分子氧与miniSOG蛋白- a单线态氧光诱导源相互作用的计算模型

Igor V. Polyakov, A. Kulakova, A. Nemukhin
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引用次数: 0

摘要

光照后分子氧3O2与黄素依赖性蛋白miniSOG的相互作用导致单线态氧1O2和超氧化物O2的产生●−. 尽管最近解析了微小SOG变体的晶体结构,但黄素发色团附近的氧结合位点的特征较差。我们报告了使用分子动力学(MD)模拟的蛋白质-氧系统的计算研究结果,该模拟具有原始miniSOG和突变蛋白质的力场相互作用势和量子力学/分子力学(QM/MM)势。我们发现了几个氧结合口袋,并指出了连接本体溶剂和发色团的异恶唑嗪环的可能隧道。这些发现为理解一种重要的单线态氧光敏剂miniSOG的光物理性质迈出了重要的一步。
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Computational Modeling of the Interaction of Molecular Oxygen with the miniSOG Protein—A Light Induced Source of Singlet Oxygen
Interaction of molecular oxygen 3O2 with the flavin-dependent protein miniSOG after light illumination results in creation of singlet oxygen 1O2 and superoxide O2●−. Despite the recently resolved crystal structures of miniSOG variants, oxygen-binding sites near the flavin chromophore are poorly characterized. We report the results of computational studies of the protein−oxygen systems using molecular dynamics (MD) simulations with force-field interaction potentials and quantum mechanics/molecular mechanics (QM/MM) potentials for the original miniSOG and the mutated protein. We found several oxygen-binding pockets and pointed out possible tunnels bridging the bulk solvent and the isoalloxazine ring of the chromophore. These findings provide an essential step toward understanding photophysical properties of miniSOG—an important singlet oxygen photosensitizer.
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