复发性肢端发育不全相关PKA RIα突变揭示了一种异常PKA失活的新机制。

IF 4.5 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Leonardo Della Libera, Karla Martinez Pomier, Madoka Akimoto, Ganesh S Anand, Susan S Taylor, Giuseppe Melacini
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引用次数: 0

摘要

蛋白激酶A (PKA)在将细胞外信号转化为严格调控的细胞反应中起着至关重要的作用,控制着诸如生长、发育和基因表达等重要过程。PKA的激活和抑制受cAMP与PKA调控亚基(R)的结合控制。普遍存在的R的RIα亚型的几个突变导致肢端发育不良1 (Acrodysostosis 1, ACRO),这是一种以抵抗促甲状腺激素和甲状旁腺激素为特征的疾病,导致严重的先天性畸形。这项工作研究了复发性R366X截断突变体,该突变体由于对cAMP的敏感性丧失和变构网络的损伤而表现出严重的PKA低激活。R366X突变体的x射线晶体学研究表明,其晶体结构仅处于抑制状态,与野生型结构差异极小。此外,以往的研究仅检测了ACRO突变体对PKA激活周期的影响(即对cAMP结合的敏感性)。在这里,我们关注较少理解的信号终止周期。我们假设R366X通过干扰与PKA失活周期相关的动态中间体起作用,而静态结构无法完全再现这一过程。为了验证我们的假设,我们结合了低分辨率和高分辨率的方法来探测蛋白质-配体结合、突变稳定性和识别表现出异常变构行为的区域。基于我们的研究结果,我们提出了一种新的机制,即R366X不仅损害PKA的生理激活,而且通过增加磷酸二酯酶催化的cAMP水解为5'-AMP的速率来加速PKA的失活。我们的研究为目前对PKA失调和ACRO分子病因的理解提供了新的思路,概述了一种可转移的多分辨率实验设计,可转移到其他ACRO突变体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recurrent Acrodysostosis-Related PKA RIα Mutant Reveals a Novel Mechanism of Aberrant PKA Deactivation.

Protein kinase A (PKA) is essential in converting extracellular signals into tightly regulated cellular responses controlling vital processes such as growth, development, and gene expression. Activation of PKA is controlled by the binding of cAMP to the regulatory subunit of PKA (R). Several mutations in the ubiquitous RIα isoform of R cause Acrodysostosis 1 (ACRO), a disease characterized by resistance to thyroid-stimulating and parathyroid hormones leading to severe congenital malformations. This work examines the recurrent R366X truncation ACRO mutant, which exhibits severe PKA hypoactivation due to loss of sensitivity to cAMP and the impairment of allosteric networks. The R366X RIα mutant has been previously studied via X-ray crystallography, but the crystal structure only captured the inhibited state and showed minimal difference from the wild type structure. Additionally, previous studies only examined the effects of ACRO mutants on the activation cycle of PKA (i.e. sensitivity to cAMP binding). Here we focus on the less understood signal termination cycle. We hypothesize that R366X acts by perturbing dynamic intermediates relevant to the PKA deactivation cycle, which are not fully recapitulated by static structures. To test our hypothesis, we combined low- and high-resolution approaches for probing protein-ligand binging, mutant stability, and identifying regions exhibiting aberrant allosteric behaviors. Based on our results, we propose a novel mechanism whereby R366X not only impairs physiological PKA activation but also accelerates PKA deactivation by increasing the rate of phosphodiesterase-catalyzed cAMP hydrolysis to 5'-AMP. Our studies shed new light on the current understanding of PKA dysregulation and ACRO's molecular etiology, outlining a multi-resolution experimental design which is transferable to other ACRO mutants.

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来源期刊
Journal of Molecular Biology
Journal of Molecular Biology 生物-生化与分子生物学
CiteScore
11.30
自引率
1.80%
发文量
412
审稿时长
28 days
期刊介绍: Journal of Molecular Biology (JMB) provides high quality, comprehensive and broad coverage in all areas of molecular biology. The journal publishes original scientific research papers that provide mechanistic and functional insights and report a significant advance to the field. The journal encourages the submission of multidisciplinary studies that use complementary experimental and computational approaches to address challenging biological questions. Research areas include but are not limited to: Biomolecular interactions, signaling networks, systems biology; Cell cycle, cell growth, cell differentiation; Cell death, autophagy; Cell signaling and regulation; Chemical biology; Computational biology, in combination with experimental studies; DNA replication, repair, and recombination; Development, regenerative biology, mechanistic and functional studies of stem cells; Epigenetics, chromatin structure and function; Gene expression; Membrane processes, cell surface proteins and cell-cell interactions; Methodological advances, both experimental and theoretical, including databases; Microbiology, virology, and interactions with the host or environment; Microbiota mechanistic and functional studies; Nuclear organization; Post-translational modifications, proteomics; Processing and function of biologically important macromolecules and complexes; Molecular basis of disease; RNA processing, structure and functions of non-coding RNAs, transcription; Sorting, spatiotemporal organization, trafficking; Structural biology; Synthetic biology; Translation, protein folding, chaperones, protein degradation and quality control.
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