Tuning particle inertial separation in sinusoidal channels by embedding periodic obstacle microstructures

被引:44
作者
Cha, Haotian [1 ]
Fallahi, Hedieh [1 ]
Dai, Yuchen [1 ]
Yadav, Sharda [1 ]
Hettiarachchi, Samith [1 ]
McNamee, Antony [2 ]
An, Hongjie [1 ]
Xiang, Nan [3 ,4 ]
Nguyen, Nam-Trung [1 ]
Zhang, Jun [1 ]
机构
[1] Griffith Univ, Queensland Micro & Nanotechnol Ctr, Nathan, Qld 4111, Australia
[2] Griffith Univ, Menzies Hlth Inst Queensland, Biorheol Res Lab, Gold Coast, Qld 4222, Australia
[3] Southeast Univ, Sch Mech Engn, Nanjing 211189, Jiangsu, Peoples R China
[4] Southeast Univ, Jiangsu Key Lab Design & Mfg Micronano Biomed Ins, Nanjing 211189, Jiangsu, Peoples R China
基金
中国国家自然科学基金; 澳大利亚研究理事会;
关键词
LABEL-FREE; SPIRAL MICROCHANNEL; CELL SEPARATION; SINGLE-STREAM; MICROFLUIDICS;
D O I
10.1039/d2lc00197g
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Inertial microfluidics functions solely based on the fluid dynamics at relatively high flow speed. Thus, channel geometry is the critical design parameter that contributes to the performance of the device. Four basic channel geometries (i.e., straight, expansion-contraction, spiral and serpentine) have been proposed and extensively studied. To further enhance the performance, innovative channel design through combining two or more geometries is promising. This work explores embedding periodic concave and convex obstacle microstructures in sinusoidal channels and investigates their influence on particle inertial focusing and separation. The concave obstacles could significantly enhance the Dean flow and tune the flow range for particle inertial focusing and separation. Based on this finding, we propose a cascaded device by connecting two sinusoidal channels consecutively for rare cell separation. The concave obstacles are embedded in the second channel to adapt its operational flow rates and enable the functional operation of both channels. Polystyrene beads and breast cancer cells (T47D) spiking in the blood were respectively processed by the proposed device. The results indicate an outstanding separation performance, with 3 to 4 orders of magnitude enhancement in purity for samples with a primary cancer cells ratio of 0.01% and 0.001%, respectively. Embedding microstructures as obstacles brings more flexibility to the design of inertial microfluidic devices, offering a feasible new way to combine two or more serial processing units for high-performance separation.
引用
收藏
页码:2789 / 2800
页数:13
相关论文
共 75 条
[1]   High-Throughput Isolation of Circulating Tumor Cells Using Cascaded Inertial Focusing Microfluidic Channel [J].
Abdulla, Aynur ;
Liu, Wenjia ;
Gholamipour-Shirazi, Azarmidokht ;
Sun, Jiahui ;
Ding, Xianting .
ANALYTICAL CHEMISTRY, 2018, 90 (07) :4397-4405
[2]   On-Chip Generation of Vortical Flows for Microfluidic Centrifugation [J].
Ahmed, Heba ;
Ramesan, Shwathy ;
Lee, Lillian ;
Rezk, Amgad R. ;
Yeo, Leslie Y. .
SMALL, 2020, 16 (09)
[3]   Particle/cell separation on microfluidic platforms based on centrifugation effect: a review [J].
Al-Faqheri, Wisam ;
Thio, Tzer Hwai Gilbert ;
Qasaimeh, Mohammad Ameen ;
Dietzel, Andreas ;
Madou, Marc ;
Al-Halhouli, Ala'aldeen .
MICROFLUIDICS AND NANOFLUIDICS, 2017, 21 (06)
[4]   Microfluidics Based Magnetophoresis: A Review [J].
Alnaimat, Fadi ;
Dagher, Sawsan ;
Mathew, Bobby ;
Hilal-Alnqbi, Ali ;
Khashan, Saud .
CHEMICAL RECORD, 2018, 18 (11) :1596-1612
[5]   Inertial microfluidic physics [J].
Amini, Hamed ;
Lee, Wonhee ;
Di Carlo, Dino .
LAB ON A CHIP, 2014, 14 (15) :2739-2761
[6]   Microfluidics for Liquid Biopsies: Recent Advances, Current Challenges, and Future Directions [J].
Belotti, Yuri ;
Lim, Chwee Teck .
ANALYTICAL CHEMISTRY, 2021, 93 (11) :4727-4738
[7]   Microfluidic Air Sampler for Highly Efficient Bacterial Aerosol Collection and Identification [J].
Bian, Xiaojun ;
Lan, Ying ;
Wang, Bing ;
Zhang, Yu Shrike ;
Liu, Baohong ;
Yang, Pengyuan ;
Zhang, Weijia ;
Qiao, Liang .
ANALYTICAL CHEMISTRY, 2016, 88 (23) :11504-11512
[8]   Multiphysics microfluidics for cell manipulation and separation: a review [J].
Cha, Haotian ;
Fallahi, Hedieh ;
Dai, Yuchen ;
Yuan, Dan ;
An, Hongjie ;
Nguyen, Nam-Trung ;
Zhang, Jun .
LAB ON A CHIP, 2022, 22 (03) :423-444
[9]   Dielectrophoresis-based microfluidic platforms for cancer diagnostics [J].
Chan, Jun Yuan ;
Kayani, Aminuddin Bin Ahmad ;
Ali, Mohd Anuar Md ;
Kok, Chee Kuang ;
Majlis, Burhanuddin Yeop ;
Hoe, Susan Ling Ling ;
Marzuki, Marini ;
Khoo, Alan Soo-Beng ;
Ostrikov, Kostya ;
Rahman, Md Ataur ;
Sriram, Sharath .
BIOMICROFLUIDICS, 2018, 12 (01)
[10]  
Chiou PY, 2005, NATURE, V436, P370, DOI [10.1038/nature03831, 10.1038/nature0383l]