首页> 美国卫生研究院文献>Biophysical Journal >Accurate Flexible Fitting of High-Resolution Protein Structures to Small-Angle X-Ray Scattering Data Using a Coarse-Grained Model with Implicit Hydration Shell
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Accurate Flexible Fitting of High-Resolution Protein Structures to Small-Angle X-Ray Scattering Data Using a Coarse-Grained Model with Implicit Hydration Shell

机译:使用具有粗化水合壳的粗粒模型将高分辨率蛋白质结构精确灵活地拟合到小角度X射线散射数据

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摘要

Small-angle x-ray scattering (SAXS) is a powerful technique widely used to explore conformational states and transitions of biomolecular assemblies in solution. For accurate model reconstruction from SAXS data, one promising approach is to flexibly fit a known high-resolution protein structure to low-resolution SAXS data by computer simulations. This is a highly challenging task due to low information content in SAXS data. To meet this challenge, we have developed what we believe to be a novel method based on a coarse-grained (one-bead-per-residue) protein representation and a modified form of the elastic network model that allows large-scale conformational changes while maintaining pseudobonds and secondary structures. Our method optimizes a pseudoenergy that combines the modified elastic-network model energy with a SAXS-fitting score and a collision energy that penalizes steric collisions. Our method uses what we consider a new implicit hydration shell model that accounts for the contribution of hydration shell to SAXS data accurately without explicitly adding waters to the system. We have rigorously validated our method using five test cases with simulated SAXS data and three test cases with experimental SAXS data. Our method has successfully generated high-quality structural models with root mean-squared deviation of 1 ∼ 3 Å from the target structures.
机译:小角X射线散射(SAXS)是一种功能强大的技术,广泛用于探索溶液中生物分子组装体的构象状态和跃迁。为了根据SAXS数据进行准确的模型重建,一种有前途的方法是通过计算机模拟灵活地将已知的高分辨率蛋白质结构与低分辨率SAXS数据进行拟合。由于SAXS数据中的信息量很少,因此这是一项极富挑战性的任务。为了应对这一挑战,我们开发了一种我们认为是基于粗粒(每个残基一个珠子)蛋白质表示形式和弹性网络模型的修改形式的新颖方法,该模型允许大规模构象变化,维持伪键和二级结构。我们的方法优化了伪能量,该伪能量将修改后的弹性网络模型能量与SAXS拟合得分和碰撞能量(结合了空间碰撞)相结合。我们的方法使用了我们认为的新的隐式水化壳模型,该模型可以准确地解释水化壳对SAXS数据的贡献,而无需向系统中明确添加水。我们已经使用五个具有模拟SAXS数据的测试用例和三个具有实验SAXS数据的测试用例来严格验证了我们的方法。我们的方法已成功生成与目标结构的均方根偏差为1〜3Å的高质量结构模型。

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