Dynamic workforce modulation and foraging efficiency in Eusocial insect colonies

Understanding the fitness advantages conferred by eusociality remains a central challenge in behavioral ecology. One promising approach is to identify collective strategies that shift efficiency within social groups. Here, we explore the hypothesis that reserve workforces in ant colonies represent an adaptive mechanism that enhances flexibility and foraging efficiency under fluctuating environmental conditions. We examine how departure and return rates of foragers modulate such reserve workers and how these time-dependent dynamics shape the colony’s overall energetic balance. By integrating an energetic-balance framework with stochastic search simulations inspired by empirical results from four colonies of Aphaenogaster senilis ants, we quantify the energetic requirements for colony viability, incorporating energy intake, search costs, and basal metabolic demands. Our results show that as colonies grow, maintaining a positive energy balance requires a disproportionately larger relative workforce. By modulating departure and return rates over time, colonies control the synchrony of their collective search and efficiently activate or suppress their reserve workforce to scale foraging effort as needed. These findings suggest that the “lazy” or weakly engaged workers commonly observed in large colonies function as an essential reserve that stabilizes colony energetics and enhances responsiveness. Together, our results provide a functional explanation for sublinear metabolic scaling in eusocial groups and highlight workforce modulation as a key factor underlying their energetic stability and evolutionary success.

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Publication Details

Journal
PLoS Computational Biology
Published
2026-10-09
DOI
https://doi.org/10.1371/journal.pcbi.1014258
Primary Topic
Insect and Arachnid Ecology and Behavior
Type
article
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article

Dynamic workforce modulation and foraging efficiency in Eusocial insect colonies

Javier Cristín, Daniel Campos, Meritxell Genovart, Pol Fernández-López et al.
PLoS Computational Biology
Insect and Arachnid Ecology and Behavior
article

Dynamic workforce modulation and foraging efficiency in Eusocial insect colonies

Javier Cristín, Daniel Campos, Meritxell Genovart, Pol Fernández-López, Roger Lloret‐Cabot, Frederic Bartumeus
article en

Abstract

Understanding the fitness advantages conferred by eusociality remains a central challenge in behavioral ecology. One promising approach is to identify collective strategies that shift efficiency within social groups. Here, we explore the hypothesis that reserve workforces in ant colonies represent an adaptive mechanism that enhances flexibility and foraging efficiency under fluctuating environmental conditions. We examine how departure and return rates of foragers modulate such reserve workers and how these time-dependent dynamics shape the colony’s overall energetic balance. By integrating an energetic-balance framework with stochastic search simulations inspired by empirical results from four colonies of Aphaenogaster senilis ants, we quantify the energetic requirements for colony viability, incorporating energy intake, search costs, and basal metabolic demands. Our results show that as colonies grow, maintaining a positive energy balance requires a disproportionately larger relative workforce. By modulating departure and return rates over time, colonies control the synchrony of their collective search and efficiently activate or suppress their reserve workforce to scale foraging effort as needed. These findings suggest that the “lazy” or weakly engaged workers commonly observed in large colonies function as an essential reserve that stabilizes colony energetics and enhances responsiveness. Together, our results provide a functional explanation for sublinear metabolic scaling in eusocial groups and highlight workforce modulation as a key factor underlying their energetic stability and evolutionary success.

PLoS Computational BiologyVol. 22(10)
Institució Catalana de Recerca i Estudis Avançats (ES), Universitat Autònoma de Barcelona (ES), Consejo Superior de Investigaciones Científicas (ES), Centre d'Estudis Avançats de Blanes (ES), Centre for Research on Ecology and Forestry Applications (ES)
Openalex Percentile: Top 14%
Insect and Arachnid Ecology and Behavior
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