蛋白酪氨酸磷酸酶的序列-动力学-功能关系

Q3 Biochemistry, Genetics and Molecular Biology QRB Discovery Pub Date : 2024-01-24 DOI:10.1017/qrd.2024.3
Rory M. Crean, Marina Corbella, A. R. Calixto, A. Hengge, S. C. Kamerlin
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引用次数: 0

摘要

蛋白酪氨酸磷酸酶是细胞信号传导的关键调节因子。它们的活性受一个保守的环--WPD-环--从无催化活性的开放构象运动到有催化活性的封闭构象的调节。WPD 环的运动能将催化关键残基最佳地定位到活性位点,并与这些酶的周转次数直接相关。通过将 PTP1B 的部分 WPD-环序列嫁接到 YopH 的支架上而构建的嵌合 PTP 的晶体结构显示,WPD-环呈宽开放构象,这是以前从未在这两种母酶中观察到的。不过,在小分子抑制剂与其他 PTPs 结合时,也观察到了这种宽开口构象,这表明有可能将其作为药物发现的靶点。在这里,我们对这两种酶进行了模拟,结果表明,在催化的化学步骤中,能量差异可以忽略不计,但在 WPD 环的动态特性上却存在显著差异。详细的相互作用网络分析深入揭示了这种向宽开放构象转变的分子基础。综上所述,我们的研究深入揭示了这些 YopH 变体的环路动力学与化学之间的联系,以及如何通过改变内部蛋白质相互作用网络来设计 WPD-环路动力学。
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Sequence – Dynamics – Function Relationships in Protein Tyrosine Phosphatases
Protein tyrosine phosphatases are crucial regulators of cellular signaling. Their activity is regulated by the motion of a conserved loop, the WPD-loop, from a catalytically inactive open to a catalytically active closed conformation. WPD-loop motion optimally positions a catalytically critical residue into the active site, and is directly linked to the turnover number of these enzymes. Crystal structures of chimeric PTPs constructed by grafting parts of the WPD-loop sequence of PTP1B onto the scaffold of YopH showed WPD-loops in a wide-open conformation never previously observed in either parent enzyme. This wide-open conformation has, however, been observed upon binding of small molecule inhibitors to other PTPs, suggesting the potential of targeting it for drug discovery efforts. Here, we have performed simulations of both enzymes and show that there are negligible energetic differences in the chemical step of catalysis, but significant differences in the dynamical properties of the WPD-loop. Detailed interaction network analysis provides insight into the molecular basis for this population shift to a wide-open conformation. Taken together, our study provides insight into the links between loop dynamics and chemistry in these YopH variants specifically, and how WPD-loop dynamic can be engineered through modification of the internal protein interaction network.
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来源期刊
QRB Discovery
QRB Discovery Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
3.60
自引率
0.00%
发文量
18
审稿时长
12 weeks
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