化学
荧光
自噬
分辨率(逻辑)
背景(考古学)
粒体自噬
细胞生物学
生物物理学
纳米技术
计算生物学
生物化学
光学
人工智能
生物
物理
古生物学
细胞凋亡
材料科学
计算机科学
作者
Huizi Man,Lin Zhou,Guanghao Zhu,Ying Zheng,Zhiwei Ye,Zhenlong Huang,Xinru Teng,Chun‐Zhi Ai,Guang‐Bo Ge,Yi Xiao
出处
期刊:Analytical Chemistry
[American Chemical Society]
日期:2022-10-20
卷期号:94 (43): 15057-15066
被引量:10
标识
DOI:10.1021/acs.analchem.2c03125
摘要
Autophagy is a core recycling process for homeostasis, with its dysfunction associated with tumorigenesis and various diseases. Yet, its subtle intracellular details are covered due to the limited resolution of conventional microscopies. The major challenge for modern super-resolution microscopy deployment is the lack of a practical labeling system, which could provide robust fluorescence with fidelity in the context of the dynamic autophagy microenvironment. Herein, a representative autophagy marker LC3 protein is selected to develop two hybrid self-labeling systems with tetramethylrhodamine (TMR) fluorophores through SNAP/Halo-tag technologies. A systematic investigation indicated that the match of the LC3-Halo and TMR ligand remarkably outperforms that of LC3-SNAP, as the former Halo system exhibited more robust single-molecule brightness (440 vs 247), total photon numbers (45600 vs 13500), and dwell time of the initial bright state (0.82 vs 0.40 s) than the latter. With the aid of this desirable Halo system, for the first time, live-cell ferritinophagy is monitored with a spatial resolution of ∼50 nm, which disclosed reduced sizes of autophagosomes (∼650 nm, ferritinophagy) than those in nonselective (∼840 nm, mammalian target of rapamycin (mTOR)) and selective autophagy (∼900 nm, mitophagy).
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