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Prediction and simulation of motion in pairs of transmembrane alpha-helices

机译:跨膜α-螺旋运动的预测和模拟

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Motivation: Motion in transmembrane (TM) proteins plays an essential role in a variety of biological phenomena. Thus, developing an automated method for predicting and simulating motion in this class of proteins should result in an increased level of understanding of crucial physiological mechanisms. We have developed an algorithm for predicting and simulating motion in TM proteins of the alpha-helix bundle type. Our method employs probabilistic motion-planning techniques to suggest possible collision-free motion paths. The resulting paths are ranked according to the quality of the van der Waals interactions between the TM helices. Our algorithm considers a wide range of degrees of freedom (dofs) involved in the motion, including external and internal moves. However, in order to handle the vast dimensionality of the problem, we employ some constraints on these dofs in a way that is unlikely to rule out the native motion of the protein. Our algorithm simulates the motion, including all the dofs, and automatically produces a movie that demonstrates it. Results: Overexpression of the RTK ErbB2 was implicated in causing a variety of human cancers. Recently, a molecular mechanism for rotation-coupled activation of the receptor was suggested. We applied our algorithm to investigate the TM domain of this protein, and compared our results with this mechanism. A motion pathway that was similar to the proposed mechanism ranked first, and motions with partial overlap to this pathway followed in rank order. In addition, we conducted a negative-control computational-experiment using Glycophorin A. Our results confirmed the immobility of this TM protein, resulting in degenerate paths comprising native-like conformations.
机译:动机:跨膜(TM)蛋白质的运动在多种生物学现象中起着至关重要的作用。因此,开发一种用于预测和模拟此类蛋白质运动的自动化方法应该可以提高对关键生理机制的了解。我们已经开发出一种算法,用于预测和模拟α-螺旋束类型的TM蛋白中的运动。我们的方法采用概率运动计划技术来建议可能的无碰撞运动路径。根据TM螺旋之间的范德华相互作用的质量对得到的路径进行排序。我们的算法考虑了运动涉及的广泛自由度(dofs),包括外部和内部运动。但是,为了处理该问题的广泛范围,我们对这些自由度采用了一些约束,但这种方式不太可能排除蛋白质的固有运动。我们的算法模拟了运动,包括所有自由度,并自动生成了一部演示该运动的电影。结果:RTK ErbB2的过表达与多种人类癌症有关。最近,提出了旋转耦合激活受体的分子机制。我们应用我们的算法研究了该蛋白质的TM结构域,并将我们的结果与该机制进行了比较。与拟议机制相似的运动路径排名第一,并且与该路径部分重叠的运动按照排名顺序排列。此外,我们使用糖精A进行了阴性对照计算实验。我们的结果证实了该TM蛋白的固定性,导致包含天然样构象的简并路径。

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