Viscoelastic properties of tumor spheroids revealed by a microfluidic compression device and a modified power law model

Fuente: arXiv
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Autores principales: Pandey, Mrinal, Zhu, Bangguo, Roach, Kaitlyn, Suh, Young Joon, Segall, Jeffrey E, Hui, Chung-Yuen, Wu, Mingming
Formato: Preprint
Publicado: 2025
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author Pandey, Mrinal
Zhu, Bangguo
Roach, Kaitlyn
Suh, Young Joon
Segall, Jeffrey E
Hui, Chung-Yuen
Wu, Mingming
author_facet Pandey, Mrinal
Zhu, Bangguo
Roach, Kaitlyn
Suh, Young Joon
Segall, Jeffrey E
Hui, Chung-Yuen
Wu, Mingming
contents Clinically, palpation is one of the important diagnostic methods to assess tumor malignancy. In laboratory research, it is well accepted that the bulk stiffness of the tumor and the surrounding tissue is closely correlated with the malignant state of the tumor. Here, we postulate that, in addition to tumor stiffness, tumor viscoelasticity - the fact that tumor tissue takes time to bounce back after compression, can also be used to evaluate the tumor malignancy state. In this work, we characterized the viscoelastic properties of breast tumor spheroids using a recently developed microfluidic compression device and a theoretical power law model. Breast tumor cells at varying malignant levels; a non-tumorigenic epithelial (MCF10A), moderately malignant tumor (MCF7) and triple negative metastatic tumor (MDA-MB-231) cells were used. Spheroids embedded within a 3D extracellular matrix were periodically compressed, and their strain responses were recorded using microscopic imaging. Our results revealed that the measured strain relaxation curves can be successfully described by a modified power law model, demonstrated that non-tumorigenic tumor spheroids were more elastic, exhibited shorter relaxation time and less plasticity than those of tumorigenic spheroids. Together, these results highlight that viscoelastic properties in addition to bulk stiffness of the tumor spheroids can serve as a complementary mechanical biomarker of tumor malignancy and demonstrate the validity of a modified power law model for the mechanical characterization of a living tissue.
format Preprint
id arxiv_https___arxiv_org_abs_2509_17294
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Viscoelastic properties of tumor spheroids revealed by a microfluidic compression device and a modified power law model
Pandey, Mrinal
Zhu, Bangguo
Roach, Kaitlyn
Suh, Young Joon
Segall, Jeffrey E
Hui, Chung-Yuen
Wu, Mingming
Soft Condensed Matter
Biological Physics
Clinically, palpation is one of the important diagnostic methods to assess tumor malignancy. In laboratory research, it is well accepted that the bulk stiffness of the tumor and the surrounding tissue is closely correlated with the malignant state of the tumor. Here, we postulate that, in addition to tumor stiffness, tumor viscoelasticity - the fact that tumor tissue takes time to bounce back after compression, can also be used to evaluate the tumor malignancy state. In this work, we characterized the viscoelastic properties of breast tumor spheroids using a recently developed microfluidic compression device and a theoretical power law model. Breast tumor cells at varying malignant levels; a non-tumorigenic epithelial (MCF10A), moderately malignant tumor (MCF7) and triple negative metastatic tumor (MDA-MB-231) cells were used. Spheroids embedded within a 3D extracellular matrix were periodically compressed, and their strain responses were recorded using microscopic imaging. Our results revealed that the measured strain relaxation curves can be successfully described by a modified power law model, demonstrated that non-tumorigenic tumor spheroids were more elastic, exhibited shorter relaxation time and less plasticity than those of tumorigenic spheroids. Together, these results highlight that viscoelastic properties in addition to bulk stiffness of the tumor spheroids can serve as a complementary mechanical biomarker of tumor malignancy and demonstrate the validity of a modified power law model for the mechanical characterization of a living tissue.
title Viscoelastic properties of tumor spheroids revealed by a microfluidic compression device and a modified power law model
topic Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2509.17294