Yashchenok Alexey M, Jose Jithin, Trochet Philippe, Sukhorukov Gleb B, Gorin Dmitry A
Remote Controlled Theranostic Systems Lab, Institute of Nanostructures and Biosystem, Saratov State University, Saratov, Russia.
FUJIFILM VisualSonics, Amsterdam, The Netherlands.
J Biophotonics. 2016 Aug;9(8):792-9. doi: 10.1002/jbio.201500293. Epub 2016 Feb 23.
The polyelectrolyte microcapsules that can be accurate either visualized in biological media or in tissue would enhance their further in vivo application both as a carrier of active payloads and as a specific sensor. The immobilization of active species, for instance fluorescent dyes, quantum dots, metal nanoparticles, in polymeric shell enables visualization of capsules by optical imaging techniques in aqueous solution. However, for visualization of capsules in complex media an instrument with high contrast modality requires. Herein, we show for the first time photoacoustic imaging (PAI) of multifunctional microcapsules in water and in blood. The microcapsules exhibit greater photoacoustic intensity compare to microparticles with the same composition of polymeric shell presumably their higher thermal expansion. Photoacoustic intensity form microcapsules dispersed in blood displays an enhancement (2-fold) of signal compare to blood. Photoacoustic imaging of microcapsules might contribute to non-invasive carrier visualization and further their in vivo distribution.
能够在生物介质或组织中准确可视化的聚电解质微胶囊,将增强其作为活性负载载体和特定传感器在体内的进一步应用。例如,将荧光染料、量子点、金属纳米颗粒等活性物质固定在聚合物壳中,可通过光学成像技术在水溶液中实现微胶囊的可视化。然而,要在复杂介质中实现微胶囊的可视化,需要具有高对比度成像模式的仪器。在此,我们首次展示了多功能微胶囊在水和血液中的光声成像(PAI)。与具有相同聚合物壳组成的微粒相比,微胶囊表现出更高的光声强度,这可能是由于它们具有更高的热膨胀率。分散在血液中的微胶囊的光声强度与血液相比,信号增强了(2倍)。微胶囊的光声成像可能有助于非侵入性地观察载体及其在体内的分布。