Acta Laser Biology Sinica, Volume. 34, Issue 1, 1(2025)

用于即时检验的微流控纸基分析设备的研究进展

张 玉基, 许 瑞呈, and 单 丹
Author Affiliations
  • 南京理工大学环境与生物工程学院,南京 210094
  • show less
    References(53)

    [1] [1] KIANI F, BALOUCHI A, SHAHSAVANI A. Investigation of nursing students' verbal communication quality during patients' education in Zahedan hospitals: Southeast of Iran[J]. Global Journal of Health Science, 2016, 8(9): 331.

    [2] [2] BISSONNETTE L, BERGERON M. Diagnosing infections—current and anticipated technologies for point-of-care diagnostics and home-based testing[J]. Clinical Microbiology and Infection, 2010, 16(8): 1044-1053.

    [3] [3] LEE W G, KIM Y G, CHUNG B G, et al. Nano/Microfluidics for diagnosis of infectious diseases in developing countries[J]. Advanced Drug Delivery Reviews, 2010, 62(4/5): 449-457.

    [4] [4] WARREN A D, KWONG G A, WOOD D K, et al. Point-of-care diagnostics for noncommunicable diseases using synthetic urinary biomarkers and paper microfluidics[J]. Proceedings of the National Academy of Sciences, 2014, 111(10): 3671-3676.

    [5] [5] MA J, REN Y, HE L, et al. An efficient method for simultaneously screening for HIV, syphilis, and HCV based on one dried blood spot sample[J]. Antiviral Research, 2020, 181: 104775.

    [6] [6] URDEA M, PENNY L A, OLMSTED S S, et al. Requirements for high impact diagnostics in the developing world[J]. Nature, 2006, 444(1): 73-79.

    [7] [7] WHITESIDES G M. The origins and the future of microfluidics[J]. Nature, 2006, 442(7101): 368-373.

    [8] [8] MANZ A, GRABER N, WIDMER H M. Miniaturized total chemical analysis systems: a novel concept for chemical sensing[J]. Sensors and Actuators B: Chemical, 1990, 244-248.

    [9] [9] MARTINEZ A W, PHILLIPS S T, BUTTE M J, et al. Patterned paper as a platform for inexpensive, low-volume, portable bioassays[J]. Angewandte Chemie International Edition, 2007, 46(8): 1318-1320.

    [10] [10] MARTINEZ A W, PHILLIPS S T, WHITESIDES G M. Diagnostics for the developing world: microfluidic paper-based analytical devices[J]. Analytical Chemistry, 2010, 82: 3-10.

    [11] [11] SHER M, ZHUANG R, DEMIRCI U, et al. Paper-based analytical devices for clinical diagnosis: recent advances in the fabrication techniques and sensing mechanisms[J]. Expert Review of Molecular Diagnostics, 2017, 17(4): 351-366.

    [12] [12] WANG X, SUN J, TONG J, et al. Paper-based sensor chip for heavy metal ion detection by SWSV[J]. Micromachines, 2018, 9(4): 150.

    [13] [13] MLLER R, CLEGG D. Automatic paper chromatography[J]. Analytical Chemistry, 1949, 21(9): 1123-1125.

    [14] [14] MLLER R, CLEGG D. Paper chromatography instruments and techniques[J]. Analytical Chemistry, 1951, 23(3): 396-403.

    [15] [15] RATAJCZAK K, STOBIECKA M. High-performance modified cellulose paper-based biosensors for medical diagnostics and early cancer screening: a concise review[J]. Carbohydrate Polymers, 2020, 229: 115463.

    [16] [16] WEI W, SUN J, GUO X Y, et al. Microfluidic-based holonomic constraints of siRNA in the kernel of lipid/polymer hybrid nanoassemblies for improving stable and safe in vivo delivery[J]. ACS Applied Materials & Interfaces, 2020, 12(13): 14839-14854.

    [17] [17] ALILA S, BOUFI S, BELGACEM M N, et al. Adsorption of a cationic surfactant onto cellulosic fibers I. Surface charge effects[J]. Langmuir, 2005, 21(18): 8106-8113.

    [18] [18] GAO B, YANG Y, LIAO J, et al. Bioinspired multistructured paper microfluidics for POCT[J]. Lab on a Chip, 2019, 19(21): 3602-3608.

