光遗传学
稳健性(进化)
生物物理学
胆绿素
蛋白质工程
光敏色素
DNA结合蛋白
血浆蛋白结合
转录因子
抄写(语言学)
化学
蛋白质设计
合成生物学
细胞生物学
生物
HEK 293细胞
视蛋白
功能(生物学)
结合位点
蛋白质-蛋白质相互作用
计算机科学
物理
绑定域
蛋白质结构域
计算生物学
DNA
纳米技术
蛋白质结构
结合蛋白
荧光蛋白
红灯
作者
Giang N. T. Le,Lam Pham,Bo Xue,Maruti Uppalapati,G. Andrew Woolley
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-11-30
标识
DOI:10.1101/2025.11.29.691301
摘要
Abstract The robustness and broad applicability of an optogenetic tool depends heavily on the properties of the underlying photoreceptor protein and its cognate binding partner - the light responsive ‘core’. Current red light optogenetic systems for use in mammalian cells all rely on phytochrome based photoreceptors. These are large (70 kDa) proteins that act as dimers, thereby enforce dimerization on attached proteins. Naturally occurring or engineered binding partners can function effectively in certain cases, but large size, complex mode of interaction, background binding, relatively weak affinity and/or low fold changes between on and off states are significant limitations. Using structure-based design and directed evolution we developed a small (17 kDa) monomeric bilverdin binding photoreceptor FenixS, and a highly selective, high-affinity binder, Ash1 (6 kDa). Negligible off-state binding and a >1200-fold increase in binding affinity upon 700 nm illumination result in a high performance, ultra-low background, light responsive core for a diverse range of applications. An optogenetic tool for red light activation of transcription in mammalian cells based on the FenixS-Ash1 core exhibits robust performance without the need for biliverdin supplementation.
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