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紧凑型近红外荧光团的精准分子工程

Precision Molecular Engineering of Compact Near-Infrared Fluorophores.

作者信息

Huang Rongrong, Qiao Qinglong, Seah Deborah, Shen Tianruo, Wu Xia, de Moliner Fabio, Wang Chao, Ding Nannan, Chi Weijie, Sun Huaming, Vendrell Marc, Xu Zhaochao, Fang Yu, Liu Xiaogang

机构信息

Fluorescence Research Group, Singapore University of Technology and Design, 8 Somapah Road, Singapore 487372, Singapore.

Key Laboratory of Applied Surface and Colloid Chemistry (Ministry of Education), School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an, Shaanxi 710119, P. R. China.

出版信息

J Am Chem Soc. 2025 Feb 12;147(6):5258-5268. doi: 10.1021/jacs.4c16087. Epub 2025 Feb 4.

Abstract

Organic fluorophores with near-infrared (NIR) emission and reduced molecular size are crucial for advancing bioimaging and biosensing technologies. Traditional methods, such as conjugation expansion and heteroatom engineering, often fail to reduce fluorophore size without sacrificing NIR emission properties. Addressing this challenge, our study utilized quantum chemical calculations and structure-property relationship analysis to establish an iterative design approach and enable precision engineering for compact, single-benzene-based NIR fluorophores. These newly developed fluorophores exhibit emissions up to 759 nm and maintain molecular weights as low as 192 g/mol, approximately 50% of that of Cy7. Additionally, they display unique environmental sensitivity─nonemissive in aqueous solutions but highly emissive in lipid environments. This property significantly enhances their utility in wash-free imaging of live cells. Our findings mark a substantial breakthrough in fluorophore engineering, paving the way for more efficient and adaptable imaging methodologies.

摘要

具有近红外(NIR)发射且分子尺寸减小的有机荧光团对于推进生物成像和生物传感技术至关重要。传统方法,如共轭扩展和杂原子工程,在不牺牲近红外发射特性的情况下,往往无法减小荧光团的尺寸。为应对这一挑战,我们的研究利用量子化学计算和结构-性质关系分析,建立了一种迭代设计方法,并实现了对紧凑的单苯基亚近红外荧光团的精确工程设计。这些新开发的荧光团发射波长可达759 nm,分子量低至192 g/mol,约为Cy7的50%。此外,它们表现出独特的环境敏感性——在水溶液中不发光,但在脂质环境中高度发光。这一特性显著提高了它们在活细胞免洗成像中的实用性。我们的研究结果标志着荧光团工程取得了重大突破,为更高效、适应性更强的成像方法铺平了道路。

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