Multichannel Impedance Cytometry Downstream of Cell Separation by Deterministic Lateral Displacement to Quantify Macrophage Enrichment in Heterogeneous Samples

Author:

Torres‐Castro Karina1ORCID,Jarmoshti Javad1,Xiao Li2,Rane Aditya3,Salahi Armita1,Jin Li2,Li Xudong2,Caselli Federica4ORCID,Honrado Carlos1ORCID,Swami Nathan S.13ORCID

Affiliation:

1. Department of Electrical Engineering University of Virginia Charlottesville VA 22904 USA

2. Department of Orthopedics School of Medicine University of Virginia Charlottesville VA 22904 USA

3. Department of Chemistry University of Virginia Charlottesville VA 22904 USA

4. Department of Civil Engineering and Computer Science University of Rome Tor Vergata 00133 Rome Italy

Abstract

AbstractThe integration of on‐chip biophysical cytometry downstream of microfluidic enrichment for inline monitoring of phenotypic and separation metrics at single‐cell sensitivity can allow for active control of separation and its application to versatile sample sets. Integration of impedance cytometry downstream of cell separation by deterministic lateral displacement (DLD) for enrichment of activated macrophages from a heterogeneous sample is presented, without the problems of biased sample loss and sample dilution caused by off‐chip analysis. This requires designs to match cell/particle flow rates from DLD separation into the confined single‐cell impedance cytometry stage, the balancing of flow resistances across the separation array width to maintain unidirectionality, and the utilization of co‐flowing beads as calibrated internal standards for inline assessment of DLD separation and for impedance data normalization. Using a heterogeneous sample with un‐activated and activated macrophages, wherein macrophage polarization during activation causes cell size enlargement, on‐chip impedance cytometry is used to validate DLD enrichment of the activated subpopulation at the displaced outlet, based on the multiparametric characteristics of cell size distribution and impedance phase metrics. This hybrid platform can monitor the separation of specific subpopulations from cellular samples with wide size distributions, for active operational control and enhanced sample versatility.

Funder

Air Force Office of Scientific Research

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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