Literature DB >> 29682599

Microfluidic flow cytometry: The role of microfabrication methodologies, performance and functional specification.

Anil B Shrirao1, Zachary Fritz1, Eric M Novik2, Gabriel M Yarmush1, Rene S Schloss1, Jeffrey D Zahn1, Martin L Yarmush1.   

Abstract

Flow cytometry is an invaluable tool utilized in modern biomedical research and clinical applications requiring high throughput, high resolution particle analysis for cytometric characterization and/or sorting of cells and particles as well as for analyzing results from immunocytometric assays. In recent years, research has focused on developing microfluidic flow cytometers with the motivation of creating smaller, less expensive, simpler, and more autonomous alternatives to conventional flow cytometers. These devices could ideally be highly portable, easy to operate without extensive user training, and utilized for research purposes and/or point-of-care diagnostics especially in limited resource facilities or locations requiring on-site analyses. However, designing a device that fulfills the criteria of high throughput analysis, automation and portability, while not sacrificing performance is not a trivial matter. This review intends to present the current state of the field and provide considerations for further improvement by focusing on the key design components of microfluidic flow cytometers. The recent innovations in particle focusing and detection strategies are detailed and compared. This review outlines performance matrix parameters of flow cytometers that are interdependent with each other, suggesting trade offs in selection based on the requirements of the applications. The ongoing contribution of microfluidics demonstrates that it is a viable technology to advance the current state of flow cytometry and develop automated, easy to operate and cost-effective flow cytometers.

Entities:  

Keywords:  Electrochemical Detection; Florescence-Based Detection; Flow Cytometry; Flow Focusing; Impedance Spectroscopy; Microfluidics; Micropump; Microvalves; Optical Detection

Year:  2018        PMID: 29682599      PMCID: PMC5907470          DOI: 10.1142/S2339547818300019

Source DB:  PubMed          Journal:  Technology (Singap World Sci)


  141 in total

1.  Measurements of scattered light on a microchip flow cytometer with integrated polymer based optical elements.

Authors:  Z Wang; J El-Ali; M Engelund; T Gotsaed; I R Perch-Nielsen; K B Mogensen; D Snakenborg; J P Kutter; A Wolff
Journal:  Lab Chip       Date:  2004-04-20       Impact factor: 6.799

2.  Microfluidic sorting of mammalian cells by optical force switching.

Authors:  Mark M Wang; Eugene Tu; Daniel E Raymond; Joon Mo Yang; Haichuan Zhang; Norbert Hagen; Bob Dees; Elinore M Mercer; Anita H Forster; Ilona Kariv; Philippe J Marchand; William F Butler
Journal:  Nat Biotechnol       Date:  2004-12-19       Impact factor: 54.908

3.  A microfluidic biochip for complete blood cell counts at the point-of-care.

Authors:  U Hassan; B Reddy; G Damhorst; O Sonoiki; T Ghonge; C Yang; R Bashir
Journal:  Technology (Singap World Sci)       Date:  2015-12-11

4.  Three dimensional microfluidics with embedded microball lenses for parallel and high throughput multicolor fluorescence detection.

Authors:  Y J Fan; Y C Wu; Y Chen; Y C Kung; T H Wu; K W Huang; H J Sheen; P Y Chiou
Journal:  Biomicrofluidics       Date:  2013-08-21       Impact factor: 2.800

5.  A Versatile Method of Patterning Proteins and Cells.

Authors:  Anil B Shrirao; Frank H Kung; Derek Yip; Bonnie L Firestein; Cheul H Cho; Ellen Townes-Anderson
Journal:  J Vis Exp       Date:  2017-02-26       Impact factor: 1.355

6.  Rapid modulation of droplet composition with pincer microvalves.

Authors:  Christopher J Ochs; Adam R Abate
Journal:  Lab Chip       Date:  2015-01-07       Impact factor: 6.799

7.  Lensfree holographic imaging for on-chip cytometry and diagnostics.

Authors:  Sungkyu Seo; Ting-Wei Su; Derek K Tseng; Anthony Erlinger; Aydogan Ozcan
Journal:  Lab Chip       Date:  2008-12-05       Impact factor: 6.799

8.  Integration of optical components on-chip for scattering and fluorescence detection in an optofluidic device.

Authors:  Benjamin R Watts; Zhiyi Zhang; Chang-Qing Xu; Xudong Cao; Min Lin
Journal:  Biomed Opt Express       Date:  2012-10-10       Impact factor: 3.732

