Characterization and Engineering of a Blue-Sensitive, Gi/o-Biased, and Bistable Ciliary Opsin from a Fan Worm

IF 3 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Sachiko Fukuzawa, Tomoki Kawaguchi, Takushi Shimomura, Yoshihiro Kubo and Hisao Tsukamoto*, 
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Abstract

Ciliary opsins (c-opsin) have been identified not only in vertebrates but also in invertebrates. An invertebrate ciliary opsin was recently identified in the fan worm Acromegalomma interruptum (formerly named Megalomma interrupta); however, its spectral and signaling characteristics are unknown. In the present study, we characterized the spectral properties and light-induced cellular signaling properties of opsin (Acromegalomma invertebrate ciliary opsin (AcrInvC-opsin)). AcrInvC-opsin showed an absorption maximum at 464 nm, and upon blue light absorption, the spectrum was red-shifted by approximately 50 nm. The two states are interconvertible by illumination with blue and orange light. Blue light illumination of AcrInvC-opsin caused specific coupling with Gi, sustained Gi dissociation, decreased intracellular cAMP levels, and the activation of GIRK channels. The cellular responses by the activated opsin were partially terminated by orange light illumination. These light-dependent responses indicate that InvC-opsin is a typical bistable pigment wherein the resting and activated states can be interconverted by visible light illumination. We also attempted to modulate the spectral and functional properties of AcrInvC-opsin by using site-directed mutagenesis. Substitution of Ser-94 with Ala caused little spectral shift in the resting state but a further red shift of ∼10 nm in the activated state, indicating that the absorption spectra of the two states were tuned differently. In contrast, the substitution of S94A did not significantly affect the light-dependent signaling properties of AcrInvC-opsin. Because AcrInvC-opsin is a blue-sensitive, Gi/o-biased, and bistable pigment, it has the potential to serve as an optical control tool to specifically and reversibly regulate Gi/o-dependent signaling pathways by visible light.

Abstract Image

扇形蠕虫蓝敏、Gi/o偏置和双稳态纤毛视蛋白的表征和工程
睫状体视蛋白(c-opsin)不仅存在于脊椎动物中,也存在于无脊椎动物中。最近在扇形蠕虫中发现了一种无脊椎动物纤毛视蛋白;然而,它的光谱和信号特性是未知的。在本研究中,我们表征了视蛋白(acromeggalomma无脊椎睫状体视蛋白(AcrInvC-opsin))的光谱特性和光诱导细胞信号传导特性。AcrInvC-opsin在464 nm处最大吸收,在蓝光吸收时,光谱红移约50 nm。这两种状态可以通过蓝色和橙色光的照明来相互转换。蓝光照射AcrInvC-opsin导致与Gi的特异性偶联,持续的Gi解离,细胞内cAMP水平降低,以及GIRK通道的激活。被激活的视蛋白的细胞反应在橙色光照射下部分终止。这些光依赖性反应表明invc视蛋白是一种典型的双稳态色素,其静息状态和激活状态可以在可见光照射下相互转换。我们还尝试通过位点定向诱变来调节AcrInvC-opsin的光谱和功能特性。用Ala取代Ser-94在静息状态下的光谱位移很小,但在激活状态下又红移了约10 nm,这表明两种状态的吸收光谱调谐不同。相比之下,S94A的取代对AcrInvC-opsin的光依赖性信号特性没有显著影响。由于AcrInvC-opsin是一种蓝敏感、Gi/o偏倚和双稳态的色素,它有可能作为一种光学控制工具,通过可见光特异性和可逆地调节Gi/o依赖的信号通路。
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来源期刊
Biochemistry Biochemistry
Biochemistry Biochemistry 生物-生化与分子生物学
CiteScore
5.50
自引率
3.40%
发文量
336
审稿时长
1-2 weeks
期刊介绍: Biochemistry provides an international forum for publishing exceptional, rigorous, high-impact research across all of biological chemistry. This broad scope includes studies on the chemical, physical, mechanistic, and/or structural basis of biological or cell function, and encompasses the fields of chemical biology, synthetic biology, disease biology, cell biology, nucleic acid biology, neuroscience, structural biology, and biophysics. In addition to traditional Research Articles, Biochemistry also publishes Communications, Viewpoints, and Perspectives, as well as From the Bench articles that report new methods of particular interest to the biological chemistry community.
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