Minimising mutation load as a mechanism for low-dose hyper-radiosensitivity and induced radioresistance

Low-dose hyper-radiosensitivity (HRS) and induced radioresistance (IRR) are unexpected features of cellular survival curves that challenge classical radiobiological models. While often interpreted phenomenologically, their underlying biological purpose remains unclear. Here we propose that these effects reflect an evolved strategy by which tissues minimise mutational burden through context-dependent cell elimination. We introduce the Minimum Mutation Load (MML) model, a principle-based framework in which irradiated cells assess their survival based on local intercellular signals that reflect neighbourhood damage. This cooperative behaviour balances the benefit of removing highly damaged cells with the mutational cost of their replacement. Using a curated dataset of 99 clonogenic survival experiments, we show that the MML model replicates key features of HRS and IRR across diverse conditions, with an average adjusted R² of 0.74, and performs comparably to the established Induced Repair (IR) model. Unlike the IR model, which is phenomenological, the MML model provides biologically interpretable parameters with independent theoretical grounding. The model suggests that mutation minimisation may be an organising principle of tissue homeostasis. These findings support a new conceptual framework in which tissue-level cooperation, rather than purely cell-intrinsic responses, governs somatic maintenance and cancer suppression.

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Publication Details

Journal
Scientific Reports
Published
2026-08-25
DOI
https://doi.org/10.1038/s41598-026-65215-y
Citations
1
Primary Topic
Effects of Radiation Exposure
Type
article
Field-Weighted Citation Impact
6.32

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article

Minimising mutation load as a mechanism for low-dose hyper-radiosensitivity and induced radioresistance

Balázs G. Madas, Szabolcs Polgár
1 citations
Scientific Reports
Effects of Radiation Exposure
6.32
article

Minimising mutation load as a mechanism for low-dose hyper-radiosensitivity and induced radioresistance

Balázs G. Madas, Szabolcs Polgár
article en
1 citations

Abstract

Low-dose hyper-radiosensitivity (HRS) and induced radioresistance (IRR) are unexpected features of cellular survival curves that challenge classical radiobiological models. While often interpreted phenomenologically, their underlying biological purpose remains unclear. Here we propose that these effects reflect an evolved strategy by which tissues minimise mutational burden through context-dependent cell elimination. We introduce the Minimum Mutation Load (MML) model, a principle-based framework in which irradiated cells assess their survival based on local intercellular signals that reflect neighbourhood damage. This cooperative behaviour balances the benefit of removing highly damaged cells with the mutational cost of their replacement. Using a curated dataset of 99 clonogenic survival experiments, we show that the MML model replicates key features of HRS and IRR across diverse conditions, with an average adjusted R² of 0.74, and performs comparably to the established Induced Repair (IR) model. Unlike the IR model, which is phenomenological, the MML model provides biologically interpretable parameters with independent theoretical grounding. The model suggests that mutation minimisation may be an organising principle of tissue homeostasis. These findings support a new conceptual framework in which tissue-level cooperation, rather than purely cell-intrinsic responses, governs somatic maintenance and cancer suppression.

Scientific ReportsVol. 16(1)
Eötvös Loránd University (HU), HUN-REN Centre for Energy Research (HU)
Magyar Tudományos Akadémia, Innovációs és Technológiai Minisztérium, Euratom Research and Training Programme, Nemzeti Kutatási, Fejlesztési és Innovaciós Alap
Openalex Percentile: Top 10%
Effects of Radiation Exposure
6.32
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