Metrology & Measurement Technology, Volume. 45, Issue 3, 85(2025)
Research on rapid biosensing with graphene⁃coated conical optical fibers
[1] STERLING T R, VILLARINO M E, BORISOV A S et al. Three months of rifapentine and isoniazid for latent tuberculosis infection. New England Journal of Medicine, 365, 2155-2166(2011).
[2] ZHANG M, XUE M, HE J⁃Q. Diagnostic accuracy of the new Xpert MTB / RIF ultra for tuberculosis disease: a preliminary systematic review and meta⁃analysis. International Journal of Infectious Diseases, 90, 35-45(2020).
[3] XOLALPA W, VALLECILLO A J, LARA M et al. Identification of novel bacterial plasminogen‐binding proteins in the human pathogen mycobacterium tuberculosis. Proteomics, 7, 3332-3341(2007).
[4] JIANG Y, LIU H, LI M et al. Single nucleotide polymorphism in Ag85 genes of mycobacterium tuberculosis complex: analysis of 178 clinical isolates from China and 13 BCG strains. International Journal of Medical Sciences, 12, 126(2015).
[5] OETTINGER T, ANDERSEN A B. Cloning and B⁃cell⁃epitope mapping of MPT64 from mycobacterium tuberculosis H37Rv. Infection and immunity, 62, 2058-2064(1994).
[6] BELISLE J T, VISSA V D, SIEVERT T et al. Role of the major antigen of mycobacterium tuberculosis in cell wall biogenesis. Science, 276, 1420-1422(1997).
[7] NAQVI A A T, FATIMA K, MOHAMMAD T et al. Insights into SARS⁃CoV⁃2 genome, structure, evolution, pathogenesis and therapies: structural genomics approach. Biochimica et Biophysica Acta (BBA)⁃Molecular Basis of Disease, 1866(2020).
[8] ZIMMERMANN K, MANNHALTER J W. Technical aspects of quantitative competitive PCR. Biotechniques, 21, 268-279(1996).
[9] TAHAMTAN A, ARDEBILI A. Real⁃time RT⁃PCR in COVID⁃19 detection: Issues affecting the results. Expert Review of Molecular Diagnostics, 20, 453-454(2020).
[10] FENG G D, SHI M, MA L et al. Diagnostic accuracy of intracellular mycobacterium tuberculosis detection for tuberculous meningitis. American Journal of Respiratory and Critical Care Medicine, 189, 475-481(2014).
[11] PHILLIPS R O, ROBERT J, ABASS K M et al. Rifampicin and clarithromycin (extended release) versus rifampicin and streptomycin for limited buruli ulcer lesions: a randomised, open⁃label, non⁃inferiority phase 3 trial. The Lancet, 395, 1259-1267(2020).
[12] JALI M H, RAHIM H R A, JOHARI M A M et al. Optical microfiber sensor: a review(2021).
[13] CHEN J H, LI D R, XU F. Optical microfiber sensors: sensing mechanisms, and recent advances. Journal of Lightwave Technology, 37, 2577-2589(2019).
[14] MUSTAPHA KAMIL Y, BAKAR M H ABU, ZAINUDDIN NH et al. Progress and trends of optical microfiber⁃based biosensors. Biosensors, 13, 270(2023).
[15] LI J H, CHEN J H, XU F. Sensitive and wearable optical microfiber sensor for human health monitoring. Advanced Materials Technologies, 3(2018).
[16] LI K, LIU G, WU Y et al. Gold nanoparticle amplified optical microfiber evanescent wave absorption biosensor for cancer biomarker detection in serum. Talanta, 120, 419-424(2014).
[17] YAP S H K, CHAN K K, ZHANG G et al. Carbon dot⁃functionalized interferometric optical fiber sensor for detection of ferric ions in biological samples. ACS Applied Materials & Interfaces, 11, 28546-28553(2019).
[18] KAVINKUMAR T, SASTIKUMAR D, MANIVANNAN S. Effect of functional groups on dielectric, optical gas sensing properties of graphene oxide and reduced graphene oxide at room temperature. RSC Advances, 5, 10816-10825(2015).
[19] LIU J, BAO S, WANG X. Applications of graphene⁃based materials in sensors: a review. Micromachines, 13, 184(2022).
[20] SHAHRIARI S, SASTRY M, PANJIKAR S et al. Graphene and graphene oxide as a support for biomolecules in the development of biosensors. Nanotechnology, Science and Applications, 197-220(2021).
[21] LIU Y, YU D, ZENG C et al. Biocompatible graphene oxide⁃based glucose biosensors. Langmuir, 26, 58-60(2010).
