化学
荧光
生物传感器
自体荧光
蛋白质设计
荧光蛋白
汞菁
纳米技术
生物物理学
蛋白质-蛋白质相互作用
靶蛋白
计算生物学
双分子荧光互补
光学成像
生物化学
蛋白质工程
亮度
临床前影像学
蛋白质结构
体内
生物素化
设计要素和原则
激发波长
荧光寿命成像显微镜
分子生物物理学
分子探针
光漂白
分子成像
生物结合
共价键
合理设计
近红外光谱
作者
Yulai Liu,Bernardo A. Arús,Kanuj Mishra,Taolin Wang,Kun Zhang,Michael Luciano,Venu G. Bandi,Akaash Kumar,Ziyu Guo,Yun Guan,Matthew J. Bick,Miaomiao Xu,Jakob Lingg,Jessica Bae,Alex Kang,Stacey Gerben,Asim K. Bera,Joshua C. Vaughan,James D. Manton,Emmanuel Derivery
摘要
Protein-based fluorescence imaging is a powerful modality for visualizing diverse biological processes. Biological imaging in the near-infrared (NIR, 800-1000 nm) and shortwave infrared (SWIR, 1000-2000 nm) ranges confers a number of photophysical advantages, but remains a challenge in practice due to the dearth of suitable protein probes in these optical windows. To address this limitation, we sought to develop a general approach integrating computational protein design with organic synthesis for creating long-wavelength fluorescence-activating proteins from scratch. We used this approach to de novo design proteins that specifically bind to synthetic merocyanine dyes, forming Schiff base covalent linkages, which when protonated activate fluorescence with large redshifts in both excitation and emission wavelengths. We describe a designed far-red fluorescence-activating protein, MC7BP34, with a brightness greater than that of existing fluorescent proteins in a similar wavelength range, and an NIR design MC9BP81 with excitation at 892 nm and emission extending into the SWIR range with higher contrast and imaging sensitivity in vivo than the previously developed iRFP720 (excitation 672 nm) owing to the reduced tissue autofluorescence at longer wavelengths. Our results are a substantial step toward genetically encodable probes in the SWIR region, and our approach lays the groundwork for the development of NIR biosensors for specific biological applications.
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