Institut des Sciences Moléculaires, CNRS, Univ. Bordeaux, Bordeaux INP, UMR 5255, 351 Cours de la Libération, Talence, 33405, France.
LP2N, Institut d'Optique & CNRS, Univ. Bordeaux, UMR 5298, Rue François Mitterrand, Talence, 33400, France.
Adv Mater. 2021 Jun;33(22):e2006644. doi: 10.1002/adma.202006644. Epub 2021 Apr 22.
Fluorescent nanoparticles dedicated to bioimaging applications should possess specific properties that have to be maintained in the aqueous, reactive, and crowded biological environment. These include chemical and photostability, small size (on the scale of subcellular structures), biocompatibility, high brightness, and good solubility. The latter is a major challenge for inorganic nanoparticles, which require surface coating to be made water soluble. Molecular-based fluorescent organic nanoparticles (FONs) may prove a promising, spontaneously water-soluble alternative, whose bottom-up design allows for the fine-tuning of individual properties. Here, the critical challenge of controlling the interaction of nanoparticles with cellular membranes is addressed. This is a report on bright, size-tunable, red-emitting, naturally stealthy FONs that do not require the use of antifouling agents to impede interactions with cellular membranes. As a proof of concept, single FONs diffusing up to 150 µm deep in brain tissue are imaged and tracked.
专用于生物成像应用的荧光纳米粒子应具有在水相、反应性和拥挤的生物环境中必须保持的特定性质。这些性质包括化学和光稳定性、小尺寸(亚细胞结构的规模)、生物相容性、高亮度和良好的溶解性。后者是无机纳米粒子的一个主要挑战,需要表面涂层才能使其水溶性。基于分子的荧光有机纳米粒子(FON)可能是一种很有前途的、自发水溶性的替代品,其自下而上的设计允许对单个性质进行微调。在这里,解决了控制纳米粒子与细胞膜相互作用的关键挑战。这是一篇关于亮、可调尺寸、红色发射、天然隐形的 FON 的报告,这些 FON 不需要使用防污剂来阻止与细胞膜的相互作用。作为概念验证,在脑组织中扩散高达 150µm 深的单个 FON 被成像和跟踪。