酪氨酸
生物化学
绿色荧光蛋白
代谢工程
蛋白质工程
生物催化
化学
合成生物学
遗传密码
酶
生物合成
氨基酸
发色团
融合蛋白
荧光
氧化还原
组合化学
合理设计
定向进化
转移RNA
重组DNA
蛋白质生物合成
计算生物学
残留物(化学)
蛋白质标签
荧光蛋白
酚类
生物
黄色荧光蛋白
苯丙氨酸
靶蛋白
作者
Sandhya Jaiswal,Surendar R. Jakka,Sachin Kumar,Kusaji Pundlik Raul,Rahul Kumar,Govindasamy Mugesh
标识
DOI:10.1002/anie.202520166
摘要
Expanding the genetic code with unnatural amino acids (UAAs) offers powerful opportunities to engineer proteins with novel redox and catalytic functions, but is often limited by the need for multistep UAA synthesis and inefficient cellular uptake. Here, we report an integrated biosynthetic-genetic incorporation strategy for chalcogen-containing proteins from the respective phenols. Structure-guided engineering of tyrosine phenol lyase (TPL) enabled the enzymatic production of 3-methoxy-, 3-methylthio-, and 3-methylseleno-L-tyrosine (MeSeY) directly in living cells. Using evolved orthogonal aminoacyl-tRNA synthetases, these analogues were site-specifically incorporated into green fluorescent protein (GFP), as confirmed by fluorescence assays, spectroscopy, and mass spectrometry. We further established a one-pot in vivo system that unifies analogue biosynthesis with translation, reducing precursor requirements and cellular toxicity. This work introduces selenium as a genetically encoded handle for protein engineering and establishes a scalable strategy that couples biocatalysis with genetic code expansion to access redox-active designer proteins. Importantly, installation of MeSeY at the GFP chromophore residue Tyr66 provides redox-responsive fluorescence. In a circularly permuted GFP (cpGFP) scaffold, improved chromophore accessibility enables reversible redox switching under H2O2/thiol cycling.
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