Exploring tumorigenesis as a process of phenotypic state-space exploration and selective funneling

Abstract Tumorigenesis is widely studied within evolutionary frameworks, yet integrating genetic, non-genetic, spatial, and collective tumor-level dynamics into a unified description remains challenging. Here, we propose that tumorigenesis can be analyzed as a process in which tumors generate, explore, and filter phenotypic and organizational configurations over time. We use the concepts of phenotypic state-space exploration, selective funneling, and selection for function as an operational framework to describe how tumor systems diversify, become constrained, and stabilize or lose functional organization during cancer progression. In this view, tumors are not only populations of competing clones, but also dynamic systems whose persistence depends on plasticity, tissue constraints, spatial organization, and collective functional states. This perspective helps account for phenotypic plasticity, recurrent tumor architectures, and the emergence of collective properties such as group phenotypic composition. It also generates testable predictions, including convergence toward recurrent functional states, therapy-induced reorganization of accessible phenotypic space, and the disproportionate effect of disrupting key collective functions. By mapping these concepts onto tumor biology, we position cancer as a tractable system for studying constraint-driven tumor evolution and for informing therapeutic strategies that target tumor organization in addition to individual cancer cells.

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Publication Details

Journal
Evolution Medicine and Public Health
Published
2026-09-21
DOI
https://doi.org/10.1093/emph/eoag022
Primary Topic
Mathematical Biology Tumor Growth
Type
article
Field-Weighted Citation Impact
0.00
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article

Exploring tumorigenesis as a process of phenotypic state-space exploration and selective funneling

Antoine Marie Dujon, Aurora M. Nedelcu, Beáta Újvári, Pascal Pujol et al.
Evolution Medicine and Public Health
Mathematical Biology Tumor Growth
article

Exploring tumorigenesis as a process of phenotypic state-space exploration and selective funneling

Antoine Marie Dujon, Aurora M. Nedelcu, Beáta Újvári, Pascal Pujol, Mario Campone, Jordan Meliani, Jean‐Pascal Capp, Catherine Alix-Panabieres, Klara Asselin, Frédéric Thomas, Michael L Wong, Robert M Hazen
article en

Abstract

Abstract Tumorigenesis is widely studied within evolutionary frameworks, yet integrating genetic, non-genetic, spatial, and collective tumor-level dynamics into a unified description remains challenging. Here, we propose that tumorigenesis can be analyzed as a process in which tumors generate, explore, and filter phenotypic and organizational configurations over time. We use the concepts of phenotypic state-space exploration, selective funneling, and selection for function as an operational framework to describe how tumor systems diversify, become constrained, and stabilize or lose functional organization during cancer progression. In this view, tumors are not only populations of competing clones, but also dynamic systems whose persistence depends on plasticity, tissue constraints, spatial organization, and collective functional states. This perspective helps account for phenotypic plasticity, recurrent tumor architectures, and the emergence of collective properties such as group phenotypic composition. It also generates testable predictions, including convergence toward recurrent functional states, therapy-induced reorganization of accessible phenotypic space, and the disproportionate effect of disrupting key collective functions. By mapping these concepts onto tumor biology, we position cancer as a tractable system for studying constraint-driven tumor evolution and for informing therapeutic strategies that target tumor organization in addition to individual cancer cells.

Evolution Medicine and Public Health
University of New Brunswick (CA), Centre National de la Recherche Scientifique (FR), Deakin University (AU), Institut National des Sciences Appliquées de Toulouse (FR), Carnegie Institution for Science (US), Université de Montpellier (FR), Cree (China) (CN), University of Fredericton (CA), Maladies Infectieuses et Vecteurs: Écologie, Génétique, Évolution et Contrôle (FR), Institut National de Recherche pour l'Agriculture, l'Alimentation et l'Environnement (FR), Toulouse Mathematics Institute (FR), Institut de Cancérologie de l'Ouest (FR), Services déconcentrés d'appui à la recherche Occitanie-Montpellier (FR), Institut de Recherche pour le Développement (FR)
Openalex Percentile: Top 12%
Mathematical Biology Tumor Growth
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