Biomolecule-mediated chiral nanostructures: a review of chiral mechanism and application

生物分子 纳米材料 纳米技术 生物传感器 纳米结构 手性(物理) 化学 极化率 材料科学 物理 分子 有机化学 手征对称破缺 量子力学 Nambu–Jona Lasinio模型 夸克
作者
Wen Yue,Mengqi He,Yong-Liang Yu
出处
期刊:Advances in Colloid and Interface Science [Elsevier BV]
卷期号:289: 102376-102376 被引量:30
标识
DOI:10.1016/j.cis.2021.102376
摘要

The chirality of biomolecules is vital importance in biosensing and biomedicine. However, most biomolecules only have a chiral response in the ultraviolet region, and the corresponding chiral signal is weak. In recent years, inorganic nanomaterials can adjust chiral light signals to the visible and near-infrared regions and enhance optical signals due to their high polarizability and adjustable morphology-dependent optical properties. Nonetheless, inorganic nanomaterials usually lack specificity to identify targets, and have strong toxicity when applied in organisms. The combination of chiral biomolecules and inorganic nanomaterials offers a way to solve these problems. Because chiral biomolecules, such as DNA, amino acids, and peptides, have programmability, specific recognition, excellent biocompatibility, and strong binding force to inorganic nanomaterials. Biomolecule-mediated chiral nanostructures show specific recognition of targets, extremely low biological toxicity and adjustable optical activity by regulating, assembling and inducing inorganic nanomaterials. Therefore, biomolecule-mediated chiral nanostructures have received widespread attention, including chiral biosensing, enantiomers recognition and separation, biological diagnosis and treatment, chiral catalysis, and circular polarization of chiral metamaterials. This review mainly introduces the three chiral mechanisms of biomolecule-mediated chiral nanostructures, lists some important applications at present, and discusses the development prospects of biomolecule-mediated chiral nanostructures.
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