Mechanically-driven Stem Cell Separation in Tissues caused by Proliferating Daughter Cells

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Main Authors: Krämer, Johannes C., Hannezo, Edouard, Gompper, Gerhard, Elgeti, Jens
Format: Preprint
Published: 2023
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_version_ 1866910402906947584
author Krämer, Johannes C.
Hannezo, Edouard
Gompper, Gerhard
Elgeti, Jens
author_facet Krämer, Johannes C.
Hannezo, Edouard
Gompper, Gerhard
Elgeti, Jens
contents The homeostasis of epithelial tissue relies on a balance between the self-renewal of stem cell populations, cellular differentiation, and loss. Although this balance needs to be tightly regulated to avoid pathologies, such as tumor growth, the regulatory mechanisms, both cell-intrinsic and collective, which ensure tissue steady-state are still poorly understood. Here, we develop a computational model that incorporates basic assumptions of stem cell renewal into distinct populations and mechanical interactions between cells. We find that the model generates unexpected dynamic features: stem cells repel each other in the bulk tissue and are thus found rather isolated, as in a number of in vivo contexts. By mapping the system onto a gas of passive Brownian particles with effective repulsive interactions, that arise from the generated flows of differentiated cells, we show that we can quantitatively describe such stem cell distribution in tissues. The interaction potential between a pair of stem cells decays exponentially with a characteristic length that spans several cell sizes, corresponding to the volume of cells generated per stem cell division. Our findings may help understanding the dynamics of normal and cancerous epithelial tissues.
format Preprint
id arxiv_https___arxiv_org_abs_2310_04272
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Mechanically-driven Stem Cell Separation in Tissues caused by Proliferating Daughter Cells
Krämer, Johannes C.
Hannezo, Edouard
Gompper, Gerhard
Elgeti, Jens
Biological Physics
Soft Condensed Matter
The homeostasis of epithelial tissue relies on a balance between the self-renewal of stem cell populations, cellular differentiation, and loss. Although this balance needs to be tightly regulated to avoid pathologies, such as tumor growth, the regulatory mechanisms, both cell-intrinsic and collective, which ensure tissue steady-state are still poorly understood. Here, we develop a computational model that incorporates basic assumptions of stem cell renewal into distinct populations and mechanical interactions between cells. We find that the model generates unexpected dynamic features: stem cells repel each other in the bulk tissue and are thus found rather isolated, as in a number of in vivo contexts. By mapping the system onto a gas of passive Brownian particles with effective repulsive interactions, that arise from the generated flows of differentiated cells, we show that we can quantitatively describe such stem cell distribution in tissues. The interaction potential between a pair of stem cells decays exponentially with a characteristic length that spans several cell sizes, corresponding to the volume of cells generated per stem cell division. Our findings may help understanding the dynamics of normal and cancerous epithelial tissues.
title Mechanically-driven Stem Cell Separation in Tissues caused by Proliferating Daughter Cells
topic Biological Physics
Soft Condensed Matter
url https://arxiv.org/abs/2310.04272