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The role of spatial structures of tissues in cancer initiation dynamics
Cade Spaulding1, Hamid Teimouri1,2, Anatoly B Kolomeisky1,2,3,4
1Department of Chemistry, Rice University, Houston, TX 77005-1892, United States of America.
Abstract:
It is widely believed that biological tissues evolved to lower the risks of cancer development. One of the specific ways to minimize the chances of tumor formation comes from proper spatial organization of tissues. However, the microscopic mechanisms of underlying processes remain not fully understood. We present a theoretical investigation on the role of spatial structures in cancer initiation dynamics. In our approach, the dynamics of single mutation fixations are analyzed using analytical calculations and computer simulations by mapping them to Moran processes on graphs with different connectivity that mimic various spatial structures. It is found that while the fixation probability is not affected by modifying the spatial structures of the tissues, the fixation times can change dramatically. The slowest dynamics is observed in 'quasi-one-dimensional' structures, while the fastest dynamics is observed in 'quasi-three-dimensional' structures. Theoretical calculations also suggest that there is a critical value of the degree of graph connectivity, which mimics the spatial dimension of the tissue structure, above which the spatial structure of the tissue has no effect on the mutation fixation dynamics. An effective discrete-state stochastic model of cancer initiation is utilized to explain our theoretical results and predictions. Our theoretical analysis clarifies some important aspects on the role of the tissue spatial structures in the cancer initiation processes.
Insights
Tissue spatial organization impacts cancer initiation by altering mutation fixation times, not probabilities. This study reveals how tissue structure, from 1D to 3D, affects cancer development dynamics.
Area of Science:
- Theoretical biology
- Cancer research
- Mathematical modeling
Background:
- Biological tissues are thought to evolve to reduce cancer risk.
- Tissue spatial organization is a key factor in minimizing tumor formation.
- Microscopic mechanisms underlying these processes require further investigation.
Purpose of the Study:
- To theoretically investigate the role of spatial structures in cancer initiation dynamics.
- To analyze the dynamics of single mutation fixations in various spatial configurations.
- To understand how tissue architecture influences cancer development.
Main Methods:
- Analytical calculations and computer simulations.
- Mapping mutation fixation dynamics to Moran processes on graphs with varying connectivity.
- Utilizing a discrete-state stochastic model for cancer initiation.
Main Results:
- Spatial structures significantly alter mutation fixation times, but not fixation probabilities.
- Quasi-one-dimensional structures exhibit the slowest dynamics, while quasi-three-dimensional structures show the fastest.
- A critical graph connectivity degree exists, beyond which spatial structure has no effect on mutation dynamics.
Conclusions:
- Tissue spatial organization plays a crucial role in modulating the speed of cancer initiation.
- Understanding these spatial dynamics can provide insights into cancer prevention strategies.
- The study clarifies the impact of tissue architecture on mutation fixation processes relevant to cancer development.
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