Accelerated growth increases the somatic epimutation rate in trees

M Ming Zhou (Centre for Catalysis and Clean Energy, Gold Coast Campus) G Gerhard Schmied B Binh Thanh Vo M Monika Bradatsch G Giulia Resente R Rashmi Hazarika I Ioanna Kakoulidou M Maria-Cecília Costa M Michele Serra R Richard L. Peters (School of Life Sciences Technische Universität München) E Enno Uhl R Robert J. Schmitz (Department of Genetics, University of Georgia) T Torben Hilmers A Astor Toraño Caicoya A Alan Crivellaro H Hans Pretzsch F Frank Johannes

Abstract

Abstract Trees are integral to ecosystems and hold considerable economic importance. Their exceptional longevity and modular structure also make them valuable models for studying the long-term accumulation of somatic mutations and epimutations in plants. Empirical evidence indicates that the annual rate of these stochastic events correlates negatively with generation time, suggesting that species with long lifespans have evolved mechanisms to mitigate the build-up of deleterious somatic variants. It has been hypothesized that this reduction is achieved by slowing growth and minimizing the number of cell divisions per unit time, thereby reducing errors associated with DNA replication. However, a direct test of this “mitotic-rate hypothesis” remains technically challenging. Here we take advantage of a 150 year-old experiment in European beech to show that a thinning-induced growth acceleration increases the annual rate of somatic epimutations in main stems and lateral branches of trees. We demonstrate that this effect is accompanied by a proportional increase in the rate of cell divisions per unit time. These findings support the notion that life-history constraints on growth rates in trees are not merely a trade-off between resource allocation and structural stability but also a strategy to preserve genetic and epigenetic fidelity over extended lifespans.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 27, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

M

Ming Zhou

Centre for Catalysis and Clean Energy, Gold Coast Campus

G

Gerhard Schmied

B

Binh Thanh Vo

M

Monika Bradatsch

G

Giulia Resente

R

Rashmi Hazarika

I

Ioanna Kakoulidou

M

Maria-Cecília Costa

M

Michele Serra

R

Richard L. Peters

School of Life Sciences Technische Universität München

E

Enno Uhl

R

Robert J. Schmitz

Department of Genetics, University of Georgia

T

Torben Hilmers

A

Astor Toraño Caicoya

A

Alan Crivellaro

H

Hans Pretzsch

F

Frank Johannes