14-3-3 蛋白质对 RAF 信号的调控分析

Peter Carlip, Edward C Stites
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引用次数: 0

摘要

细胞生化信号反应的调控包括通过各种过程调节蛋白质的活性。例如,RAF 激酶是 RAS GTP 酶下游细胞外生长信号的主要传递者,其信号传递受二聚化、蛋白质构象变化、翻译后修饰和蛋白质间相互作用的调节。众所周知,14-3-3 蛋白在 RAF 信号调节中发挥着重要作用,并能稳定 RAF 的非活性(单体)和活性(二聚体)状态。人们对这些拮抗作用如何最终调节 RAF 信号还知之甚少。为了进行研究,我们建立了一个具有 14-3-3 两种作用的 RAF 激活数学模型,进行了代数和数值分析,并与现有的实验数据进行了比较。我们推导出了解释 14-3-3 过表达激活 RAF 这一实验观察结果的必要条件,并表明仅靠 14-3-3 与 Raf 二聚体的强结合一般不足以解释这一观察结果。我们的综合分析还表明,在合理的参数值范围内,RAF-14-3-3 的结合相对较弱,并表明 Raf 二聚体-14-3-3 的相互作用主要是通过亲和力来稳定的。最后,我们发现,在 RAF 和 14-3-3 之间成对的弱/活性驱动相互作用的限度内,成对的结合相互作用可以合理地近似为一个强的、单一的平衡反应。总之,我们的工作提出了一个数学模型,可作为未来扩展研究涉及调节 RAF 激酶活性的信号反应的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of the Modulation of RAF Signaling by 14-3-3 Proteins
The regulation of cellular biochemical signaling reactions includes the modulation of protein activity through a variety of processes. For example, signaling by the RAF kinases, which are key transmitters of extracellular growth signals downstream from the RAS GTPases, is modulated by dimerization, protein conformational changes, post-translational modifications, and protein-protein interactions. 14-3-3 proteins are known to play an important role in RAF signal regulation, and have the ability to stabilize both inactive (monomeric) and active (dimeric) states of RAF. It is poorly understood how these antagonistic roles ultimately modulate RAF signaling. To investigate, we develop a mathematical model of RAF activation with both roles of 14-3-3, perform algebraic and numeric analyses, and compare with available experimental data. We derive the conditions necessary to explain experimental observations that 14-3-3 overexpression activates RAF, and we show that strong binding of 14-3-3 to Raf dimers alone is not generally sufficient to explain this observation. Our integrated analysis also suggests that RAF-14-3-3 binding is relatively weak for the reasonable range of parameter values, and suggests the Raf dimer-14-3-3 interactions are stabilized primarily by avidity. Lastly we find that in the limit of paired weak/avidity driven interactions between RAF and 14-3-3, the paired binding interactions may be reasonably approximated with a strong, single, equilibrium reaction. Overall, our work presents a mathematical model that can serve as a foundational piece for future, extended, studies of signaling reactions involving regulated RAF kinase activity.
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