Literature DB >> 28513170

Phospholipid-Biomimetic Fluorescent Mitochondrial Probe with Ultrahigh Selectivity Enables In Situ and High-Fidelity Tissue Imaging.

Ruoyao Zhang1, Yuming Sun2, Minggang Tian1, Ge Zhang1, Ruiqing Feng1, Xuechen Li1, Lifang Guo1, Xiaoqiang Yu1, Jing Zhi Sun3, Xiuquan He4.   

Abstract

In situ and directly imaging mitochondria in tissues instead of isolated cells can offer more native and accurate information. Particularly, in the clinical diagnose of mitochondrial diseases such as mitochondrial myopathy, it is a routine examination item to directly observe mitochondrial morphology and number in muscle tissues from patients. However, it is still a challenging task because the selectivity of available probes is inadequate for exclusively tissue imaging. Inspired by the chemical structure of amphiphilic phospholipids in mitochondrial inner membrane, we synthesized a phospholipid-biomimetic amphiphilic fluorescent probe (Mito-MOI) by modifying a C18-alkyl chain to the lipophilic side of carbazole-indolenine cation. Thus, the phospholipid-like Mito-MOI locates at mitochondrial inner membrane through electrostatic interaction between its cation and inner membrane negative charge. Simultaneously, the C18-alkyl chain, as the second targeting group, is deeply embedded into the hydrophobic region of inner membrane through hydrophobic interaction. Therefore, the dual targeting groups (cation and C18-alkyl chain) actually endow Mito-MOI with ultrahigh selectivity. As expected, high-resolution microscopic photos showed that Mito-MOI indeed stained mitochondrial inner membrane. Moreover, in situ and high-fidelity tissue imaging has been achieved, and particularly, four kinds of mitochondria and their crystal-like structure in muscle tissues were visualized clearly. Finally, the dynamic process of mitochondrial fission in living cells has been shown. The strategy employing dual targeting groups should have reference value for designing fluorescent probes with ultrahigh selectivity to various intracellular membranous components.

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Year:  2017        PMID: 28513170     DOI: 10.1021/acs.analchem.7b00710

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  1 in total

1.  Precise and long-term tracking of mitochondria in neurons using a bioconjugatable and photostable AIE luminogen.

Authors:  Hojeong Park; Guangle Niu; Chao Wu; Chungwon Park; Haixiang Liu; Hyokeun Park; Ryan T K Kwok; Jing Zhang; Benzhao He; Ben Zhong Tang
Journal:  Chem Sci       Date:  2022-02-11       Impact factor: 9.825

  1 in total

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