化学
点击化学
生物物理学
体内分布
体内
膜
脂肽
磷脂酰丝氨酸
免疫系统
药物输送
脚手架
单体
纳米技术
细胞生物学
体外
组合化学
生物化学
免疫学
材料科学
有机化学
生物
聚合物
细菌
医学
生物技术
磷脂
遗传学
生物医学工程
作者
Lei Sun,Yiyan Yu,Jiayuan Alex Zhang,Wei‐Ting Shen,Kailin Feng,Dean Bai,Zhidong Zhou,Weiwei Gao,Liangfang Zhang
摘要
Cellular nanodiscs (CNDs), assembled from cell membrane fragments and stabilized with scaffold molecules, have emerged as a promising biomimetic platform for drug delivery, countermeasures, and vaccination. However, the exposure of inner membrane components in the current CND constructs, such as phosphatidylserine (PS) can trigger immune recognition and rapid clearance, thereby limiting their therapeutic efficacy. To address this issue, here we report on a unique approach to dimerizing CNDs in a precisely controlled, back-to-back manner by covalently linking two monomeric CNDs via click chemistry, aiming to shield the immunogenic inner membrane components. Compared with monomeric CNDs, the resulting dimeric CNDs showed reduced PS exposure, decreased macrophage uptake, and prolonged circulation in vivo. In mouse models of acute lung injury and systemic inflammation, dimeric CNDs achieved superior cytokine suppression and favorable biodistribution with minimal short-term toxicity. These findings demonstrate that CND dimerization can effectively enhance immune compatibility and greatly improve in vivo performance, advancing the application potential of cell membrane-derived CND technology.
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