Clusters of circulating tumor cells traverse capillary-sized vessels
File(s)Au Cluster Capillaries.pdf (4.08 MB)
Published version
Author(s)
Type
Journal Article
Abstract
Multicellular aggregates of circulating tumor cells (CTC clusters) are potent initiators of distant organ metastasis. However, it is currently assumed that CTC clusters are too large to pass through narrow vessels to reach these organs. Here, we present evidence that challenges this assumption through the use of microfluidic devices designed to mimic human capillary constrictions and CTC clusters obtained from patient and cancer cell origins. Over 90% of clusters containing up to 20 cells successfully traversed 5- to 10-μm constrictions even in whole blood. Clusters rapidly and reversibly reorganized into single-file chain-like geometries that substantially reduced their hydrodynamic resistances. Xenotransplantation of human CTC clusters into zebrafish showed similar reorganization and transit through capillary-sized vessels in vivo. Preliminary experiments demonstrated that clusters could be disrupted during transit using drugs that affected cellular interaction energies. These findings suggest that CTC clusters may contribute a greater role to tumor dissemination than previously believed and may point to strategies for combating CTC cluster-initiated metastasis.
Date Issued
2016-05-03
Date Acceptance
2016-02-26
Citation
Proceedings of the National Academy of Sciences of the United States of America, 2016, 113 (18), pp.4947-4952
ISSN
0027-8424
Publisher
National Academy of Sciences
Start Page
4947
End Page
4952
Journal / Book Title
Proceedings of the National Academy of Sciences of the United States of America
Volume
113
Issue
18
Copyright Statement
Freely available online through the PNAS open access option.
Identifier
https://www.pnas.org/content/113/18/4947
Subjects
Science & Technology
Multidisciplinary Sciences
Science & Technology - Other Topics
microfluidics
cancer metastasis
CTC clusters
circulating tumor cell cluster microemboli
capillary microhemodynamics
LUNG-CANCER
DEVELOPING ZEBRAFISH
MICROFLUIDIC DEVICE
METASTASIS
ADHESION
BIOLOGY
BLOOD
MICROEMBOLI
MIGRATION
PRESSURE
CTC clusters
cancer metastasis
capillary microhemodynamics
circulating tumor cell cluster microemboli
microfluidics
Capillaries
Cell Movement
Humans
Neoplastic Cells, Circulating
Capillaries
Humans
Cell Movement
Neoplastic Cells, Circulating
Notes
Multicellular aggregates of circulating tumor cells (CTC clusters) are potent initiators of distant organ metastasis. However, it is currently assumed that CTC clusters are too large to pass through narrow vessels to reach these organs. Here, we present evidence that challenges this assumption through the use of microfluidic devices designed to mimic human capillary constrictions and CTC clusters obtained from patient and cancer cell origins. Over 90% of clusters containing up to 20 cells successfully traversed 5- to 10-μm constrictions even in whole blood. Clusters rapidly and reversibly reorganized into single-file chain-like geometries that substantially reduced their hydrodynamic resistances. Xenotransplantation of human CTC clusters into zebrafish showed similar reorganization and transit through capillary-sized vessels in vivo. Preliminary experiments demonstrated that clusters could be disrupted during transit using drugs that affected cellular interaction energies. These findings suggest that CTC clusters may contribute a greater role to tumor dissemination than previously believed and may point to strategies for combating CTC cluster-initiated metastasis.
Publication Status
Published
Date Publish Online
2016-04-18