Synergistic Effect of Bio-Inspired Nanochannels: Hydrophilic DNA Probes at Inner Wall and Hydrophobic Coating at Outer Surface for Highly Sensitive Detection.
Lingxiao LiuCihui LuoJinhuan ZhangXiao HeYing ShenBing YanYu HuangFan XiaLei JiangPublished in: Small (Weinheim an der Bergstrasse, Germany) (2022)
During the past few decades, bio-inspired nanochannels have been well developed and applied in biosensing, energy transfer, separation, and so on. Here, inspired by the synergistic effect of biological nanopores, biomimetic solid-state nanochannels with hydrophilic DNA probes at the inner wall (DNA@IW Hydrophilic ) and hydrophobic coating at the outer surface (None@OS Hydrophobic ) are designed. To demonstrate their prompted sensing properties, Hg 2+ and its specific probe are selected as target and hydrophilic DNA probes, respectively. Compared with the traditional solid-state nanochannels with hydrophilic probes distributed on both the inner wall and outer surface, the nanochannels with DNA@IW Hydrophilic +None@OS Hydrophobic significantly decrease the limit of detection (LOD) by 10 5 -fold. The obvious improvement of sensitivity (with LOD of 1 nM) is attributed to the synergistic effect: None@OS Hydrophobic results in the nanochannel's effective diameter decrease and DNA@IW Hydrophilic induces a specific sensing target. Meanwhile, nanomolar detection of Hg 2+ in human serum and in vivo fish muscle are achieved. Through molecular dynamics simulation, the synergistic effect can be confirmed by ion fluxes increasement; the relative carbon nanotube increases from 135.64% to 135.84%. This work improves the understanding of nanochannels' synergistic effect and provides a significant insight for nanochannels with improved sensitivity.
Keyphrases
- single molecule
- liquid chromatography
- circulating tumor
- solid state
- living cells
- cell free
- nucleic acid
- sensitive detection
- small molecule
- mass spectrometry
- ionic liquid
- quantum dots
- solid phase extraction
- molecular dynamics simulations
- aqueous solution
- fluorescence imaging
- skeletal muscle
- loop mediated isothermal amplification
- tandem mass spectrometry
- energy transfer
- carbon nanotubes
- photodynamic therapy
- circulating tumor cells
- optic nerve