【2h】

Protein design automation.

机译:蛋白质设计自动化。

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摘要

We have conceived and implemented a cyclical protein design strategy that couples theory, computation, and experimental testing. The combinatorially large number of possible sequences and the incomplete understanding of the factors that control protein structure are the primary obstacles in protein design. Our protein design automation algorithm objectively predicts protein sequences likely to achieve a desired fold. Using a rotamer description of the side chains, we implemented a fast discrete search algorithm based on the Dead-End Elimination Theorem to rapidly find the globally optimal sequence in its optimal geometry from the vast number of possible solutions. Rotamer sequences were scored for steric complementarity using a van der Waals potential. A Monte Carlo search was then executed, starting at the optimal sequence, in order to find other high-scoring sequences. As a test of the design methodology, high-scoring sequences were found for the buried hydrophobic residues of a homodimeric coiled coil based on GCN4-p1. The corresponding peptides were synthesized and characterized by CD spectroscopy and size-exclusion chromatography. All peptides were dimeric and nearly 100% helical at 1 degree C, with melting temperatures ranging from 24 degrees C to 57 degrees C. A quantitative structure activity relation analysis was performed on the designed peptides, and a significant correlation was found with surface area burial. Incorporation of a buried surface area potential in the scoring of sequences greatly improved the correlation between predicted and measured stabilities and demonstrated experimental feedback in a complete design cycle.
机译:我们已经构思并实现了一种循环蛋白设计策略,该策略将理论,计算和实验测试结合在一起。大量可能的序列以及对控制蛋白质结构的因素的不完全理解是蛋白质设计的主要障碍。我们的蛋白质设计自动化算法可以客观地预测可能实现所需折叠的蛋白质序列。使用对侧链的旋转描述,我们实现了基于死角消除定理的快速离散搜索算法,以从大量可能的解决方案中快速找到其最佳几何形状中的全局最佳序列。使用范德华力对Rotamer序列的空间互补性进行评分。然后从最佳序列开始执行蒙特卡洛搜索,以查找其他高分序列。作为设计方法的测试,发现了基于GCN4-p1的同型二聚体卷曲螺旋的疏水残基的高分序列。合成相应的肽并通过CD光谱和尺寸排阻色谱法表征。所有肽均为二聚体,并且在1摄氏度下的螺旋度接近100%,熔融温度范围为24摄氏度至57摄氏度。对设计的多肽进行了定量结构活性关系分析,发现与表面积埋藏有显着相关性。在序列评分中纳入隐埋表面积潜力极大地改善了预测和测量的稳定性之间的相关性,并在完整的设计周期中证明了实验反馈。

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