College of Chemistry, Zhengzhou University, Zhengzhou 450001, China.
Chem Soc Rev. 2020 Apr 21;49(8):2481-2503. doi: 10.1039/d0cs00093k. Epub 2020 Mar 16.
Chirality is ubiquitous in nature and plays mysterious and essential roles in maintaining key biological and physiological processes. As biological systems display high selectivity for chiral biomolecules, chiral bio-nanoscience has become a popular research field during the last decade. Homochirality, as an essential attribute of natural compounds (l-amino acids, d-sugars, etc.), inspired the emergence of synthetic chiral nanomaterials, which in turn impacted their biological functions and fates. This review is a comprehensive overview of the interactions between chiral inorganic nanostructures and biosystems. We start with the recent progress in biocompatible chiral nanomaterials and focus on stereospecific biological interactions ranging from enantioselective reactions in applications such as sensing and catalysis to chirality-dependent controllable manipulation of cell behaviours and finally to enantiopure nanoplatforms for improved disease therapy. We also discuss the current challenges and future potential of these chiral nanotechnologies in biomedicine and bioengineering, provide strategies to overcome these barriers and offer a future perspective.
手性在自然界中无处不在,在维持关键的生物和生理过程中发挥着神秘而重要的作用。由于生物系统对手性生物分子表现出高度的选择性,手性生物纳米科学在过去十年中成为了一个热门的研究领域。手性是天然化合物(l-氨基酸、d-糖等)的一个基本属性,它激发了合成手性纳米材料的出现,而这反过来又影响了它们的生物功能和命运。
这篇综述全面概述了手性无机纳米结构与生物系统之间的相互作用。我们首先介绍了生物相容性手性纳米材料的最新进展,并重点介绍了从手性依赖的可控操纵细胞行为到用于改善疾病治疗的对映纯纳米平台等应用中,在传感和催化等应用中的对映选择性反应等方面的立体特异性生物相互作用。我们还讨论了这些手性纳米技术在生物医学和生物工程中的当前挑战和未来潜力,提供了克服这些障碍的策略,并对未来进行了展望。