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Single-molecule FRET and conformational analysis of beta-arrestin-1 through genetic code expansion and a Se-click reaction.


ABSTRACT: Single-molecule Förster resonance energy transfer (smFRET) is a powerful tool for investigating the dynamic properties of biomacromolecules. However, the success of protein smFRET relies on the precise and efficient labeling of two or more fluorophores on the protein of interest (POI), which has remained highly challenging, particularly for large membrane protein complexes. Here, we demonstrate the site-selective incorporation of a novel unnatural amino acid (2-amino-3-(4-hydroselenophenyl) propanoic acid, SeF) through genetic expansion followed by a Se-click reaction to conjugate the Bodipy593 fluorophore on calmodulin (CaM) and β-arrestin-1 (βarr1). Using this strategy, we monitored the subtle but functionally important conformational change of βarr1 upon activation by the G-protein coupled receptor (GPCR) through smFRET for the first time. Our new method has broad applications for the site-specific labeling and smFRET measurement of membrane protein complexes, and the elucidation of their dynamic properties such as transducer protein selection.

SUBMITTER: Han MJ 

PROVIDER: S-EPMC8261736 | biostudies-literature | 2021 Jul

REPOSITORIES: biostudies-literature

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Single-molecule FRET and conformational analysis of beta-arrestin-1 through genetic code expansion and a Se-click reaction.

Han Ming-Jie MJ   He Qing-Tao QT   Yang Mengyi M   Chen Chao C   Yao Yirong Y   Liu Xiaohong X   Wang Yuchuan Y   Zhu Zhong-Liang ZL   Zhu Kong-Kai KK   Qu Changxiu C   Yang Fan F   Hu Cheng C   Guo Xuzhen X   Zhang Dawei D   Chen Chunlai C   Sun Jin-Peng JP   Wang Jiangyun J  

Chemical science 20210531 26


Single-molecule Förster resonance energy transfer (smFRET) is a powerful tool for investigating the dynamic properties of biomacromolecules. However, the success of protein smFRET relies on the precise and efficient labeling of two or more fluorophores on the protein of interest (POI), which has remained highly challenging, particularly for large membrane protein complexes. Here, we demonstrate the site-selective incorporation of a novel unnatural amino acid (2-amino-3-(4-hydroselenophenyl) prop  ...[more]

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