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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Bottom-Up Coarse-Graining of Peptide Ensembles and Helix-Coil Transitions
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Bottom-Up Coarse-Graining of Peptide Ensembles and Helix-Coil Transitions

机译:自下而上粗粒化的肽集合和螺旋线圈​​过渡。

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This work investigates, the capability of bottom-up methods for parametrizing minimal coarse-grained (CG) models of disordered and helical peptides. We consider four high-resolution, peptide, ensembles that demonstrate varying degrees of complexity, For each high-resolution ensemble, we parametrize a CG model via the multiscale coarse-graining (MS-CG) method, which employs a generalized Yvon-Born-Green (g-YBG) relation to determine potentials directly (i.e., without iteration) from the high-resolution ensemble: The MS-CG, method accurately describes high-resolution models that fluctuate about a single conformation. However, given the minimal resolution and simple molecular mechanics potential, the MS-CG method provides a less accurate description for a high-resolution peptide model that Samples a disordered ensemble with multiple distinct conformations. We employ an iterative g-YBG method to develop a CG model that more accurately describes the relevant distribution functions and free energy surfaces for this disordered ensemble. Nevertheless, this more accurate model does not reproduce the cooperative helix-coil transition that is sampled by the high resolution model. By comparing the different models, we demonstrate that the errors in the MS-CG model primarily stem from the lack of cooperative interactions afforded by the minimal representation and molecular mechanics potential. This work demonstrates the potential of the MS-CG method for accurately modeling complex biomolecular structures, but also highlights the importance of more complex potentials for modeling cooperative transitions with a minimal CG representation.
机译:这项工作调查了自底向上方法对无序和螺旋形肽的最小粗粒度(CG)模型进行参数化的能力。我们考虑了四个显示不同程度复杂度的高分辨率肽团,对于每个高分辨率合奏,我们通过多尺度粗粒度(MS-CG)方法对CG模型进行参数化,该方法采用了广义的Yvon-Born-绿色(g-YBG)关系可直接从高分辨率集合确定电位(即,无需迭代):MS-CG方法精确描述了围绕单个构象波动的高分辨率模型。但是,考虑到最小的分辨率和简单的分子力学潜力,MS-CG方法为高分辨率肽模型提供了较不准确的描述,该模型对具有多个不同构象的无序集合进行采样。我们采用迭代g-YBG方法来开发CG模型,该模型可以更准确地描述此无序集合的相关分布函数和自由能面。但是,此更准确的模型不能重现高分辨率模型采样的合作螺旋-螺旋过渡。通过比较不同的模型,我们证明了MS-CG模型中的错误主要源于最小表示形式和分子力学潜力所缺乏的合作性相互作用。这项工作证明了MS-CG方法对复杂的生物分子结构进行精确建模的潜力,但同时也强调了更复杂的潜力对于以最小的CG表示来建模协作跃迁的重要性。

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