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蛋白质中的能量传播与网络能量耦合

Energy propagation and network energetic coupling in proteins.

作者信息

Ribeiro Andre A S T, Ortiz Vanessa

机构信息

Department of Chemical Engineering, Columbia University , New York, New York 10027, United States.

出版信息

J Phys Chem B. 2015 Feb 5;119(5):1835-46. doi: 10.1021/jp509906m. Epub 2015 Jan 21.

Abstract

Understanding how allosteric proteins respond to changes in their environment is a major goal of current biological research. We show that these responses can be quantified by analyzing protein energy networks using a method recently developed in our group. On the basis of this method, we introduce here a quantity named energetic coupling, which we show is able to discriminate allosterically active mutants of the lactose repressor (LacI) protein, and of the catabolite activator protein (CAP), a dynamically driven allosteric protein. Our method assumes that allostery and signal transmission can be more accurately described as efficient energy propagation, and not as the more widely used atomic motion correlations. We demonstrate the validity of this assumption by performing energy-propagation simulations. Finally, we present results from energy-propagation simulations performed on folded and fully extended conformations of the postsynaptic density protein 95 (PSD-95). They show that the protein backbone provides a more efficient route for energy transfer, when compared to secondary or tertiary contacts. On the basis of this, we propose energy propagation through the backbone as a possible explanation for the observation that intrinsically disordered proteins can efficiently transmit signals while lacking a well-defined tertiary structure.

摘要

了解变构蛋白如何响应其环境变化是当前生物学研究的一个主要目标。我们表明,这些响应可以通过使用我们小组最近开发的一种方法分析蛋白质能量网络来进行量化。基于此方法,我们在此引入一个名为能量耦合的量,我们证明它能够区分乳糖阻遏蛋白(LacI)和分解代谢物激活蛋白(CAP,一种动态驱动的变构蛋白)的变构活性突变体。我们的方法假设变构和信号传递可以更准确地描述为有效的能量传播,而不是更广泛使用的原子运动相关性。我们通过进行能量传播模拟来证明这一假设的有效性。最后,我们展示了对突触后致密蛋白95(PSD - 95)的折叠和完全伸展构象进行能量传播模拟的结果。结果表明,与二级或三级接触相比,蛋白质主链为能量转移提供了更有效的途径。基于此,我们提出通过主链进行能量传播,作为对内在无序蛋白在缺乏明确三级结构的情况下仍能有效传递信号这一观察结果的一种可能解释。

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