9.  Formation and characterization of an ideal excitation beam geometry in an optofluidic device.

Authors:  Benjamin R Watts; Thomas Kowpak; Zhiyi Zhang; Chang-Qing Xu; Shiping Zhu
Journal:  Biomed Opt Express       Date:  2010-09-14       Impact factor: 3.732

10.  Non-destructive on-chip cell sorting system with real-time microscopic image processing.

Authors:  Kazunori Takahashi; Akihiro Hattori; Ikurou Suzuki; Takanori Ichiki; Kenji Yasuda
Journal:  J Nanobiotechnology       Date:  2004-06-03       Impact factor: 10.435

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  10 in total

1.  Bead-based multiplex detection of dengue biomarkers in a portable imaging device.

Authors:  Xilong Yuan; Srishti Garg; Kevin De Haan; Frederic A Fellouse; Anupriya Gopalsamy; Jan Tykvart; Sachdev S Sidhu; Manoj M Varma; Parama Pal; Edith M Hillan; James Jiahua Dou; J Stewart Aitchison
Journal:  Biomed Opt Express       Date:  2020-10-07       Impact factor: 3.732

2.  Natural killer cell detection, quantification, and subpopulation identification on paper microfluidic cell chromatography using smartphone-based machine learning classification.

Authors:  Ryan Zenhausern; Alexander S Day; Babak Safavinia; Seungmin Han; Paige E Rudy; Young-Wook Won; Jeong-Yeol Yoon
Journal:  Biosens Bioelectron       Date:  2021-12-24       Impact factor: 10.618

3.  Advances in Microfluidics for the Implementation of Liquid Biopsy in Clinical Routine.

Authors:  Alexandra Teixeira; Adriana Carneiro; Paulina Piairo; Miguel Xavier; Alar Ainla; Cláudia Lopes; Maria Sousa-Silva; Armando Dias; Ana S Martins; Carolina Rodrigues; Ricardo Pereira; Liliana R Pires; Sara Abalde-Cela; Lorena Diéguez
Journal:  Adv Exp Med Biol       Date:  2022       Impact factor: 3.650

4.  The role of titanium surface micromorphology in MG-63 cell motility during osteogenesis.

Authors:  Shuxiu Wang; Jingsong Zeng; Fang Jia; Shulan Xu; Wangxi Wu; Lei Zhou
Journal:  Sci Rep       Date:  2022-06-15       Impact factor: 4.996

Review 5.  Potential theranostics of circulating tumor cells and tumor-derived exosomes application in colorectal cancer.

Authors:  Somayeh Vafaei; Raheleh Roudi; Zahra Madjd; Amir Reza Aref; Marzieh Ebrahimi
Journal:  Cancer Cell Int       Date:  2020-07-06       Impact factor: 5.722

6.  Separation and enrichment of sodium-motile bacteria using cost-effective microfluidics.

Authors:  Jyoti P Gurung; Moein Navvab Kashani; Sanaz Agarwal; Gonzalo Peralta; Murat Gel; Matthew A B Baker
Journal:  Biomicrofluidics       Date:  2021-05-27       Impact factor: 3.258

7.  Passive Dielectrophoretic Focusing of Particles and Cells in Ratchet Microchannels.

Authors:  Song-Yu Lu; Amirreza Malekanfard; Shayesteh Beladi-Behbahani; Wuzhou Zu; Akshay Kale; Tzuen-Rong Tzeng; Yao-Nan Wang; Xiangchun Xuan
Journal:  Micromachines (Basel)       Date:  2020-04-25       Impact factor: 2.891

Review 8.  Microfluidic techniques for separation of bacterial cells via taxis.

Authors:  Jyoti P Gurung; Murat Gel; Matthew A B Baker
Journal:  Microb Cell       Date:  2020-01-15

Review 9.  Optical Detection Methods for High-Throughput Fluorescent Droplet Microflow Cytometry.

Authors:  Kaiser Pärnamets; Tamas Pardy; Ants Koel; Toomas Rang; Ott Scheler; Yannick Le Moullec; Fariha Afrin
Journal:  Micromachines (Basel)       Date:  2021-03-23       Impact factor: 2.891

10.  Cell fluorescence photoactivation as a method to select and study cellular subpopulations grown in mechanically heterogeneous environments.

Authors:  Julien Aureille; Mylène Pezet; Lydia Pernet; Jacques Mazzega; Alexei Grichine; Christophe Guilluy; Monika Elzbieta Dolega
Journal:  Mol Biol Cell       Date:  2021-06-16       Impact factor: 4.138

  10 in total

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