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深入了解抗坏血酸和玉米黄质与脱环氧化酶(VDE)和绿藻脱环氧化酶(CVDE)酶的结合机制。

Insights into the binding mechanism of ascorbic acid and violaxanthin with violaxanthin de-epoxidase (VDE) and chlorophycean violaxanthin de-epoxidase (CVDE) enzymes.

机构信息

Department of Chemical Sciences, Indian Institute of Science Education and Research (IISER) Berhampur, Ganjam, Odisha, 760010, India.

School of Biosciences and Bioengineering, D Y Patil International University, Akurdi, Pune, Maharashtra-411044, India.

出版信息

Photosynth Res. 2023 Jun;156(3):337-354. doi: 10.1007/s11120-023-01006-0. Epub 2023 Feb 27.

Abstract

Photosynthetic organisms have evolved to work under low and high lights in photoprotection, acting as a scavenger of reactive oxygen species. The light-dependent xanthophyll cycle involved in this process is performed by a key enzyme (present in the thylakoid lumen), Violaxanthin De-Epoxidase (VDE), in the presence of violaxanthin (Vio) and ascorbic acid substrates. Phylogenetically, VDE is found to be connected with an ancestral enzyme Chlorophycean Violaxanthin De-Epoxidase (CVDE), present in the green algae on the stromal side of the thylakoid membrane. However, the structure and functions of CVDE were not known. In search of functional similarities involving this cycle, the structure, binding conformation, stability, and interaction mechanism of CVDE are explored with the two substrates compared to VDE. The structure of CVDE was determined by homology modeling and validated. In silico docking (of first-principles optimized substrates) revealed it has a larger catalytic domain than VDE. A thorough analysis of the binding affinity and stability of four enzyme-substrate complexes is performed by computing free energies and their decomposition, the root-mean-square deviation (RMSD) and fluctuation (RMSF), the radius of gyration, salt bridge, and hydrogen bonding interactions in molecular dynamics. Based on these, violaxanthin interacts with CVDE to a similar extent as that of VDE. Hence, its role is expected to be the same for both enzymes. On the contrary, ascorbic acid has a weaker interaction with CVDE than VDE. Given these interactions drive epoxidation or de-epoxidation in the xanthophyll cycle, it immediately discerns that either ascorbic acid does not participate in de-epoxidation or a different cofactor is necessary as CVDE has a weaker interaction with ascorbic acid than VDE.

摘要

光合生物进化出在光保护下适应低光和高光的能力,作为活性氧物种的清除剂。这个过程中涉及的依赖光的叶黄素循环是由一种关键酶(存在于类囊体腔中),即 Violaxanthin De-Epoxidase(VDE),在 violaxanthin(Vio)和抗坏血酸底物的存在下完成的。从系统发育上看,VDE 与存在于类囊体膜基质侧的绿藻中的祖先酶 Chlorophycean Violaxanthin De-Epoxidase(CVDE)有关。然而,CVDE 的结构和功能尚不清楚。为了寻找涉及这个循环的功能相似性,我们探索了 CVDE 与两种底物的结构、结合构象、稳定性和相互作用机制,与 VDE 进行比较。通过同源建模和验证确定了 CVDE 的结构。通过基于第一性原理优化的底物的计算对接,揭示了它比 VDE 具有更大的催化结构域。通过计算自由能及其分解、均方根偏差(RMSD)和波动(RMSF)、回转半径、盐桥和氢键相互作用,对四个酶-底物复合物的结合亲和力和稳定性进行了全面分析。基于这些,发现 violaxanthin 与 CVDE 的相互作用与 VDE 相似。因此,它对两种酶的作用应该是相同的。相反,抗坏血酸与 CVDE 的相互作用比 VDE 弱。鉴于这些相互作用驱动叶黄素循环中的环氧化或去环氧化,它立即表明抗坏血酸要么不参与去环氧化,要么需要不同的辅因子,因为 CVDE 与抗坏血酸的相互作用比 VDE 弱。

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