Wang Lei, Yang Pei-Pei, Zhao Xiao-Xiao, Wang Hao
CAS Center for Excellence in Nanoscience, CAS Key Laboratory for Biological Effects of Nanomaterials and Nanosafety, National Center for Nanoscience and Technology, No. 11 Beiyitiao, Zhongguancun, Haidian District, Beijing, 100190, China.
Nanoscale. 2016 Feb 7;8(5):2488-509. doi: 10.1039/c5nr07437a.
In recent years, extensive endeavors have been paid to construct functional self-assembled nanomaterials for various applications such as catalysis, separation, energy and biomedicines. To date, different strategies have been developed for preparing nanomaterials with diversified structures and functionalities via fine tuning of self-assembled building blocks. In terms of biomedical applications, bioimaging technologies are urgently calling for high-efficient probes/contrast agents for high-performance bioimaging. Photoacoustic (PA) imaging is an emerging whole-body imaging modality offering high spatial resolution, deep penetration and high contrast in vivo. The self-assembled nanomaterials show high stability in vivo, specific tolerance to sterilization and prolonged half-life stability and desirable targeting properties, which is a kind of promising PA contrast agents for biomedical imaging. Herein, we focus on summarizing recent advances in smart self-assembled nanomaterials with NIR absorption as PA contrast agents for biomedical imaging. According to the preparation strategy of the contrast agents, the self-assembled nanomaterials are categorized into two groups, i.e., the ex situ and in situ self-assembled nanomaterials. The driving forces, assembly modes and regulation of PA properties of self-assembled nanomaterials and their applications for long-term imaging, enzyme activity detection and aggregation-induced retention (AIR) effect for diagnosis and therapy are emphasized. Finally, we conclude with an outlook towards future developments of self-assembled nanomaterials for PA imaging.
近年来,人们付出了巨大努力来构建功能性自组装纳米材料,用于催化、分离、能源和生物医学等各种应用。迄今为止,已开发出不同策略,通过对自组装结构单元进行微调来制备具有多样化结构和功能的纳米材料。就生物医学应用而言,生物成像技术迫切需要高效的探针/造影剂以实现高性能生物成像。光声(PA)成像是一种新兴的全身成像模式,在体内具有高空间分辨率、深穿透性和高对比度。自组装纳米材料在体内显示出高稳定性、对灭菌的特异性耐受性、延长的半衰期稳定性以及理想的靶向特性,是一种用于生物医学成像的有前景的PA造影剂。在此,我们重点总结以近红外吸收作为生物医学成像PA造影剂的智能自组装纳米材料的最新进展。根据造影剂的制备策略,自组装纳米材料分为两类,即非原位和原位自组装纳米材料。强调了自组装纳米材料的驱动力、组装模式和PA性质的调控及其在长期成像、酶活性检测以及用于诊断和治疗的聚集诱导滞留(AIR)效应方面的应用。最后,我们对PA成像自组装纳米材料的未来发展进行了展望。