| Literature DB >> 33802356 |
Srivathsan Kalyan1, Corinna Torabi1, Harrison Khoo1, Hyun Woo Sung2, Sung-Eun Choi1, Wenzhao Wang3, Benjamin Treutler3, Dohyun Kim4, Soojung Claire Hur1,5,6,7.
Abstract
Fast and accurate interrogation of complex samples containing diseased cells or pathogens is important to make informed decisions on clinical and public health issues. Inertial microfluidics has been increasingly employed for such investigations to isolate target bioparticles from liquid samples with size and/or deformability-based manipulation. This phenomenon is especially useful for the clinic, owing to its rapid, label-free nature of target enrichment that enables further downstream assays. Inertial microfluidics leverages the principle of inertial focusing, which relies on the balance of inertial and viscous forces on particles to align them into size-dependent laminar streamlines. Several distinct microfluidic channel geometries (e.g., straight, curved, spiral, contraction-expansion array) have been optimized to achieve inertial focusing for a variety of purposes, including particle purification and enrichment, solution exchange, and particle alignment for on-chip assays. In this review, we will discuss how inertial microfluidics technology has contributed to improving accuracy of various assays to provide clinically relevant information. This comprehensive review expands upon studies examining both endogenous and exogenous targets from real-world samples, highlights notable hybrid devices with dual functions, and comments on the evolving outlook of the field.Entities:
Keywords: cell purification; clinical research; high throughput; hybrid devices; inertial microfluidics; sample processing; translational research
Year: 2021 PMID: 33802356 PMCID: PMC7999476 DOI: 10.3390/mi12030257
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891