Author:
Azeem M. Mustafa,Shafa Muhammad,Aamir Muhammad,Zubair Muhammad,Souayeh Basma,Alam Mir Waqas
Abstract
The recent pandemic has led to the fabrication of new nucleic acid sensors that can detect infinitesimal limits immediately and effectively. Therefore, various techniques have been demonstrated using low-dimensional materials that exhibit ultrahigh detection and accuracy. Numerous detection approaches have been reported, and new methods for impulse sensing are being explored. All ongoing research converges at one unique point, that is, an impetus: the enhanced limit of detection of sensors. There are several reviews on the detection of viruses and other proteins related to disease control point of care; however, to the best of our knowledge, none summarizes the various nucleotide sensors and describes their limits of detection and mechanisms. To understand the far-reaching impact of this discipline, we briefly discussed conventional and nanomaterial-based sensors, and then proposed the feature prospects of these devices. Two types of sensing mechanisms were further divided into their sub-branches: polymerase chain reaction and photospectrometric-based sensors. The nanomaterial-based sensor was further subdivided into optical and electrical sensors. The optical sensors included fluorescence (FL), surface plasmon resonance (SPR), colorimetric, and surface-enhanced Raman scattering (SERS), while electrical sensors included electrochemical luminescence (ECL), microfluidic chip, and field-effect transistor (FET). A synopsis of sensing materials, mechanisms, detection limits, and ranges has been provided. The sensing mechanism and materials used were discussed for each category in terms of length, collectively forming a fusing platform to highlight the ultrahigh detection technique of nucleotide sensors. We discussed potential trends in improving the fabrication of nucleotide nanosensors based on low-dimensional materials. In this area, particular aspects, including sensitivity, detection mechanism, stability, and challenges, were addressed. The optimization of the sensing performance and selection of the best sensor were concluded. Recent trends in the atomic-scale simulation of the development of Deoxyribonucleic acid (DNA) sensors using 2D materials were highlighted. A critical overview of the challenges and opportunities of deoxyribonucleic acid sensors was explored, and progress made in deoxyribonucleic acid detection over the past decade with a family of deoxyribonucleic acid sensors was described. Areas in which further research is needed were included in the future scope.
Subject
Biomedical Engineering,Histology,Bioengineering,Biotechnology
Reference212 articles.
1. A CMOS bio-chip combining pH sensing, temperature regulation and electric field generation for DNA detection and manipulation;Abdulwahab;IEEE Int. Symp. Circuits Syst.,2018
2. Spectrophotometric, colorimetric and visually detection of Pseudomonas aeruginosa ETA gene based gold nanoparticles DNA probe and endonuclease enzyme;Amini;Spectrochim. Acta - Part A Mol. Biomol. Spectrosc.,2018
3. Tetracationic bis-triarylborane 1,3-butadiyne as a combined fluorimetric and Raman probe for simultaneous and selective sensing of various DNA, RNA, and proteins;Amini;Chemistry,2020
4. Design and fabrication of PDMS microfluidics device for rapid and label-free DNA detection;Ayoib;Appl. Phys. A Mat. Sci. Process.,2020
5. Label free detection for DNA hybridization using surface plasmon photonic crystal fiber biosensor;Azab;Opt. Quantum Electron.,2018
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献