Activity-Enhancing Mutations in an LmrR-Based Artificial Metalloenzyme Destabilize the Protein Scaffold and Alter its Conformational Plasticity.

IF 2.6 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
ChemBioChem Pub Date : 2025-06-13 DOI:10.1002/cbic.202500259
Adil A Safeer, Fabrizio Casilli, Wouter Beugelink, Gerard Roelfes, Marc Baldus, Hugo van Ingen
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引用次数: 0

Abstract

Artificial metalloenzymes (ArM) hold great potential for the sustainable catalysis of complex new-to-nature reactions. To efficiently improve the catalytic efficacy of ArMs, a rational approach is desirable, requiring detailed molecular insight into their conformational landscape. Lactococcal multidrug resistance regulator (LmrR) is a multipurpose ArM scaffold protein that, when bound to the Cu(II)-phenanthroline cofactor, catalyzes the Friedel-Crafts alkylation (FCA) of indoles. Previously, the M8D and A92E mutations are found to increase the efficiency of this reaction, but a molecular explanation has been lacking. The impact of these two activating mutations on the conformational landscape of LmrR in its apo, cofactor- and substrate-bound states is determined. The mutations cause a marked destabilization of the dimerization interface, resulting in a more open central hydrophobic cavity and a dynamic equilibrium between dimer and monomer LmrR is found. While mutant and wild-type have similar pocket conformation in the cofactor-bound state, the mutant shows a distinct interaction with the substrate. Our results suggest that increased retention of the catalytic cofactor and widened plasticity improve the activity of the mutant. Ultimately, these results help elucidating the intricate relationships between conformational dynamics of the protein scaffold, cofactor, and substrates that define catalytic activity.

基于lmrr的人工金属酶的活性增强突变破坏了蛋白质支架的稳定性并改变了其构象可塑性。
人工金属酶(ArM)在持续催化复杂的新自然反应方面具有巨大的潜力。为了有效地提高arm的催化效果,需要一种合理的方法,需要对其构象景观进行详细的分子洞察。乳球菌多药耐药调节因子(LmrR)是一种多用途的ArM支架蛋白,当与Cu(II)-菲罗啉辅助因子结合时,可催化吲哚的Friedel-Crafts烷基化(FCA)。此前,M8D和A92E突变被发现可以提高该反应的效率,但缺乏分子解释。我们在这里确定了这两个激活突变对LmrR在载脂蛋白、辅因子和底物结合状态下的构象景观的影响。我们发现突变导致二聚化界面明显不稳定,导致中心疏水腔更开放,二聚体和单体LmrR之间达到动态平衡。虽然突变型和野生型在辅因子结合状态下具有相似的口袋构象,但突变型与底物表现出明显的相互作用。我们的研究结果表明,增加催化辅因子的保留和扩大的可塑性提高了突变体的活性。最终,这些结果有助于阐明蛋白质支架、辅因子和定义催化活性的底物的构象动力学之间的复杂关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ChemBioChem
ChemBioChem 生物-生化与分子生物学
CiteScore
6.10
自引率
3.10%
发文量
407
审稿时长
1 months
期刊介绍: ChemBioChem (Impact Factor 2018: 2.641) publishes important breakthroughs across all areas at the interface of chemistry and biology, including the fields of chemical biology, bioorganic chemistry, bioinorganic chemistry, synthetic biology, biocatalysis, bionanotechnology, and biomaterials. It is published on behalf of Chemistry Europe, an association of 16 European chemical societies, and supported by the Asian Chemical Editorial Society (ACES).
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