金属有机骨架作为光致发光生物传感平台:机制与应用。
Metal-organic frameworks as photoluminescent biosensing platforms: mechanisms and applications.
机构信息
College of Chemistry and Materials Science, and Guangdong Provincial Key Laboratory of Functional Supramolecular Coordination Materials and Applications, Jinan University, Guangzhou 510632, P. R. China.
出版信息
Chem Soc Rev. 2021 Apr 7;50(7):4484-4513. doi: 10.1039/d0cs00955e. Epub 2021 Feb 17.
Biosensing is of vital importance for advancing public health through monitoring abnormalities in biological systems, which may be potentially associated with certain body dysfunctions. A wide range of luminescent materials have been actively pursued in the fabrication of biosensing platforms, particularly ones that can function in complex biological fluids with high selectivity and sensitivity. Recently, metal-organic frameworks (MOFs) have experienced rapid growth due to their tunable structures, large surface area, and being prone to surface engineering, etc. These virtues endow MOF materials with immense feasibility in the target-oriented construction of sensing platforms for specific applications. In this review, we extrapolated six sensing mechanisms for MOF-based photoluminescent biosensing platforms, including photoelectron transfer (PET), resonance energy transfer (RET), competition absorption (CA), structural transformation (ST), chemical conversion (CC), and quencher detachment (QD). Accordingly, recent progress of MOF-based materials in photoluminescence sensing of biomolecules, biomarkers, drugs, and toxins was highlighted. The objective of this review is to provide readers with an extensive overview of the design and synthesis of MOF materials for photoluminescence biosensing. The challenges and outlook are briefly discussed at the end.
生物传感对于通过监测生物系统中的异常情况来促进公共健康至关重要,这些异常情况可能与某些身体功能障碍有关。在生物传感平台的制造中,广泛研究了各种发光材料,特别是那些能够在具有高选择性和灵敏度的复杂生物流体中发挥作用的材料。最近,由于其可调结构、大表面积和易于表面工程等优点,金属有机骨架(MOFs)得到了快速发展。这些优点使 MOF 材料在针对特定应用的目标导向传感平台的构建中具有巨大的可行性。在这篇综述中,我们推导出了基于 MOF 的光致发光生物传感平台的六种传感机制,包括光电电子转移(PET)、共振能量转移(RET)、竞争吸收(CA)、结构转变(ST)、化学转化(CC)和猝灭剂脱离(QD)。相应地,强调了基于 MOF 的材料在生物分子、生物标志物、药物和毒素的光致发光传感方面的最新进展。本文的目的是为读者提供 MOF 材料用于光致发光生物传感的设计和合成的广泛概述。最后简要讨论了挑战和展望。