Ultrahigh-throughput magnetic sorting of large blood volumes for epitope-agnostic isolation of circulating tumor cells.

Avanish Mishra, Taronish D Dubash, Jon F Edd, Michelle K Jewett, Suhaas G Garre, Nezihi Murat Karabacak, Daniel C Rabe, Baris R Mutlu, John R Walsh, Ravi Kapur, Shannon L Stott, Shyamala Maheswaran, Daniel A Haber, Mehmet Toner

Journal: Proceedings of the National Academy of Sciences of the United States of America 2020;117(29):16839-16847

PMID: 32641515

Abstract

Circulating tumor cell (CTC)-based liquid biopsies provide unique opportunities for cancer diagnostics, treatment selection, and response monitoring, but even with advanced microfluidic technologies for rare cell detection the very low number of CTCs in standard 10-mL peripheral blood samples limits their clinical utility. Clinical leukapheresis can concentrate mononuclear cells from almost the entire blood volume, but such large numbers and concentrations of cells are incompatible with current rare cell enrichment technologies. Here, we describe an ultrahigh-throughput microfluidic chip, CTC-iChip, that rapidly sorts through an entire leukapheresis product of over 6 billion nucleated cells, increasing CTC isolation capacity by two orders of magnitude (86% recovery with 10 enrichment). Using soft iron-filled channels to act as magnetic microlenses, we intensify the field gradient within sorting channels. Increasing magnetic fields applied to inertially focused streams of cells effectively deplete massive numbers of magnetically labeled leukocytes within microfluidic channels. The negative depletion of antibody-tagged leukocytes enables isolation of potentially viable CTCs without bias for expression of specific tumor epitopes, making this platform applicable to all solid tumors. Thus, the initial enrichment by routine leukapheresis of mononuclear cells from very large blood volumes, followed by rapid flow, high-gradient magnetic sorting of untagged CTCs, provides a technology for noninvasive isolation of cancer cells in sufficient numbers for multiple clinical and experimental applications.

Copyright © 2020 the Author(s). Published by PNAS.

Address: BioMEMS Resource Center, Charlestown, MA 02129.; Center for Engineering in Medicine and Surgery, Massachusetts General Hospital, Boston, MA 02114.; Cancer Center, Massachusetts General Hospital, Boston, MA 02114.; Harvard Medical School, Boston, MA 02115.; Shriners Hospitals for Children, Boston, MA 02114.; MicroMedicine, Inc., Waltham, MA 02451.; Cancer Center, Massachusetts General Hospital, Boston, MA 02114; [email protected] [email protected].; Howard Hughes Medical Institute, Bethesda, MD 20815.; BioMEMS Resource Center, Charlestown, MA 02129; [email protected] [email protected].
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