membranes by binding to PH and other domains. In thymocytes, low-dose IP4 binding to the Itk PH domain surprisingly promoted and high-dose IP4 inhibited PIP3 binding of Itk PH domains. However, the mechanisms that underlie the regulation of membrane recruitment of Itk by IP4 and PIP3 remain unclear. The distinct Itk PH domain ability to oligomerize is consistent with a cooperative-allosteric mode of IP4 action. However, other possibilities cannot be ruled out due to difficulties in quantitatively measuring the interactions between Itk, IP4 and PIP3, and in generating non-oligomerizing Itk PH domain mutants. This has hindered a full mechanistic understanding of how IP4 controls Itk function. By combining experimentally measured kinetics of PLCγ1 phosphorylation by Itk with in silico modeling of multiple Itk signaling circuits and a maximum entropy (MaxEnt) based computational approach, we show that those in silico models which are most robust against variations of protein and lipid expression levels and kinetic rates at the single cell level share a cooperative-allosteric mode of Itk regulation by IP4 involving oligomeric Itk PH domains at the plasma membrane. This identifies MaxEnt as an excellent tool for quantifying robustness for complex TCR signaling circuits and provides testable predictions to further elucidate a controversial mechanism of PIP3 signaling.

摘要

肌醇-1,3,4,5-四磷酸(IP4)作为蛋白酪氨酸激酶 Itk 的信使,在调节 T 细胞受体(TCR)下游的质膜结合中对胸腺细胞阳性选择至关重要。IP4 可以作为磷酸肌醇 3-激酶(PI3K)膜脂产物磷脂酰肌醇(3,4,5)三磷酸(PIP3)的可溶性类似物发挥作用。PIP3 通过与 PH 和其他结构域结合,将信号蛋白如 Itk 募集到细胞膜上。在胸腺细胞中,低剂量 IP4 与 Itk PH 结构域结合出人意料地促进了 PIP3 结合,而高剂量 IP4 抑制了 Itk PH 结构域结合。然而,IP4 和 PIP3 调节 Itk 膜募集的机制仍不清楚。Itk PH 结构域的独特寡聚化能力与 IP4 作用的协同变构模式一致。然而,由于难以定量测量 Itk、IP4 和 PIP3 之间的相互作用,以及难以生成非寡聚化的 Itk PH 结构域突变体,其他可能性也不能排除。这阻碍了对 IP4 如何控制 Itk 功能的全面机制理解。通过将实验测量的 PLCγ1 磷酸化动力学与多个 Itk 信号通路的计算建模和基于最大熵(MaxEnt)的计算方法相结合,我们表明,那些在单个细胞水平上对蛋白质和脂质表达水平以及动力学速率变化最稳健的计算模型共享 IP4 调节 Itk 的协同变构模式,涉及质膜上的寡聚化 Itk PH 结构域。这表明 MaxEnt 是量化复杂 TCR 信号通路稳健性的优秀工具,并提供了可测试的预测,以进一步阐明有争议的 PIP3 信号机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25fa/3774804/e537fee919f2/pone.0073937.g001.jpg

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