生物正交化学
四嗪
荧光团
点击化学
遗传密码
蛋白质标签
清脆的
部分
化学
荧光显微镜
荧光
计算生物学
超分辨显微术
生物化学
生物物理学
生物
组合化学
氨基酸
融合蛋白
立体化学
有机化学
物理
基因
重组DNA
量子力学
作者
Aleksandra Arsic,Cathleen Hagemann,Stajković N,Timm Schubert,Ivana Nikić
标识
DOI:10.1101/2021.01.14.426692
摘要
Abstract Modern light microscopy, including super-resolution techniques, brought about a demand for small labeling tags that bring the fluorophore closer to the target. This challenge can be addressed by labeling unnatural amino acids (UAAs) with click chemistry. UAAs are site-specifically incorporated into a protein of interest by genetic code expansion. If the UAA carries a strained alkene or alkyne moiety it can be conjugated to a tetrazine-bearing fluorophore via a strain-promoted inverse-electron-demand Diels–Alder cycloaddition (SPIEDAC), a variant of bioorthogonal click chemistry. The minimal size of the incorporated tag and the possibility to couple the fluorophores directly to the protein of interest with single-residue precision make SPIEDAC live-cell labeling unique. However, until now, this type of labeling has not been used in complex, non-dividing cells, such as neurons. Using neurofilament light chain as a target protein, we established SPIEDAC labeling in living primary neurons and applied it for fixed-cell, live-cell, dual-color pulse—chase and super-resolution microscopy. We also show that SPIEDAC labeling can be combined with CRISPR/Cas9 genome engineering for tagging endogenous NFL. Due to its versatile nature and compatibility with advanced microscopy techniques, we anticipate that SPIEDAC labeling will contribute to novel discoveries in neurobiology.
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