Idiago-López Javier, Moreno-Antolín Eduardo, de la Fuente Jesús M, Fratila Raluca M
Instituto de Nanociencia y Materiales de Aragón (INMA), CSIC-Universidad de Zaragoza Zaragoza 50009 Spain
Centro de Investigación Biomédica en Red de Bioingeniería, Biomateriales y Nanomedicina (CIBER-BBN) Spain.
Nanoscale Adv. 2021 Jan 21;3(5):1261-1292. doi: 10.1039/d0na00873g. eCollection 2021 Mar 9.
Bioorthogonal chemistry comprises chemical reactions that can take place inside complex biological environments, providing outstanding tools for the investigation and elucidation of biological processes. Its use in combination with nanotechnology can lead to further developments in diverse areas of biomedicine, such as molecular bioimaging, targeted delivery, drug activation, study of cell-nanomaterial interactions, biosensing, Here, we summarise the recent efforts to bring together the unique properties of nanoparticles and the remarkable features of bioorthogonal reactions to create a toolbox of new or improved biomedical applications. We show how, by joining forces, bioorthogonal chemistry and nanotechnology can overcome some of the key current limitations in the field of nanomedicine, providing better, faster and more sensitive nanoparticle-based bioimaging and biosensing techniques, as well as therapeutic nanoplatforms with superior efficacy.
生物正交化学包括能够在复杂生物环境中发生的化学反应,为研究和阐明生物过程提供了出色的工具。将其与纳米技术结合使用可在生物医学的各个领域带来进一步的发展,例如分子生物成像、靶向递送、药物激活、细胞 - 纳米材料相互作用研究、生物传感。在此,我们总结了近期为结合纳米颗粒的独特性质和生物正交反应的显著特征以创建新的或改进的生物医学应用工具箱所做的努力。我们展示了通过携手合作,生物正交化学和纳米技术如何能够克服纳米医学领域当前的一些关键限制,提供更好、更快且更灵敏的基于纳米颗粒的生物成像和生物传感技术,以及具有卓越疗效的治疗性纳米平台。