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蛋白激酶 A 在其激活循环过程中的构象变化源于环核苷酸结合结构域的折叠能学。

Conformational changes in protein kinase A along its activation cycle are rooted in the folding energetics of cyclic-nucleotide binding domains.

机构信息

Department of Chemistry, Georgetown University, Washington, District of Columbia, USA.

Department of Chemistry, Georgetown University, Washington, District of Columbia, USA.

出版信息

J Biol Chem. 2023 Jun;299(6):104790. doi: 10.1016/j.jbc.2023.104790. Epub 2023 May 6.

Abstract

Cyclic-nucleotide binding (CNB) domains are structurally and evolutionarily conserved signaling modules that regulate proteins with diverse folds and functions. Despite a wealth of structural information, the mechanisms by which CNB domains couple cyclic-nucleotide binding to conformational changes involved in signal transduction remain unknown. Here we combined single-molecule and computational approaches to investigate the conformation and folding energetics of the two CNB domains of the regulatory subunit of protein kinase A (PKA). We found that the CNB domains exhibit different conformational and folding signatures in the apo state, when bound to cAMP, or when bound to the PKA catalytic subunit, underscoring their ability to adapt to different binding partners. Moreover, we show while the two CNB domains have near-identical structures, their thermodynamic coupling signatures are divergent, leading to distinct cAMP responses and differential mutational effects. Specifically, we demonstrate mutation W260A exerts local and allosteric effects that impact multiple steps of the PKA activation cycle. Taken together, these results highlight the complex interplay between folding energetics, conformational dynamics, and thermodynamic signatures that underlies structurally conserved signaling modules in response to ligand binding and mutational effects.

摘要

环核苷酸结合(CNB)结构域是结构和进化上保守的信号模块,可调节具有不同折叠和功能的蛋白质。尽管有大量的结构信息,但 CNB 结构域将环核苷酸结合与信号转导中涉及的构象变化偶联的机制仍不清楚。在这里,我们结合单分子和计算方法研究了蛋白激酶 A(PKA)调节亚基的两个 CNB 结构域的构象和折叠能。我们发现,在 apo 状态、与 cAMP 结合或与 PKA 催化亚基结合时,CNB 结构域表现出不同的构象和折叠特征,突出了它们适应不同结合伙伴的能力。此外,我们还表明,虽然两个 CNB 结构域具有几乎相同的结构,但它们的热力学偶联特征是不同的,导致 cAMP 反应和差异突变效应不同。具体来说,我们证明突变 W260A 会产生局部和变构效应,从而影响 PKA 激活循环的多个步骤。总之,这些结果突出了折叠能、构象动力学和热力学特征之间的复杂相互作用,这些相互作用是结构保守的信号模块对配体结合和突变效应的反应的基础。

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