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Light-induced Hydrogen Bonding Pattern and Driving Force of Electron Transfer in AppA BLUF Domain Photoreceptor

机译:光致氢键的结合方式和电子的驱动力 在AppA BLUF域中转移 感光体

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摘要

The AppA BLUF (blue light sensing using FAD) domain from Rhodobacter sphaeroides serves as a blue light-sensing photoreceptor. The charge separation process between Tyr-21 and flavin plays an important role in the light signaling state by transforming the dark state conformation to the light state one. By solving the linearized Poisson-Boltzmann equation, I calculated Em for Tyr-21, flavin, and redox-active Trp-104 and revealed the electron transfer (ET) driving energy. Rotation of the Gln-63 side chain that converts protein conformation from the dark state to the light state is responsible for the decrease of 150 mV in Em for Tyr-21, leading to the significantly larger ET driving energy in the light state conformation. The pKa values of protonation for flavin anions are essentially the same in both dark and light state crystal structures. In contrast to the ET via Tyr-21, formation of the W state results in generation of only the dark state conformation (even if the initial conformation is in the light state); this could explain why Trp-104-mediated ET deactivates the light-sensing yield and why the activity of W104A mutant is similar to that of the light-adapted native BLUF.
机译:球形球形红细菌的AppA BLUF(使用FAD进行蓝光感测)域用作蓝光感测感光体。 Tyr-21和黄素之间的电荷分离过程通过将暗态构象转变为亮态构象,在光信号态中起重要作用。通过求解线性化的Poisson-Boltzmann方程,我计算出Tyr-21,黄素和氧化还原活性Trp-104的Em,并揭示了电子转移(ET)驱动能量。 Gyr-63侧链的旋转将蛋白质构象从暗态转换为亮态,导致Tyr-21的Em降低150 mV,从而导致亮态构象的ET驱动能量显着增大。黄素阴离子的质子化的pKa值在暗态和亮态晶体结构中基本相同。与通过Tyr-21的ET相比,W态的形成导致仅暗态构象的产生(即使初始构象处于亮态)。这可以解释为什么Trp-104介导的ET使光敏产量失活,为什么W104A突变体的活性与Wrp相似。 适应光照的本地BLUF。

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