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A voltage-dependent fluorescent indicator for optogenetic applications archaerhodopsin-3: Structure and optical properties fromin silico modeling

机译:用于光遗传学应用的电压依赖性荧光指示剂古细菌视紫红质3:结构和光学性质来自计算机模拟

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摘要

It was demonstrated in recent studies that some rhodopsins can be used in optogenetics as fluorescent indicators of membrane voltage. One of the promising candidates for these applications is archaerhodopsin-3. While it has already shown encouraging results, there is still a large room for improvement. One of possible directions is increasing the intensity of the protein's fluorescent signal. Rational design of mutants with an improved signal is an important task, which requires both experimental and theoretical studies. Herein, we used a homology-based computational approach to predict the three-dimensional structure of archaerhodopsin-3, and a Quantum Mechanics/Molecular Mechanics (QM/MM) hybrid approach with high-level multireference ab initio methodology (SORCI+Q/AMBER) to model optical properties of this protein. We demonstrated that this methodology allows for reliable prediction of structure and spectral properties of archaerhodopsin-3. The results of this study can be utilized for computational molecular design of efficient fluorescent indicators of membrane voltage for modern optogenetics on the basis of archaerhodopsin-3.
机译:最近的研究表明,某些视紫红质可以在光遗传学中用作膜电压的荧光指示剂。这些应用中有希望的候选者之一是古细菌视紫红质3。尽管已经显示出令人鼓舞的结果,但仍有很大的改进空间。可能的方向之一是增加蛋白质荧光信号的强度。合理设计具有改善信号的突变体是一项重要任务,需要实验和理论研究。在本文中,我们使用基于同源性的计算方法来预测古细菌视紫红质3的三维结构,并使用量子力学/分子力学(QM / MM)混合方法与高级多参考从头算方法(SORCI + Q / AMBER )以模拟这种蛋白质的光学特性。我们证明了这种方法可以可靠地预测古细菌视紫红质3的结构和光谱特性。这项研究的结果可用于基于古细菌视紫红质3的现代光遗传学的膜电压有效荧光指示剂的分子计算设计。

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