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PMID: 39064333 Published · epublish English Journal Article

Elasticity of Carrier Fluid: A Key Factor Affecting Mechanical Phenotyping in Deformability Cytometry.

Micromachines ·Vol. 15 ·No. 7 ·2024-06-25

Pouraria H, Houston JP

Abstract

Recently, microfluidics deformability cytometry has emerged as a powerful tool for high-throughput mechanical phenotyping of large populations of cells. These methods characterize cells by their mechanical fingerprints by exerting hydrodynamic forces and monitoring the resulting deformation. These devices have shown great promise for label-free cytometry, yet there is a critical need to improve their accuracy and reconcile any discrepancies with other methods, such as atomic force microscopy. In this study, we employ computational fluid dynamics simulations and uncover how the elasticity of frequently used carrier fluids, such as methylcellulose dissolved in phosphate-buffered saline, is significantly influential to the resulting cellular deformation. We conducted CFD simulations conventionally used within the deformability cytometry field, which neglect fluid elasticity. Subsequently, we incorporated a more comprehensive model that simulates the viscoelastic nature of the carrier fluid. A comparison of the predicted stresses between these two approaches underscores the significance of the emerging elastic stresses in addition to the well-recognized viscous stresses along the channel. Furthermore, we utilize a two-phase flow model to predict the deformation of a promyelocyte (i.e., HL-60 cell type) within a hydrodynamic constriction channel. The obtained results highlight a substantial impact of the elasticity of carrier fluid on cellular deformation and raise questions about the accuracy of mechanical property estimates derived by neglecting elastic stresses.

Keywords
carrier fluid deformability cytometry elasticity microfluidics
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Pouraria Hassan
Department of Chemical and Materials Engineering, New Mexico State University, Las Cruces, NM 88003, USA.
Houston Jessica P ORCID
Department of Chemical and Materials Engineering, New Mexico State University, Las Cruces, NM 88003, USA.
Article Info
Journal
Micromachines
Abbr.
Micromachines (Basel)
ISSN
2072-666X
Published
2024-06-25
Epub
2024-00-25
Language
English
Region
Switzerland
NLM ID
101640903
Grants
NIGMS NIH HHS · R35 GM152076 · United States
NIH HHS · 1R35GM152076-01 · United States
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