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Structures of hyperstable ancestral haloalkane dehalogenases show restricted conformational dynamics

机译:高价祖卤烷烃脱氢酶的结构显示有限的构象动态

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Ancestral sequence reconstruction is a powerful method for inferring ancestors of modern enzymes and for studying structure–function relationships of enzymes. We have previously applied this approach to haloalkane dehalogenases (HLDs) from the subfamily HLD-II and obtained thermodynamically highly stabilized enzymes (Δ T subm/sub up to 24?°C), showing improved catalytic properties. Here we combined crystallographic structural analysis and computational molecular dynamics simulations to gain insight into the mechanisms by which ancestral HLDs became more robust enzymes with novel catalytic properties. Reconstructed ancestors exhibited similar structure topology as their descendants with the exception of a few loop deviations. Strikingly, molecular dynamics simulations revealed restricted conformational dynamics of ancestral enzymes, which prefer a single state, in contrast to modern enzymes adopting two different conformational states. The restricted dynamics can potentially be linked to their exceptional stabilization. The study provides molecular insights into protein stabilization due to ancestral sequence reconstruction, which is becoming a widely used approach for obtaining robust protein catalysts.
机译:祖先序列重建是一种强大的方法,用于推断现代酶的祖先,以及研究酶的结构功能关系。我们以前从亚家族HLD-II中施加了卤砜脱氢酶(HLDS)的方法,并获得了热力学高度稳定的酶(δT<亚℃最多24℃),显示出改善的催化性质。在这里,我们组合了晶体结构分析和计算分子动力学模拟,深入了解祖先HLDS具有新型催化性质更强大的酶的机制。重建的祖先表现出类似的结构拓扑,作为其后代,除了几个环路偏差。尖锐的,分子动力学模拟显示了祖先酶的受限构象动态,其更喜欢单一的状态,与采用两种不同的构象状态的现代酶形成对比。受限制的动态可能与其特殊的稳定相关联。该研究提供了由于血管序列重建引起的蛋白质稳定化的分子见解,这成为获得鲁棒蛋白催化剂的广泛使用的方法。

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