脱氧核酶
滚动圆复制
辣根过氧化物酶
生物物理学
染色
DNA
膜
纳米技术
脚手架
化学
适体
材料科学
分子生物学
生物化学
生物
生物医学工程
酶
医学
DNA复制
遗传学
作者
Zhenqiang Wang,Xiyue Xie,Kaifei Jin,Daqing Xia,Jing Zhu,Jixi Zhang
标识
DOI:10.1002/adhm.202303398
摘要
Abstract In situ staining of protein dimerization on cell membrane has an important significance in accurate diagnosis during perioperative period, yet facile integration of specific recognition function and local signal conversion/amplification abilities on membrane surface remains a great challenge. Herein, a two‐stage catalytic strategy is developed by installing DNA nanomachines and employing. Specifically, dual‐aptamer‐assisted DNA scaffold perform a “bispecific recognition‐then‐computing” operation and the output signal initiate a membrane‐anchored biocatalysis for self‐assembly of DNA catalytic converters, that is, G‐quadruplex nanowire/hemin DNAzyme. Then, localized‐deposition of chromogenic polydopamine is chemically catalyzed by horseradish peroxidase‐mimicking DNAzyme and guided by supramolecular interactions between conjugate rigid plane of G‐tetrad and polydopamine oligomer. The catalytic products exhibit nanofiber morphology with a diameter of 80–120 nm and a length of 1–10 µm, and one‐to‐one localize on DNA scaffold for amplified and specific staining of protein dimers. The bispecific staining leads to a higher (≈3.4‐fold) signal intensity than traditional immunohistochemistry, which is beneficial for direct visualization. Moreover, an efficient discrimination ability of the bispecific staining strategy is observed in co‐culture model staining. This study provides a novel catalytic method for controlling deposition of chromogens and paves a new avenue to sensitively stain of protein‐protein interactions in disease diagnosis.
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