Biomedical Applications of Microfluidic Devices: A Review

被引:104
作者
Gharib, Ghazaleh [1 ,2 ,3 ]
Butun, Ismail [1 ]
Muganli, Zulal [1 ]
Kozalak, Gul [1 ,3 ]
Namli, Ilayda [1 ]
Sarraf, Seyedali Seyedmirzaei [1 ]
Ahmadi, Vahid Ebrahimpour [1 ]
Toyran, Ercil [1 ]
van Wijnen, Andre J. [4 ]
Kosar, Ali [1 ,2 ,3 ,5 ]
机构
[1] Sabanci Univ, Fac Engn & Nat Sci, TR-34956 Istanbul, Turkey
[2] Sabanci Univ, Nanotechnol Res & Applicat Ctr SUNUM, TR-34956 Istanbul, Turkey
[3] Sabanci Univ, Fac Engn & Nat Sci, Ctr Excellence Funct Surfaces & Interfaces Nano D, TR-34956 Istanbul, Turkey
[4] Univ Vermont, Dept Biochem, 89 Beaumont Ave, Burlington, VT 05405 USA
[5] Turkish Acad Sci TUBA, TR-06700 Ankara, Turkey
来源
BIOSENSORS-BASEL | 2022年 / 12卷 / 11期
关键词
micromixers; particle separation; cell sorting; particle enrichment; electrophoresis; dielectrophoresis; magnetophoresis; acoustophoresis; pressure fields; thermal fields; optical trapping; disease modeling; biomedical applications; lab-on-a-chip; organ-on-a-chip; point-of-care; cancer diagnosis; biosensors; ON-A-CHIP; CIRCULATING TUMOR-CELLS; CONTINUOUS PARTICLE SEPARATION; LOW-COST FABRICATION; WHOLE-BLOOD; LABEL-FREE; LIVER-DISEASE; ELECTROCHEMICAL BIOSENSORS; CARDIOVASCULAR-DISEASES; NANOPARTICLE TRANSPORT;
D O I
10.3390/bios12111023
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Both passive and active microfluidic chips are used in many biomedical and chemical applications to support fluid mixing, particle manipulations, and signal detection. Passive microfluidic devices are geometry-dependent, and their uses are rather limited. Active microfluidic devices include sensors or detectors that transduce chemical, biological, and physical changes into electrical or optical signals. Also, they are transduction devices that detect biological and chemical changes in biomedical applications, and they are highly versatile microfluidic tools for disease diagnosis and organ modeling. This review provides a comprehensive overview of the significant advances that have been made in the development of microfluidics devices. We will discuss the function of microfluidic devices as micromixers or as sorters of cells and substances (e.g., microfiltration, flow or displacement, and trapping). Microfluidic devices are fabricated using a range of techniques, including molding, etching, three-dimensional printing, and nanofabrication. Their broad utility lies in the detection of diagnostic biomarkers and organ-on-chip approaches that permit disease modeling in cancer, as well as uses in neurological, cardiovascular, hepatic, and pulmonary diseases. Biosensor applications allow for point-of-care testing, using assays based on enzymes, nanozymes, antibodies, or nucleic acids (DNA or RNA). An anticipated development in the field includes the optimization of techniques for the fabrication of microfluidic devices using biocompatible materials. These developments will increase biomedical versatility, reduce diagnostic costs, and accelerate diagnosis time of microfluidics technology.
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页数:60
相关论文
共 482 条
[1]   A novel magnetophoretic-based device for magnetometry and separation of single magnetic particles and magnetized cells [J].
Abedini-Nassab, Roozbeh ;
Ding, Xianting ;
Xie, Haiyang .
LAB ON A CHIP, 2022, 22 (04) :738-746
[2]   Synchronous control of magnetic particles and magnetized cells in a tri-axial magnetic field [J].
Abedini-Nassab, Roozbeh ;
Bahrami, Sajjad .
LAB ON A CHIP, 2021, 21 (10) :1998-2007
[3]   Bends in magnetophoretic conductors [J].
Abedini-Nassab, Roozbeh ;
Shourabi, Reza .
AIP ADVANCES, 2019, 9 (12)
[4]   Active Micromixer of Microfluids via Plasmonic Marangoni Convection [J].
Agawa, Hiroaki ;
Hasebe, Koichi ;
Matsutani, Akihiro ;
Isobe, Toshihiro ;
Nakajima, Akira ;
Matsushita, Sachiko .
BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 2021, 94 (08) :2003-2010
[5]   The effects of baffle configuration and number on inertial mixing in a curved serpentine micromixer: Experimental and numerical study [J].
Ahmadi, Vahid Ebrahimpour ;
Butun, Ismail ;
Altay, Rana ;
Bazaz, Sajad Razavi ;
Alijani, Hossein ;
Celik, Suleyman ;
Warkiani, Majid Ebrahimi ;
Kosar, Ali .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2021, 168 :490-498
[6]   Microengineered human blood-brain barrier platform for understanding nanoparticle transport mechanisms [J].
Ahn, Song Ih ;
Sei, Yoshitaka J. ;
Park, Hyun-Ji ;
Kim, Jinhwan ;
Ryu, Yujung ;
Choi, Jeongmoon J. ;
Sung, Hak-Joon ;
MacDonald, Tobey J. ;
Levey, Allan, I ;
Kim, YongTae .
NATURE COMMUNICATIONS, 2020, 11 (01)
[7]   Smartphone-based sensitive detection of SARS-CoV-2 from saline gargle samples via flow profile analysis on a paper microfluidic chip [J].
Akarapipad, Patarajarin ;
Kaarj, Kattika ;
Breshears, Lane E. ;
Sosnowski, Katelyn ;
Baker, Jacob ;
Nguyen, Brandon T. ;
Eades, Ciara ;
Uhrlaub, Jennifer L. ;
Quirk, Grace ;
Nikolich-Zugich, Janko ;
Worobey, Michael ;
Yoon, Jeong-Yeol .
BIOSENSORS & BIOELECTRONICS, 2022, 207
[8]   Microfluidic Systems for Cancer Diagnosis and Applications [J].
Akgonullu, Semra ;
Bakhshpour, Monireh ;
Piskin, Ayse Kevser ;
Denizli, Adil .
MICROMACHINES, 2021, 12 (11)
[9]   The Onpattro story and the clinical translation of nanomedicines containing nucleic acid-based drugs [J].
Akinc, Akin ;
Maier, Martin A. ;
Manoharan, Muthiah ;
Fitzgerald, Kevin ;
Jayaraman, Muthusamy ;
Barros, Scott ;
Ansell, Steven ;
Du, Xinyao ;
Hope, Michael J. ;
Madden, Thomas D. ;
Mui, Barbara L. ;
Semple, Sean C. ;
Tam, Ying K. ;
Ciufolini, Marco ;
Witzigmann, Dominik ;
Kulkarni, Jayesh A. ;
van der Meel, Roy ;
Cullis, Pieter R. .
NATURE NANOTECHNOLOGY, 2019, 14 (12) :1084-1087
[10]   Review on microfluidic paper-based analytical devices towards commercialisation [J].
Akyazi, Tugce ;
Basabe-Desmonts, Lourdes ;
Benito-Lopez, Fernando .
ANALYTICA CHIMICA ACTA, 2018, 1001 :1-17