Continuous CTC separation through a DEP-based contraction-expansion inertial microfluidic channel

被引:17
作者
Islam, Md Sadiqul [1 ]
Chen, Xiaolin [1 ]
机构
[1] Washington State Univ, Sch Engn & Comp Sci, 14204 NE Salmon Creek Ave, Vancouver, WA 98686 USA
基金
美国国家科学基金会;
关键词
circulating tumor cells; contraction-expansion channel; dielectrophoresis; inertial microfluidics; label-free separation; CIRCULATING TUMOR-CELLS; FLOW FRACTIONATION; SPIRAL MICROCHANNELS; PARTICLE SEPARATION; CANCER-PATIENTS; HEAT SINK; SIZE; DIELECTROPHORESIS; MICROCHIP; DESIGN;
D O I
10.1002/btpr.3341
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The efficient isolation of viable and intact circulating tumor cells (CTCs) from blood is critical for the genetic analysis of cancer cells, prediction of cancer progression, development of drugs, and evaluation of therapeutic treatments. While conventional cell separation devices utilize the size difference between CTCs and other blood cells, they fail to separate CTCs from white blood cells (WBCs) due to significant size overlap. To overcome this issue, we present a novel approach that combines curved contraction-expansion (CE) channels with dielectrophoresis (DEP) and inertial microfluidics to isolate CTCs from WBCs regardless of size overlap. This label-free and continuous separation method utilizes dielectric properties and size variation of cells for the separation of CTCs from WBCs. The results demonstrate that the proposed hybrid microfluidic channel can effectively isolate A549 CTCs from WBCs regardless of their size with a throughput of 300 mu L/min, achieving a high separation distance of 233.4 mu m at an applied voltage of 50 Vp-p. The proposed method allows for the modification of cell migration characteristics by controlling the number of CE sections of the channel, applied voltage, applied frequency, and flow rate. With its unique features of a single-stage separation, simple design, and tunability, the proposed method provides a promising alternative to the existing label-free cell separation techniques and may have a wide range of applications in biomedicine.
引用
收藏
页数:15
相关论文
共 79 条
  • [1] High-throughput, temperature-controlled microchannel acoustophoresis device made with rapid prototyping
    Adams, Jonathan D.
    Ebbesen, Christian L.
    Barnkob, Rune
    Yang, Allen H. J.
    Soh, H. Tom
    Bruus, Henrik
    [J]. JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2012, 22 (07)
  • [2] Microfluidic platforms for the manipulation of cells and particles
    Afsaneh, Hadi
    Mohammadi, Rasool
    [J]. TALANTA OPEN, 2022, 5
  • [3] On the design of deterministic dielectrophoresis for continuous separation of circulating tumor cells from peripheral blood cells
    Aghaamoo, Mohammad
    Aghilinejad, Arian
    Chen, Xiaolin
    Xu, Jie
    [J]. ELECTROPHORESIS, 2019, 40 (10) : 1486 - 1493
  • [4] Effect of angle-of-attacks on deterministic lateral displacement (DLD) with symmetric airfoil pillars
    Ahasan, Kawkab
    Landry, Christopher M.
    Chen, Xiaolin
    Kim, Jong-Hoon
    [J]. BIOMEDICAL MICRODEVICES, 2020, 22 (02)
  • [5] Particle/cell separation on microfluidic platforms based on centrifugation effect: a review
    Al-Faqheri, Wisam
    Thio, Tzer Hwai Gilbert
    Qasaimeh, Mohammad Ameen
    Dietzel, Andreas
    Madou, Marc
    Al-Halhouli, Ala'aldeen
    [J]. MICROFLUIDICS AND NANOFLUIDICS, 2017, 21 (06)
  • [6] Novel microfluidic device for the continuous separation of cancer cells using dielectrophoresis
    Alazzam, Anas
    Mathew, Bobby
    Alhammadi, Falah
    [J]. JOURNAL OF SEPARATION SCIENCE, 2017, 40 (05) : 1193 - 1200
  • [7] Heat and fluid flow analysis of metal foam embedded in a double-layered sinusoidal heat sink under local thermal non-equilibrium condition using nanofluid
    Arasteh, Hossein
    Mashayekhi, Ramin
    Goodarzi, Marjan
    Motaharpour, S. Hossein
    Dahari, Mahidzal
    Toghraie, Davood
    [J]. JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2019, 138 (02) : 1461 - 1476
  • [8] The inertial lift on a spherical particle in a plane Poiseuille flow at large channel Reynolds number
    Asmolov, ES
    [J]. JOURNAL OF FLUID MECHANICS, 1999, 381 : 63 - 87
  • [9] Numerical investigation of turbulent flow and heat transfer of nanofluid inside a wavy microchannel with different wavelengths
    Bazdar, Hamed
    Toghraie, Davood
    Pourfattah, Farzad
    Akbari, Omid Ali
    Hoang Minh Nguyen
    Asadi, Amin
    [J]. JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2020, 139 (03) : 2365 - 2380
  • [10] Pinched flow coupled shear-modulated inertial microfluidics for high-throughput rare blood cell separation
    Bhagat, Ali Asgar S.
    Hou, Han Wei
    Li, Leon D.
    Lim, Chwee Teck
    Han, Jongyoon
    [J]. LAB ON A CHIP, 2011, 11 (11) : 1870 - 1878