Krishnankutty, Nandakishor and Zachar, István and Kun, Ádám and Gokhale, Chaitanya S. and Garay, József László (2026) Host-initiated microbial association leads to stable ectosymbiosis in an ecological model. PLOS COMPUTATIONAL BIOLOGY, 22 (9). ISSN 1553-734X
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journal.pcbi.1014699.pdf - Published Version Available under License Creative Commons Attribution. Download (2MB) | Preview |
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ZacharHost-initiatedlektoralaselottiutolsoverzio2024.09.08.611858v2.full.pdf - Draft Version Available under License Creative Commons Attribution Non-commercial. Download (1MB) | Preview |
Abstract
Microbial symbiosis is widespread among metabolically coupled cells; it presumably gave rise to mitochondria. However, how such symbioses emerge, evolve, and stabilize are unknown, particularly in the prokaryotic domain where endosymbiosis is virtually nonexistent. Yet there is growing evidence suggesting that mitochondria originated from such a metabolically driven prokaryotic partnership rather than phagocytotic predation. While prokaryotes almost ubiquitously engage in metabolic syntrophy, it is unknown whether syntrophy alone can enable stable physical associations that could pave the road toward physical integration. Here, we tested the hypothesis that syntrophy can transition into stable ectosymbiosis, using an ecological mathematical model. Starting from an existing syntrophic partnership between free-living hosts and symbionts, we demonstrate that population-level obligate ectosymbiosis can emerge and stabilize, even in unilateral syntrophy where only the symbiont consumes a host-produced metabolite. A key assumption is that the hosts’ by-product inhibits their growth when it accumulates. By consuming the toxic by-product, the symbiont locally reduces hosts’ self-inhibition at the contact surface, manifesting as a private benefit providing selective advantage. Our results show that due to the direct and indirect benefits, the ectosymbiotic consortium is stable against free-living forms and the consortial cooperation is ecologically selected for. Furthermore, solid metabolic coupling promotes population-level obligacy, ultimately excluding free-living individuals under stricter conditions. Our results support the hypothesis that cooperative, syntrophic microbes (particularly prokaryotes) are capable of forming stable, physical, and species-specific ectosymbiosis through inhibition reduction, providing a plausible first step toward potential, gradual endosymbiotic integration. Our work bridges the gap between models of microbial cooperation between free-living species and models that assume already-concluded, fully integrated endosymbiosis under multilevel selection.
| Item Type: | Article |
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| Additional Information: | Funding Agency and Grant Number: National Research, Development and Innovation Office [152615]; John Templeton Foundation [63451]; H2020 Marie Sklstrok;odowska-Curie Actions [955708] Funding text: This project has received funding from the European Union's Horizon 2020 Research and Innovation Programme under the Marie Sk & lstrok;odowska-Curie grant agreement number 955708 (NK, AK, CSG, JG). IZ acknowledges funding from the National Research, Development and Innovation Office under grant NKFIH ADVANCED_25 #152615 "The origin of the cell nucleus" and from the John Templeton Foundation under grant ID 63451 "Direction, agency and function in the evolution of symbiotic integration". CSG acknowledges funding from the Max Planck Society and from the Julius-Maximilians University of Wurzburg. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript. |
| Subjects: | Q Science / természettudomány > QH Natural history / természetrajz > QH301 Biology / biológia |
| SWORD Depositor: | MTMT SWORD |
| Depositing User: | MTMT SWORD |
| Date Deposited: | 22 Sep 2026 12:58 |
| Last Modified: | 22 Sep 2026 12:58 |
| URI: | https://real.mtak.hu/id/eprint/247192 |
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