Reversible Modulation of Cell–Cell Interactions Using Electrochemistry

细胞内 生物正交化学 生物物理学 细胞 组合化学 纳米技术 脂质体 材料科学 化学 生物化学 生物 点击化学
作者
Yalong Qiao,Linyu Wang,Wenwen Xu,Pei Yang,Chuanye Tang,Danjie Song,Pinghua Ling,Feng Gao
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:16 (33): 43341-43349
标识
DOI:10.1021/acsami.4c08619
摘要

Cell–cell interactions play an important role in many biological processes, and various methods have been developed for controlling the cell–cell interactions. However, the effective and rapid control of intercellular interactions remains challenging. Herein, we report a novel, rapid, and effective electrochemical strategy without destroying the basic life processes for the dynamic control of intercellular interactions via liposome fusion. In the proposed system, bioorthogonal chemical groups and hydroquinone (HQ)- and aminooxy (AO)-tethered ligands were modified on the surface of living cells on the basis of the liposome fusion, enabling dynamical intercellular assemblies. Upon application of the corresponding oxidative potential, the "off-state" HQ could be oxidized to the "on-state" quinone (Q), which subsequently reacts with AO-tethered ligands to form stable oxime linkages under physiological conditions. This reaction effectively shortens the distance between cells, promoting the formation of cell clusters. When the corresponding reverse reductive potential is applied, the oxime linkage is cleaved, resulting in the release of the cells. Furthermore, we employed HQ- and AO-tethered ligands to modify mitochondria, inducing mitochondrial aggregation. This noninvasive and label-free strategy allows for the dynamic reversible regulation of intercellular interactions, enhancing our understanding of intercellular communication networks, and has the potential for improving the antitumor therapy efficacy.
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