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理解一种类天然高效人工金属酶的定向进化

Understanding the Directed Evolution of a Natural-like Efficient Artificial Metalloenzyme.

作者信息

Mukherjee Anagh, Roy Subhendu

机构信息

Crystallography & Molecular Biology Division, Saha Institute of Nuclear Physics, Kolkata 700064, India.

Homi Bhabha National Institute, Mumbai 400094, India.

出版信息

J Phys Chem B. 2024 Dec 12;128(49):12122-12132. doi: 10.1021/acs.jpcb.4c06994. Epub 2024 Nov 26.

Abstract

The artificial metalloenzyme containing iridium in place of iron along with four directed evolution mutations C317G, T213G, L69V, and V254L in a natural cytochrome P450 presents an important milestone in merging the extraordinary efficiency of biocatalysts with the versatility of small molecule chemical catalysts in catalyzing a new-to-nature carbene insertion reaction. This is a show-stopper enzyme, as it exhibits a catalytic efficiency similar to that of natural enzymes. Despite this remarkable discovery, there is no mechanistic and structural understanding as to why it displays extraordinary efficiency after the incorporation of the four active site mutations by directed evolution methods, which so far has been intractable to any experimental methods. In this study, we have deciphered how directed evolution mutations gradually alter the protein conformational ensemble to populate a catalytically active conformation to boost a multistep catalysis in a natural-like artificial metalloenzyme using large-scale molecular dynamics simulations, rigorous quantum chemical (QM), and multiscale quantum chemical/molecular mechanics (QM/MM) calculations. It reveals how evolution precisely positions the cofactor-substrate in an unusual but effective orientation within a reshaped active site in the catalytically active conformation stabilized by C-H···π interactions from more ordered mutated L69V and V254L residues to achieve preferential transition state stabilization compared to the ground state. This work essentially tracks down in atomistic detail the shift in the conformational ensemble of the highly active conformation from the less efficient single mutant to the most efficient quadruple mutant and offers valuable insights for designing better enzymes. The active conformation correctly reproduces the experimental barrier height and also accounts for the catalytic effect, which is in good agreement with experimental observations. Moreover, this conformation features an unusual bonding interaction in a metal-carbene species that preferentially stabilizes the rate-determining formation of an iridium porphyrin carbene intermediate to render the observed high catalytic rate acceleration. Our study provides crucial insights into the underlying rationale for directed evolution, reports the major catalytic role of nonelectrostatic interactions in enzyme catalysis different from the electrostatic model, and suggests a crucial principle toward designing enzymes with natural efficiency.

摘要

在天然细胞色素P450中,用铱取代铁并带有四个定向进化突变C317G、T213G、L69V和V254L的人工金属酶,是将生物催化剂的非凡效率与小分子化学催化剂在催化一种自然界全新的卡宾插入反应中的多功能性相结合的一个重要里程碑。这是一种具有惊人效果的酶,因为它表现出与天然酶相似的催化效率。尽管有这一显著发现,但对于通过定向进化方法引入四个活性位点突变后它为何表现出非凡效率,目前尚无机理和结构方面的理解,而这一点迄今为止任何实验方法都难以解决。在本研究中,我们利用大规模分子动力学模拟、严格的量子化学(QM)以及多尺度量子化学/分子力学(QM/MM)计算,解读了定向进化突变如何逐渐改变蛋白质构象集合,以形成一种催化活性构象,从而促进一种类似天然的人工金属酶中的多步催化。它揭示了进化如何通过来自更有序的突变L69V和V254L残基的C-H···π相互作用,在催化活性构象中一个重塑的活性位点内,将辅因子-底物精确地定位在一个不寻常但有效的方向上,从而与基态相比实现优先的过渡态稳定。这项工作基本上从原子细节追踪了从效率较低的单突变体到效率最高的四突变体的高活性构象的构象集合的转变,并为设计更好的酶提供了有价值的见解。活性构象正确地再现了实验能垒高度,也解释了催化效果,这与实验观察结果高度吻合。此外,这种构象在金属-卡宾物种中具有一种不寻常的键合相互作用,优先稳定了铱卟啉卡宾中间体的速率决定形成,从而实现了所观察到的高催化速率加速。我们的研究为定向进化的潜在原理提供了关键见解,报道了非静电相互作用在不同于静电模型的酶催化中的主要催化作用,并提出了设计具有天然效率的酶至关重要的原则。

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