Structural conservation in the glutathione binding in Sphingomonas sp. glutaredoxin Grx3 and variations for cold adaptation

IF 2.5 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochimica et biophysica acta. Proteins and proteomics Pub Date : 2023-11-05 DOI:10.1016/j.bbapap.2023.140971
Trang Van Tran, Hoa Nguyen, Luyen Vu, ChangWoo Lee
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引用次数: 0

Abstract

Glutaredoxin 3 (Grx3), a redox protein with a thioredoxin-fold structure, maintains structural integrity and glutathione (GSH) binding capabilities across varying habitat temperatures. The cis-Pro loop, essential for GSH binding, relies on the Arg-Asp salt bridge (α2-α3) and Gln-His hydrogen bond (β3-β4) for its conformation. In some psychrophilic Grx3 variants, Arg in α2 is replaced with Tyr, and His in β4 is replaced with Phe. This study examines the roles of these bonds in Grx3's structure, function, and cold adaptation, using SpGrx3 from the Arctic bacterium Sphingomonas sp. Despite its cold habitat, SpGrx3 maintains the Arg51-Asp69 salt bridge and Gln56-His63 hydrogen bond. The R51Y substitution disrupts the α2-α3 salt bridge, while the H63F and H63Y substitutions hinder the salt bridge through cation-π interactions with Arg51, involving Phe63/Tyr63, thereby enhancing flexibility. Conversely, mutations that disrupt the hydrogen bond (Q56A, H63A, and H63F) reduce thermal stability. In the psychrophilic Grx3 configuration A48T/R51Y/H63F, a Thr48-Gln56 hydrogen bond stabilizes the cis-Pro loop, enhancing flexibility by disrupting both bonds. Furthermore, all mutants exhibit reduced α-helical content and catalytic efficiency. In summary, the highly conserved Arg51-Asp69 salt bridge and Gln56-His63 hydrogen bond are crucial for stabilizing the cis-Pro loop and catalytic activity in SpGrx3. His63 is favored as it avoids cation-π interactions with Arg51, unlike Phe63/Tyr63. Psychrophilic Grx3 variants have adapted to cold environments by reducing GSH binding and increasing structural flexibility. These findings deepen our understanding of the structural conservation in Grx3 for GSH binding and the critical alterations required for cold adaptation.

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鞘氨醇单胞菌谷胱甘肽结合的结构保守性。谷胱甘肽Grx3和冷适应变异。
谷胱甘肽3(Grx3)是一种具有硫氧还蛋白折叠结构的氧化还原蛋白,在不同的栖息地温度下保持结构完整性和谷胱甘肽(GSH)结合能力。顺式-Pro环是GSH结合所必需的,其构象依赖于Arg-Asp盐桥(α2-α3)和Gln-His氢键(β3-β4)。在一些嗜冷Grx3变体中,α2中的Arg被Tyr取代,β4中的His被Phe取代。本研究使用北极细菌鞘氨醇单胞菌属的SpGrx3,研究了这些键在Grx3的结构、功能和冷适应中的作用。尽管它的栖息地很冷,SpGrx3仍保持着Arg51-Asp69盐桥和Gln56-His63氢键。R51Y取代破坏了α2-α3盐桥,而H63F和H63Y取代通过与Arg51的阳离子-π相互作用阻碍了盐桥,涉及Phe63/Tyr63,从而增强了灵活性。相反,破坏氢键(Q56A、H63A和H63F)的突变会降低热稳定性。在嗜冷Grx3构型A48T/R51Y/H63F中,Thr48-Gln56氢键稳定顺式-Pro环,通过破坏两个键来增强灵活性。此外,所有突变体都表现出α-螺旋含量和催化效率的降低。总之,高度保守的Arg51-Asp69盐桥和Gln56-His63氢键对于稳定SpGrx3中的顺式-Pro环和催化活性至关重要。与Phe63/Tyr63不同,His63避免了与Arg51的阳离子-π相互作用,因此受到青睐。嗜冷Grx3变体通过减少GSH结合和增加结构灵活性来适应寒冷环境。这些发现加深了我们对Grx3中GSH结合的结构保守性以及冷适应所需的关键改变的理解。
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来源期刊
CiteScore
8.00
自引率
0.00%
发文量
55
审稿时长
33 days
期刊介绍: BBA Proteins and Proteomics covers protein structure conformation and dynamics; protein folding; protein-ligand interactions; enzyme mechanisms, models and kinetics; protein physical properties and spectroscopy; and proteomics and bioinformatics analyses of protein structure, protein function, or protein regulation.
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