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脊椎动物视紫红质通过快速形成中间态 II 适应暗光。

Vertebrate rhodopsin adaptation to dim light via rapid meta-II intermediate formation.

机构信息

Graduate School of Bioscience and Biotechnology, Tokyo Institute of Technology, Yokohama, Japan.

出版信息

Mol Biol Evol. 2010 Mar;27(3):506-19. doi: 10.1093/molbev/msp252. Epub 2009 Oct 25.

DOI:10.1093/molbev/msp252
PMID:19858068
Abstract

Rhodopsin is a photoreceptive protein present in vertebrate rod photoreceptor cells, which are responsible for scotopic vision. Recent molecular studies have shown that several aquatic vertebrate species have independently acquired rhodopsin containing Asp83Asn, Glu122Gln, and Ala292Ser substitutions, causing a blue shift in the rhodopsin absorption spectra for adaptation to the blue-green photic environment in deep water. Here, we provide new evidence for the evolutionary and functional relevance of the Asp83Asn substitution. Spectroscopic and kinetic analyses of rhodopsins in six cichlid fishes from the East African Great Lakes using charge-coupled device spectrophotometer revealed that the Asp83Asn substitution accelerated the formation of meta-II, a rhodopsin intermediate crucial for activation of the G-protein transducin. Because rapid formation of meta-II likely results in effective transduction of photic signals, it is reasonable to assume that deep-water cichlid species have acquired rhodopsin containing Asn83 to adapt to dim lighting. Remarkably, rhodopsin containing Asn83 has been identified in terrestrial vertebrates such as bats, and these rhodopsin variants also exhibit accelerated meta-II formation. Our results indicated that the Asp83Asn substitution observed in a variety of animal species was acquired independently in many different lineages during vertebrate evolution for adaptation to dimly lit environments.

摘要

视紫红质是脊椎动物杆状光感受器细胞中的一种感光蛋白,负责暗视觉。最近的分子研究表明,一些水生脊椎动物物种独立地获得了含有天冬氨酸 83 号氨基酸突变为天冬酰胺、谷氨酸 122 号氨基酸突变为谷氨酰胺和丙氨酸 292 号氨基酸突变为丝氨酸的视紫红质,导致视紫红质吸收光谱蓝移,以适应深水的蓝绿光环境。在这里,我们提供了天冬氨酸 83 号氨基酸突变为天冬酰胺的替代在进化和功能上的相关性的新证据。使用电荷耦合器件分光光度计对来自东非大裂谷的六种慈鲷鱼的视紫红质进行光谱和动力学分析表明,天冬氨酸 83 号氨基酸突变为天冬酰胺加速了视黄醛中间态 II 的形成,视黄醛中间态 II 对于激活 G 蛋白转导素至关重要。由于中间态 II 的快速形成可能导致有效的光信号转导,因此可以合理地假设深水产的慈鲷物种已经获得了含有天冬酰胺的视紫红质,以适应昏暗的光照条件。值得注意的是,天冬酰胺 83 号氨基酸的视紫红质已在蝙蝠等陆地脊椎动物中被鉴定出来,这些视紫红质变体也表现出中间态 II 形成的加速。我们的结果表明,在许多不同的进化支系中,各种动物物种中观察到的天冬氨酸 83 号氨基酸突变为天冬酰胺是独立获得的,以适应光照不足的环境。

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