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用于选择性黄色激光激发细胞成像的基于硼二吡咯亚甲基的近红外半导体聚合物点

BODIPY-based near-infrared semiconducting polymer dot for selective yellow laser-excited cell imaging.

作者信息

Chen Lei, Jiang Yifei, Xu Shihan, Zhang Jicheng, Jung Seung-Ryoung, Yu Jiangbo, Zhang Xuanjun, Chiu Daniel T

机构信息

Department of Biomedical Engineering, Sun Yat-Sen University Shenzhen 518107 China.

Department of Chemistry and Bioengineering, University of Washington Seattle Washington 98195 USA

出版信息

RSC Adv. 2023 May 22;13(22):15121-15125. doi: 10.1039/d3ra01083j. eCollection 2023 May 15.

Abstract

Semiconducting polymer dots (Pdots) with both narrow-band absorption and emission are desirable for multiplexed bioassay applications, but such Pdots with absorption peaks beyond 400 nm are difficult to achieve. Here we describe a donor-energy transfer unit-acceptor (D-ETU-A) design strategy to produce a BODIPY-based Pdot that exhibits simultaneously narrow absorption and emission bands. A green BODIPY (GBDP) unit was employed as the main building block of the polymer backbone, conferring a strong, narrow-band absorption around 551 nm. An NIR720 acceptor provides narrow-band NIR emission. The small Stokes shift of the GBDP donor allows introduction of a benzofurazan-based ETU, resulting in a ternary Pdot with a fluorescence quantum yield of 23.2%, the most efficient yellow-laser excitable Pdot. Due to the strong absorbance band centered at 551 nm and weak absorbance at 405 nm and 488 nm, the Pdot showed high single-particle brightness when excited by a 561 nm (yellow) laser, and selective yellow laser excitation when used to label MCF cells, with much greater brightness when excited at 561 nm than at 405 nm or 488 nm.

摘要

具有窄带吸收和发射特性的半导体聚合物点(Pdots)对于多重生物测定应用是理想的,但这种吸收峰超过400nm的Pdots很难实现。在此,我们描述了一种供体-能量转移单元-受体(D-ETU-A)设计策略,以制备一种基于BODIPY的Pdot,其同时具有窄的吸收和发射带。绿色BODIPY(GBDP)单元被用作聚合物主链的主要构建块,赋予其在551nm左右强烈的窄带吸收。近红外720受体提供窄带近红外发射。GBDP供体的小斯托克斯位移允许引入基于苯并呋喃嗪的ETU,从而产生一种荧光量子产率为23.2%的三元Pdot,这是最有效的黄色激光可激发Pdot。由于以551nm为中心的强吸收带以及在405nm和488nm处的弱吸收,当用561nm(黄色)激光激发时,该Pdot显示出高单粒子亮度,并且在用于标记MCF细胞时具有选择性黄色激光激发,在561nm激发时比在405nm或488nm激发时具有更高的亮度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eaf2/10201341/876c55080b7b/d3ra01083j-f2.jpg

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