Department of Chemistry, University of Connecticut, Storrs, Connecticut 06269-3060, United States.
J Phys Chem B. 2022 Aug 11;126(31):5803-5809. doi: 10.1021/acs.jpcb.2c03672. Epub 2022 Jul 27.
Heliorhodopsins (HeR) are a new category of heptahelical transmembrane photoactive proteins with a covalently linked all- retinal. The protonated Schiff base (PSB) nitrogen in the retinal is stabilized by a negatively charged counterion. It is well-known that stronger or weaker electrostatic interactions with the counterion cause a significant spectral blue- or red-shift, respectively, in both microbial and animal rhodopsins. In HeR, however, while Glu107 acts as the counterion, mutations of this residue are not directly correlated with a spectral shift. A molecular dynamics analysis revealed that a water cluster pocket produces a microsolvation effect on the Schiff base, compensating to various extents the replacement of the native counterion. Using a combination of molecular dynamics and quantum mechanical/molecular mechanics (QM/MM), we study this microsolvation effect on the electronic absorption of the retinylidene Schiff base chromophore of HeR.
嗜盐菌视紫红质(HeR)是一种新型的七螺旋跨膜光活性蛋白,其内部通过共价键连接全视黄醛。视黄醛内部的质子化席夫碱(PSB)氮原子由带负电荷的反离子稳定。众所周知,与反离子之间更强或更弱的静电相互作用会分别导致微生物和动物视紫红质的光谱发生明显的蓝移或红移。然而,在 HeR 中,虽然 Glu107 作为反离子,但该残基的突变与光谱位移并没有直接关系。分子动力学分析表明,一个水簇口袋对席夫碱产生了微溶剂化效应,在不同程度上补偿了天然反离子的取代。我们使用分子动力学和量子力学/分子力学(QM/MM)的组合,研究了这种微溶剂化效应对 HeR 视黄醛席夫碱生色团的电子吸收的影响。