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第二壳层残基对依赖磷酸吡哆醛的转氨酶催化作用的贡献:来自[具体来源]的D-氨基酸转氨酶的案例研究

Contribution of Second-Shell Residues to PLP-Dependent Transaminase Catalysis: A Case Study of D-Amino Acid Transaminase from .

作者信息

Bakunova Alina K, Rudina Iuliia V, Popov Vladimir O, Bezsudnova Ekaterina Yu

机构信息

Bach Institute of Biochemistry, Research Centre of Biotechnology of the Russian Academy of Sciences, Moscow 119071, Russia.

Department of Biology, Lomonosov Moscow State University, Moscow 119991, Russia.

出版信息

Int J Mol Sci. 2025 Sep 2;26(17):8536. doi: 10.3390/ijms26178536.

Abstract

Understanding the structure-function relationships of pyridoxal-5'-phosphate (PLP)-dependent transaminases is key to advancing pyridoxal-phosphate-dependent catalysis and engineering transaminases for industrial applications. Despite our extensive knowledge of PLP-dependent enzymatic reactions, engineering transaminase activity and stability remains challenging. Here, we present the functional characterization of a novel PLP-dependent fold type IV transaminase from , alongside a detailed analysis of PLP binding and holoenzyme stability. This new transaminase exhibits activity toward various D-amino acids and ()-phenylethylamine. Structural modeling and site-directed mutagenesis of residues in the second shell of the PLP-binding site revealed their roles in cofactor binding and the transaminase's catalytic efficiency. Notably, the T199Q variant demonstrated a fivefold increase in PLP affinity and improved activity under alkaline conditions. This is attributed to a newly formed hydrogen bond that stabilizes the N1-binding region of PLP. Glutamine at position 199 is not observed in homologous transaminases, making this non-natural substitution a novel and beneficial modification. These findings emphasize the importance of second-shell interactions in stabilizing PLP and expand our understanding of the structural diversity within PLP fold type IV transaminases. This paves the way for the engineering of more stable and versatile biocatalysts for industrial applications.

摘要

了解磷酸吡哆醛(PLP)依赖性转氨酶的结构-功能关系是推进磷酸吡哆醛依赖性催化以及改造转氨酶以用于工业应用的关键。尽管我们对PLP依赖性酶促反应有广泛了解,但改造转氨酶的活性和稳定性仍然具有挑战性。在此,我们展示了一种来自[具体来源未提及]的新型PLP依赖性IV型折叠转氨酶的功能特性,并对PLP结合和全酶稳定性进行了详细分析。这种新型转氨酶对多种D-氨基酸和()-苯乙胺具有活性。对PLP结合位点第二壳层中残基的结构建模和定点诱变揭示了它们在辅因子结合和转氨酶催化效率中的作用。值得注意的是,T199Q变体在碱性条件下表现出PLP亲和力提高了五倍且活性增强。这归因于新形成的氢键稳定了PLP的N1结合区域。在同源转氨酶中未观察到199位的谷氨酰胺,使得这种非天然取代成为一种新颖且有益的修饰。这些发现强调了第二壳层相互作用在稳定PLP中的重要性,并扩展了我们对PLP IV型折叠转氨酶结构多样性的理解。这为设计更稳定、更通用的工业应用生物催化剂铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7211/12429042/6d95a4811c3f/ijms-26-08536-g001.jpg

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