聚乙二醇化
聚乙二醇
凝聚
材料科学
细胞内
乙二醇
生物物理学
PEG比率
肽
纳米技术
化学
生物化学
生物
有机化学
财务
经济
作者
Yue Sun,Xi Wu,Kimberle Shen,Ke Guo,Daryl Shern Lim,Wei Leong Chew,Jing Yu,Ali Miserez
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-06-30
卷期号:19 (27): 24724-24735
被引量:2
标识
DOI:10.1021/acsnano.4c16908
摘要
Coacervate microdroplets (CMs), formed through liquid-liquid phase separation (LLPS) of biomacromolecules, hold significant potential for biomedical applications such as intracellular delivery vehicles or enhanced microcatalytic reactors. However, their micrometer size and tendency to coalesce are sometimes deemed unsuitable for those applications. Here, we introduce a strategy to control the size and stability of peptide-based coacervates derived from histidine-rich beak peptides (HBpep) by conjugating the peptides with poly(ethylene glycol) (PEG) and preparing mixtures of PEGylated and non-PEGylated HBpep. PEGylation introduces steric hindrance, stabilizing the coacervates in the nanoscale size range with controlled size distribution depending on the PEGylated-to-non-PEGylated peptide ratio, but initially affects cellular uptake and cargo recruitment of the resultant coacervate nanodroplets (CNs). By incorporating positively charged residues into the peptide sequence, mRNA recruitment and intracellular delivery abilities of CNs are restored. Furthermore, PEG-stabilized CNs exhibit improved cellular uptake and mRNA transfection at the physiological temperature of 37 °C. This approach expands the molecular design of LLPS-based delivery systems with potential for targeted in vivo applications and also highlights opportunities for adapting coacervate-based technologies in catalysis and bioreactors.
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