Transportation of AIE-visualized nanoliposomes is dominated by the protein corona
Author(s) -
Yifeng Wang,
Chunqiu Zhang,
Keni Yang,
Yufei Wang,
Shaobo Shan,
Yan Yan,
Kenneth A. Dawson,
Chen Wang,
XingJie Liang
Publication year - 2021
Publication title -
national science review
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.433
H-Index - 54
eISSN - 2095-5138
pISSN - 2053-714X
DOI - 10.1093/nsr/nwab068
Subject(s) - liposome , nanocarriers , endocytosis , cationic liposome , corona (planetary geology) , biophysics , nanotechnology , chemistry , lipid bilayer fusion , drug delivery , fusion protein , microbiology and biotechnology , endosome , intracellular , cell , materials science , biology , transfection , membrane , biochemistry , gene , venus , astrobiology , recombinant dna
Liposomes, especially cationic liposomes, are the most common and well-investigated nanocarriers for biomedical applications, such as drug and gene delivery. Like other types of nanomaterials, once liposomes are incubated in a biological milieu, their surface can be immediately cloaked by biological components to form a protein corona, which confers a new ‘biological identity’ and modulates downstream interactions with cells. However, it remains unclear how the protein corona affects the transportation mechanism after liposomes interact with cells. Here, we employed home-made aggregation-induced-emission-visualized nanoliposomes TR4@Lipo as a model to investigate transportation with or without the protein corona by optical imaging techniques. The results show that the protein corona can change the cellular transportation mechanism of TR4@Lipo from energy-independent membrane fusion to energy-dependent endocytosis. The protein corona also modulates the intracellular distribution of loaded cargoes. This knowledge furthers our understanding of bio-nano interactions and is important for the efficient use of cationic liposomes.
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