[22] WOLF A J, DESVIGNES L, LINAS B et al. Initiation of the adaptive immune response to mycobacterium tuberculosis depends on antigen production in the local lymph node, not the lungs. The Journal of Experimental Medicine, 205, 105-115(2008).
[23] SALCEDA⁃DELGADO G, MARTINEZ⁃RIOS A, SELVAS⁃AGUILAR R et al. Adaptable optical fiber displacement⁃curvature sensor based on a modal michelson interferometer with a tapered single mode fiber. Sensors, 17, 1259(2017).
[24] HARUN S W et al. Theoretical analysis and fabrication of tapered fiber. Optik, 124, 538-543(2013).
[25] WU Y, XUE P, KANG Y et al. Highly specific and ultrasensitive graphene⁃enhanced electrochemical detection of low⁃abundance tumor cells using silica nanoparticles coated with antibody⁃conjugated quantum dots. Analytical Chemistry, 85, 3166-3173(2013).
[26] SAENGDEE P, CHAISRIRATANAKUL W, BUNJONGPRU W et al. Surface modification of silicon dioxide, silicon nitride and titanium oxynitride for lactate dehydrogenase immobilization. Biosensors and Bioelectronics, 67, 134-138(2015).
[27] CAO Z, YAO B, QIN C et al. Biochemical sensing in graphene⁃enhanced microfiber resonators with individual molecule sensitivity and selectivity. Light: Science & Applications, 8, 107(2019).
[28] WENG S, ZHANG J, MA H et al. B21 DNA vaccine expressing Ag85B, Rv2029c, and Rv1738 confers a robust therapeutic effect against latent mycobacterium tuberculosis infection. Frontiers in Immunology, 13(2022).
[29] LI H, HUANG Y, CHEN C et al. Real‐time cellular cytochrome C monitoring through an optical microfiber: enabled by a silver‐decorated graphene nanointerface. Advanced Science, 5(2018).
[30] JIA H, ZHANG A, YANG Y et al. A graphene oxide coated tapered microfiber acting as a super⁃sensor for rapid detection of SARS⁃CoV⁃2. Lab on a Chip, 21, 2398-2406(2021).
[31] QIN L, ZHENG R, MA Z et al. The selection and application of ssDNA aptamers against MPT64 protein in mycobacterium tuberculosis. Clinical Chemistry and Laboratory Medicine, 47, 405-411(2009).
[32] DREYMANN N, MÖLLER A, MENGER M M. Label⁃free determination of the kinetic parameters of protein⁃aptamer interaction by surface plasmon resonance. Nucleic Acid Aptamers: Selection, Characterization, and Application, 141-53(2022).
[33] SHUM K T, TANNER J A. Differential inhibitory activities and stabilisation of DNA aptamers against the SARS coronavirus helicase. Chembiochem, 9, 3037-3045(2008).
[34] XU G, T⁃M HSIEH, LEE D Y et al. A self⁃contained all⁃in⁃one cartridge for sample preparation and real⁃time PCR in rapid influenza diagnosis. Lab on a Chip, 10(2010).
[35] PESTRONK A, CHOKSI R. Multifocal motor neuropathy: serum IgM anti⁃GM1 ganglioside antibodies in most patients detected using covalent linkage of GM1 to ELISA plates. Neurology, 49(1997).
[36] FORTES⁃GABRIEL E, GUEDES M S, SHETTY A et al. Enzyme immunoassays (EIA) for serodiagnosis of human leptospirosis: specific IgG3 / IgG1 isotyping may further inform diagnosis of acute disease. PLoS Neglected Tropical Diseases, 16(2022).
[37] BISWAS G C, CHOUDHURY S, RABBANI M M et al. A review on potential electrochemical point⁃of⁃care tests targeting pandemic infectious disease detection: COVID⁃19 as a reference. Chemosensors, 10(2022).
[38] CHO H, SHIM S, CHO W W et al. Electrochemical impedance⁃based biosensors for the label⁃free detection of the nucleocapsid protein from SARS⁃CoV⁃2. ACS sensors, 7(2022).
[39] GUO Q, JI D, WANG Q et al. Supercapacitively liquid‐solid dual‐state optoelectronics. Advanced Materials, 36(2024).
Get Citation
Copy Citation Text
Ren LIU, Jingjing WANG, Jijun FENG. Research on rapid biosensing with graphene⁃coated conical optical fibers[J]. Metrology & Measurement Technology, 2025, 45(3): 85
Category: Sensor Technology
Received: Jan. 14, 2025
Accepted: --
Published Online: Sep. 3, 2025
The Author Email: