Pathogen diversity emerging from coevolutionary dynamics in interconnected systems

Fuente: arXiv
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Main Authors: Zanchetta, Davide, Bettio, Vittoria, Azaele, Sandro, De Domenico, Manlio
Format: Preprint
Published: 2026
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author Zanchetta, Davide
Bettio, Vittoria
Azaele, Sandro
De Domenico, Manlio
author_facet Zanchetta, Davide
Bettio, Vittoria
Azaele, Sandro
De Domenico, Manlio
contents The spread of infectious disease and the evolution of antigenically distinct strains are often modeled separately, despite strong feedbacks mediated by host immune memory and heterogeneous contacts. To tackle this challenging problem, we introduce a coevolutionary framework in which transmission occurs on a metapopulation network while mutational exploration of strain space follows a mutation network. In this multiscale model, cross-immunity is encoded by similarity in the latent diffusion geometry of the strain network, so that nearby strains confer partial immune protection. We first identify an effective critical region that controls the transition between extinction, recurrent outbreak episodes, and long-lived endemic persistence, thus characterizing the resulting strain-turnover dynamics. We then derive a replicator-mutator-like equation for strain composition and an explicit dynamical evolutionary landscape induced by the coupling of mutation and transmission. Finally, allowing host heterogeneity to modulate the local mutation structure, we show that spreading across demes can effectively connect otherwise disconnected components of strain space, increasing long-term endemic diversity while producing a non-monotonic change in overall prevalence. Together, our results isolate minimal mechanisms by which immune-mediated competition and network structure can shape antigenic diversification.
format Preprint
id arxiv_https___arxiv_org_abs_2603_29398
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Pathogen diversity emerging from coevolutionary dynamics in interconnected systems
Zanchetta, Davide
Bettio, Vittoria
Azaele, Sandro
De Domenico, Manlio
Populations and Evolution
The spread of infectious disease and the evolution of antigenically distinct strains are often modeled separately, despite strong feedbacks mediated by host immune memory and heterogeneous contacts. To tackle this challenging problem, we introduce a coevolutionary framework in which transmission occurs on a metapopulation network while mutational exploration of strain space follows a mutation network. In this multiscale model, cross-immunity is encoded by similarity in the latent diffusion geometry of the strain network, so that nearby strains confer partial immune protection. We first identify an effective critical region that controls the transition between extinction, recurrent outbreak episodes, and long-lived endemic persistence, thus characterizing the resulting strain-turnover dynamics. We then derive a replicator-mutator-like equation for strain composition and an explicit dynamical evolutionary landscape induced by the coupling of mutation and transmission. Finally, allowing host heterogeneity to modulate the local mutation structure, we show that spreading across demes can effectively connect otherwise disconnected components of strain space, increasing long-term endemic diversity while producing a non-monotonic change in overall prevalence. Together, our results isolate minimal mechanisms by which immune-mediated competition and network structure can shape antigenic diversification.
title Pathogen diversity emerging from coevolutionary dynamics in interconnected systems
topic Populations and Evolution
url https://arxiv.org/abs/2603.29398