    [19] [19] YANG Y Y, NOVIANA E, NGUYEN M P, et al. Paper-based microfluidic devices: emerging themes and applications[J]. Analytical Chemistry, 2016, 89: 71-91.

    [20] [20] LI X, ZWANENBURG P, LIU X. Magnetic timing valves for fluid control in paper-based microfluidics[J]. Lab on a Chip, 2013, 13(13): 2609-2614.

    [21] [21] MANBOHI A, AHMADI S H. Sensitive and selective detection of dopamine using electrochemical microfluidic paper-based analytical nanosensor[J]. Sensing and Bio-Sensing Research, 2019, 23: 100270.

    [22] [22] LU J, GE S, GE L, et al. Electrochemical DNA sensor based on three-dimensional folding paper device for specific and sensitive point-of-care testing[J]. Electrochimica Acta, 2012, 80: 334-341.

    [23] [23] CAO L, HAN G C, XIAO H, et al. A novel 3D paper-based microfluidic electrochemical glucose biosensor based on rGO-TEPA/PB sensitive film[J]. Analytica Chimica Acta, 2020, 1096: 34-43.

    [24] [24] JIAO Y, DU C, ZONG L, et al. 3D vertical-flow paper-based device for simultaneous detection of multiple cancer biomarkers by fluorescent immunoassay[J]. Sensors and Actuators B: Chemical, 2019, 306: 127239.

    [25] [25] LI X, LIU X. Fabrication of three-dimensional microfluidic channels in a single layer of cellulose paper[J]. Microfluidics and Nanofluidics, 2014, 16(5): 819-827.

    [26] [26] SCHILLING K M, JAUREGUI D, MARTINEZ A W. Paper and toner three-dimensional fluidic devices: programming fluid flow to improve point-of-care diagnostics[J]. Lab on a Chip, 2013, 13(4): 628-631.

    [27] [27] CHOI J R, HU J, GONG Y, et al. An integrated lateral flow assay for effective DNA amplification and detection at the point of care[J]. Analyst, 2016, 141(10): 2930-2939.

    [28] [28] NIE Z, NIJHUIS C A, GONG J, et al. Electrochemical sensing in paper-based microfluidic devices[J]. Lab on a Chip, 2010, 10(4): 477-483.

    [29] [29] SUI Y, ZORMAN C A. Review—inkjet printing of metal structures for electrochemical sensor applications: a review[J]. Journal of the Electrochemical Society, 2020, 167(3): 037571.

    [30] [30] FENTON E M, MASCARENAS M R, LOPEZ G P, et al. Multiplex lateral-flow test strips fabricated by two-dimensional shaping[J]. ACS Applied Materials & Interfaces, 2009, 1(1): 124-129.

    [31] [31] SHER M, ZHUANG R, DEMIRCI U, et al. Paper-based analytical devices for clinical diagnosis: recent advances in the fabrication techniques and sensing mechanisms[J]. Expert Review of Molecular Diagnostics, 2017, 17(4): 351-366.

    [32] [32] DUNGCHAI W, CHAILAPAKUL O, HENRY C S. Electrochemical detection for paper-based microfluidics[J]. Analytical Chemistry, 2009, 81(14): 5821-5826.

    [33] [33] LIU H, CROOKS R M. Three-dimensional paper microfluidic devices assembled using the principles of origami[J]. Journal of the American Chemical Society, 2011, 133(44): 17564-17566.

    [34] [34] ASANO H, SHIRAISHI Y. Development of paper-based microfluidic analytical device for iron assay using photomask printed with 3D printer for fabrication of hydrophilic and hydrophobic zones on paper by photolithography[J]. Analytica Chimica Acta, 2015, 883: 55-60.

    [35] [35] XIANG N, YI H, CHEN K, et al. Investigation of the maskless lithography technique for the rapid and cost-effective prototyping of microfluidic devices in laboratories[J]. Journal of Micromechanics and Microengineering, 2013, 23(2): 025016.

    [36] [36] SINGH A T, LANTIGUA D, MEKA A, et al. Paper-based sensors: emerging themes and applications[J]. Sensors (Basel), 2018, 18(9): 2838.

    [37] [37] SONGJAROEN T, DUNGCHAI W, CHAILAPAKUL O, et al. Novel, simple and low-cost alternative method for fabrication of paper-based microfluidics by wax dipping[J]. Talanta, 2011, 85(5): 2587-2593.

