Literature DB >> 24862501

High-throughput rare cell separation from blood samples using steric hindrance and inertial microfluidics.

Shaofei Shen1, Chao Ma, Lei Zhao, Yaolei Wang, Jian-Chun Wang, Juan Xu, Tianbao Li, Long Pang, Jinyi Wang.   

Abstract

The presence and quantity of rare cells in the bloodstream of cancer patients provide a potentially accessible source for the early detection of invasive cancer and for monitoring the treatment of advanced diseases. The separation of rare cells from peripheral blood, as a "virtual and real-time liquid biopsy", is expected to replace conventional tissue biopsies of metastatic tumors for therapy guidance. However, technical obstacles, similar to looking for a needle in a haystack, have hindered the broad clinical utility of this method. In this study, we developed a multistage microfluidic device for continuous label-free separation and enrichment of rare cells from blood samples based on cell size and deformability. We successfully separated tumor cells (MCF-7 and HeLa cells) and leukemic (K562) cells spiked in diluted whole blood using a unique complementary combination of inertial microfluidics and steric hindrance in a microfluidic system. The processing parameters of the inertial focusing and steric hindrance regions were optimized to achieve high-throughput and high-efficiency separation, significant advantages compared with existing rare cell isolation technologies. The results from experiments with rare cells spiked in 1% hematocrit blood indicated >90% cell recovery at a throughput of 2.24 × 10(7) cells min(-1). The enrichment of rare cells was >2.02 × 10(5)-fold. Thus, this microfluidic system driven by purely hydrodynamic forces has practical potential to be applied either alone or as a sample preparation platform for fundamental studies and clinical applications.

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Year:  2014        PMID: 24862501     DOI: 10.1039/c3lc51384j

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  6 in total

1.  Augmented longitudinal acoustic trap for scalable microparticle enrichment.

Authors:  M Cui; M M Binkley; H N Shekhani; M Y Berezin; J M Meacham
Journal:  Biomicrofluidics       Date:  2018-06-07       Impact factor: 2.800

2.  Separation of sperm cells from samples containing high concentrations of white blood cells using a spiral channel.

Authors:  Jiyoung Son; Raheel Samuel; Bruce K Gale; Douglas T Carrell; James M Hotaling
Journal:  Biomicrofluidics       Date:  2017-09-27       Impact factor: 2.800

3.  Classification of large circulating tumor cells isolated with ultra-high throughput microfluidic Vortex technology.

Authors:  James Che; Victor Yu; Manjima Dhar; Corinne Renier; Melissa Matsumoto; Kyra Heirich; Edward B Garon; Jonathan Goldman; Jianyu Rao; George W Sledge; Mark D Pegram; Shruti Sheth; Stefanie S Jeffrey; Rajan P Kulkarni; Elodie Sollier; Dino Di Carlo
Journal:  Oncotarget       Date:  2016-03-15

4.  Numerical Study of Multivortex Regulation in Curved Microchannels with Ultra-Low-Aspect-Ratio.

Authors:  Shaofei Shen; Mengqi Gao; Fangjuan Zhang; Yanbing Niu
Journal:  Micromachines (Basel)       Date:  2021-01-14       Impact factor: 2.891

5.  Particle Focusing in a Straight Microchannel with Non-Rectangular Cross-Section.

Authors:  Uihwan Kim; Joo-Yong Kwon; Taehoon Kim; Younghak Cho
Journal:  Micromachines (Basel)       Date:  2022-01-20       Impact factor: 2.891

6.  Multi-Vortex Regulation for Efficient Fluid and Particle Manipulation in Ultra-Low Aspect Ratio Curved Microchannels.

Authors:  Shaofei Shen; Xin Wang; Yanbing Niu
Journal:  Micromachines (Basel)       Date:  2021-06-27       Impact factor: 2.891

  6 in total

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