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Invasion and fixation of microbial dormancy traits under competitive pressure

Blath, Jochen and Tóbiás, András József (2020) Invasion and fixation of microbial dormancy traits under competitive pressure. STOCHASTIC PROCESSES AND THEIR APPLICATIONS, 130 (12). pp. 7363-7395. ISSN 0304-4149

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Abstract

Microbial dormancy is an evolutionary trait that has emerged independently at various positions across the tree of life. It describes the ability of a microorganism to switch to a metabolically inactive state that can withstand unfavourable conditions. However, maintaining such a trait requires additional resources that could otherwise be used to increase e.g. reproductive rates. In this paper, we aim for gaining a basic understanding under which conditions maintaining a seed bank of dormant individuals provides a “fitness advantage” when facing resource limitations and competition for resources among individuals (in an otherwise stable environment). In particular, we wish to understand when an individual with a “dormancy trait” can invade a resident population lacking this trait despite having a lower reproduction rate than the residents. To this end, we follow a stochastic individual-based approach employing birth-and-death processes, where dormancy is triggered by competitive pressure for resources. In the large-population limit, we identify a necessary and sufficient condition under which a complete invasion of mutants has a positive probability. Further, we explicitly determine the limiting probability of invasion and the asymptotic time to fixation of mutants in the case of a successful invasion. In the proofs, we observe the three classical phases of invasion dynamics in the guise of Coron et al. (2017, 2019). ⃝c 2020 Elsevier B.V. All rights reserved.

Item Type: Article
Additional Information: Export Date: 18 August 2025; Cited By: 15; Correspondence Address: A. Tóbiás; TU Berlin, Berlin, Straße des 17. Juni 136, 10623, Germany; email: tobias@math.tu-berlin.de; CODEN: STOPB
Uncontrolled Keywords: Dormancy; Seed bank; Competition-induced switching; Individual-based stochastic population model; Multitype branching process; Lotka–Volterra type system
Subjects: Q Science / természettudomány > QH Natural history / természetrajz > QH301 Biology / biológia
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 04 Sep 2025 08:31
Last Modified: 04 Sep 2025 08:31
URI: https://real.mtak.hu/id/eprint/223395

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