    [38] [38] LIU M, ZHANG C, LIU F. Understanding wax screen-printing: a novel patterning process for microfluidic cloth-based analytical devices[J]. Analytica Chimica Acta, 2015, 891: 234-246.

    [39] [39] LI Z, LI F, XING Y, et al. Pen-on-paper strategy for point-of-care testing: rapid prototyping of fully written microfluidic biosensor[J]. Biosensors and Bioelectronics, 2017, 98: 478-485.

    [40] [40] WANG W, WU W Y, WANG W, et al. Tree-shaped paper strip for semiquantitative colorimetric detection of protein with self-calibration[J]. Journal of Chromatography A, 2010, 1217(24): 3896-3899.

    [41] [41] FANG X, WEI S, KONG J. Paper-based microfluidics with high resolution, cut on a glass fiber membrane for bioassays[J]. Lab on a Chip, 2014, 14(5): 911-915.

    [42] [42] NIE J, LIANG Y, ZHANG Y, et al. One-step patterning of hollow microstructures in paper by laser cutting to create microfluidic analytical devices[J]. Analyst, 2013, 138(2): 671-676.

    [43] [43] MAXWELL E J, MAZZEO A D, WHITESIDES G M. Paper-based electroanalytical devices for accessible diagnostic testing[J]. MRS Bulletin, 2013, 38(4): 309-314.

    [44] [44] ALRAMMOUZ R, PODLECKI J, VENA A, et al. Highly porous and flexible capacitive humidity sensor based on self-assembled graphene oxide sheets on a paper substrate[J]. Sensors and Actuators B: Chemical, 2019, 298: 126892.

    [45] [45] GE L, WANG S, SONG X, et al. 3D origami-based multifunction-integrated immunodevice: low-cost and multiplexed sandwich chemiluminescence immunoassay on microfluidic paper-based analytical device[J]. Lab on a Chip, 2012, 12(17): 3150-3158.

    [46] [46] SU M, CHEN P, DONG Y, et al. Chemiluminescence of graphene quantum dots induced by acidic potassium permanganate and its application to quenchometric flow-injection assays of hydroquinone in water[J]. Journal of Luminescence, 2016, 177: 204-208.

    [47] [47] DELANEY J L, HOGAN C F, TIAN J, et al. Electrogenerated chemiluminescence detection in paper-based microfluidic sensors[J]. Analytical Chemistry, 2011, 83(4): 1300-1306.

    [48] [48] LIU Y, GUO W, SU B, et al. Recent advances in electrochemiluminescence imaging analysis based on nanomaterials and micro-/nanostructures[J]. Chinese Chemical Letters, 2019, 30(9): 1593-1599.

    [49] [49] HU S W, QIAO S, PAN J B, et al. A paper-based SERS test strip for quantitative detection of Mucin-1 in whole blood[J]. Talanta, 2018, 179: 9-14.

    [50] [50] XU Y, MAN P, HUO Y, et al. Synthesis of the 3D AgNF/AgNP arrays for the paper-based surface enhancement Raman scattering application[J]. Sensors and Actuators B: Chemical, 2018, 265: 302-309.

    [51] [51] LIN X, LIN S, LIU Y, et al. Lab-on-paper surface-enhanced Raman spectroscopy platform based on self‐assembled Au@Ag nanocube monolayer for on-site detection of thiram in soil[J]. Journal of Raman Spectroscopy, 2019, 50(7): 916-925.

    [52] [52] WANG W, GONG Z, YANG S, et al. Fluorescent and visual detection of norfloxacin in aqueous solutions with a molecularly imprinted polymer coated paper sensor[J]. Talanta, 2020, 208: 120435.

    [53] [53] ELLERBEE A K, PHILLIPS S T, SIEGEL A C, et al. Quantifying colorimetric assays in paper-based microfluidic devices by measuring the transmission of light through paper[J]. Analytical Chemistry, 2009, 81: 8447-8452.

    Tools

    Get Citation

    Copy Citation Text

    张 玉基, 许 瑞呈, 单 丹. 用于即时检验的微流控纸基分析设备的研究进展[J]. Acta Laser Biology Sinica, 2025, 34(1): 1

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category:

    Received: May. 26, 2024

    Accepted: Mar. 21, 2025

    Published Online: Mar. 21, 2025

    The Author Email:

    DOI:10.3969/j.issn.1007-7146.2025.01.001

    Topics