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Combinatorial methods for small-molecule placement in computational enzyme design

机译:计算酶设计中小分子放置的组合方法

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The incorporation of small-molecule transition state structures into protein design calculations poses special challenges because of the need to represent the added translational, rotational, and conformational freedoms within an already difficult optimization problem. Successful approaches to computational enzyme design have focused on catalytic side-chain contacts to guide placement of small molecules in active sites. We describe a process for modeling small molecules in enzyme design calculations that extends previously described methods, allowing favorable small-molecule positions and conformations to be explored simultaneously with sequence optimization. Because all current computational enzyme design methods rely heavily on sampling of possible active site geometries from discrete conformational states, we tested the effects of discretization parameters on calculation results. Rotational and translational step sizes as well as side-chain library types were varied in a series of computational tests designed to identify native-like binding contacts in three natural systems. We find that conformational parameters, especially the type of rotamer library used, significantly affect the ability of design calculations to recover native binding-site geometries. We describe the construction and use of a crystallographic conformer library and find that it more reliably captures active-site geometries than traditional rotamer libraries in the systems tested.
机译:由于需要在已经很困难的优化问题中表示增加的平移,旋转和构象自由度,因此将小分子过渡态结构纳入蛋白质设计计算面临特殊挑战。计算酶设计的成功方法集中于催化侧链接触,以指导小分子在活性位点的放置。我们描述了在酶设计计算中对小分子建模的过程,该过程扩展了先前描述的方法,允许在进行序列优化的同时探索有利的小分子位置和构象。由于所有当前的计算酶设计方法都严重依赖于来自离散构象状态的可能的活性位点几何形状的采样,因此我们测试了离散化参数对计算结果的影响。旋转和平移步长以及侧链库类型在一系列旨在确定三种自然系统中类似天然结合接触的计算测试中有所变化。我们发现构象参数,尤其是所使用的旋转异构体库的类型,显着影响设计计算恢复天然结合位点几何形状的能力。我们描述了晶体构象库的构建和使用,发现在测试的系统中,它比传统的旋转异构体库更可靠地捕获了活动站点的几何形状。

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