TY - JOUR
T1 - Label-Free Cancer Stem-like Cell Assay Conducted at a Single Cell Level Using Microfluidic Mechanotyping Devices
AU - Terada, Miyu
AU - Ide, Sachiko
AU - Naito, Toyohiro
AU - Kimura, Niko
AU - Matsusaki, Michiya
AU - Kaji, Noritada
N1 - Funding Information:
The authors wish to thank Prof. Yoshiki Katayama and Mr. Keiichiro Ono for their technical assistant in flow cytometry analysis using CytoFLEX S (Beckman Coulter) as well as Dr. Yuki Okugawa for her technical assistant in FACS operation using SH800 (Sony). We are indebted to Prof. Chihaya Adachi and Prof. Hajime Nakanotani for fabricating masks using a maskless lithography as well as Prof. Yoko Yamanishi and Prof. Shinya Sakuma for conducting photolithography. This work was partially supported by JST/PRESTO [grant number JPMJPR16F4], Grant-in-Aid for Scientific Research (B) [21H01966], Grant-in-Aid for Scientific Research on Innovative Areas (Research in a proposed research area) [20H04714], Fund for the Promotion of Joint International Research (Fostering Joint International Research (B)) (19KK0140), a research grant from the Shimadzu Science Foundation, a research grant from Toyota Riken Scholar, and a research grant from Casio Science Promotion Foundation.
Publisher Copyright:
© 2021 American Chemical Society
PY - 2021/11/2
Y1 - 2021/11/2
N2 - The mechanical phenotype of cells is an intrinsic property of individual cells. In fact, this property could serve as a label-free, non-destructive, diagnostic marker of the state of cells owing to its remarkable translational potential. A microfluidic device is a strong candidate for meeting the demand of this translational research as it can be used to diagnose a large population of cells at a single cell level in a high-throughput manner, without the need for off-line pretreatment operations. In this study, we investigated the mechanical phenotype of the human colon adenocarcinoma cell, HT29, which is known to be a heterogeneous cell line with both multipotency and self-renewal abilities. This type of cancer stem-like cell (CSC) is believed to be the unique originators of all tumor cells and may serve as the leading cause of cancer metastasis and drug resistance. By combining consecutive constrictions and microchannels with an ionic current sensing system, we found a high heterogeneity of cell deformability in the population of HT29 cells. Moreover, based on the level of aldehyde dehydrogenase (ALDH) activity and the expression level of CD44s, which are biochemical markers that suggest the multipotency of cells, the high heterogeneity of cell deformability was concluded to be a potential mechanical marker of CSCs. The development of label-free and non-destructive identification and collection techniques for CSCs has remarkable potential not only for cancer diagnosis and prognosis but also for the discovery of a new treatment for cancer.
AB - The mechanical phenotype of cells is an intrinsic property of individual cells. In fact, this property could serve as a label-free, non-destructive, diagnostic marker of the state of cells owing to its remarkable translational potential. A microfluidic device is a strong candidate for meeting the demand of this translational research as it can be used to diagnose a large population of cells at a single cell level in a high-throughput manner, without the need for off-line pretreatment operations. In this study, we investigated the mechanical phenotype of the human colon adenocarcinoma cell, HT29, which is known to be a heterogeneous cell line with both multipotency and self-renewal abilities. This type of cancer stem-like cell (CSC) is believed to be the unique originators of all tumor cells and may serve as the leading cause of cancer metastasis and drug resistance. By combining consecutive constrictions and microchannels with an ionic current sensing system, we found a high heterogeneity of cell deformability in the population of HT29 cells. Moreover, based on the level of aldehyde dehydrogenase (ALDH) activity and the expression level of CD44s, which are biochemical markers that suggest the multipotency of cells, the high heterogeneity of cell deformability was concluded to be a potential mechanical marker of CSCs. The development of label-free and non-destructive identification and collection techniques for CSCs has remarkable potential not only for cancer diagnosis and prognosis but also for the discovery of a new treatment for cancer.
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U2 - 10.1021/acs.analchem.1c02316
DO - 10.1021/acs.analchem.1c02316
M3 - Article
AN - SCOPUS:85117496851
SN - 0003-2700
VL - 93
SP - 14409
EP - 14416
JO - Analytical Chemistry
JF - Analytical Chemistry
IS - 43
ER -