生物传感器
吸附
适体
DNA
纳米材料
堆积
化学
碱基
组合化学
纳米技术
材料科学
生物化学
有机化学
遗传学
生物
作者
Hongyan Jiang,Qing Xia,Jintao Zheng,Jianlan Bu,Rui Li,Zehong Cai,Kai Ling
标识
DOI:10.1016/j.bios.2022.114622
摘要
To develop various biosensors, several 2D nanomaterials adsorb DNA probes (aptamers) via π–π stacking interactions. However, interference from DNA displacement by external non-targeted ligands has precluded their practical applications for specific detection and imaging at high protein concentrations. Metal coordination is an attractive strategy for biomolecular crosslinking and functional molecular self-assembly. Herein, a robust 2D biosensor nanoplatform was developed to enhance DNA adsorption and affinity using Mn2+-modified black phosphorus nanosheets ([email protected]2+) via metal coordination. The Mn2+ can simultaneously coordinate with the lone pair electrons (π bonds) of the BPNS and nucleotide bases to provide binding sites for DNA nucleobases on the BPNS surface, which greatly enhances the stability of the inner BPNS and improves DNA adsorption and affinity. The DNA adsorption mechanism of [email protected]2+ was also characterized, and is extensively discussed. Without any further modification, this [email protected]2+/DNA biosensor specifically detected single-stranded DNA (linear range: 10–200 nM, detection limit: 5.76 nM) and thrombin (linear range: 20–180 nM, detection limit: 2.39 nM) in 100 nM bovine serum albumin solution. The nonspecific ligands in the environment did not affect the detection performance of the robust biosensor. In addition, the expression levels of microRNA-21 can be imaged and analyzed in living cells using this biosensor, which is consistent with the results of the polymerase chain reaction. This study highlights the potential of metal coordination in surface modification and provides new opportunities for biomedical applications of 2D nanomaterials with superior DNA-adsorption capacity, facilitating the development of biosensor design and nucleic acid/drug delivery.
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