Asynchrony and functional diversity couple herbivore community dynamics to host plant diversity

M Ming-Qiang Wang G Georg Albert C Carlo L. Seifert D Douglas Chesters H Helge Bruelheide (Institute of Biology/Geobotany and Botanical Garden, Martin Luther University Halle-Wittenberg) Y Yi Li J Jing-Ting Chen A Andréa Davrinche (Research Center for Ecological Change, Organismal and Evolutionary Research Programme, Faculty of Biological and Environmental Sciences) S Sylvia Haider (Vegetation Ecology and Biodiversity Conservation Group, Institute of Ecology, Leuphana University of Lüneburg) S Shan Li (Institute of Solid State Chemistry, Department of Physical Chemistry, Beijing Advanced Innovation Center for Materials Genome Engineering) G Goddert von Oheimb (Institute of General Ecology and Environmental Protection, Technische Universität Dresden) T Tobias Proß K Keping Ma X Xiaojuan Liu (Spin-X Institute, School of Chemistry and Chemical Engineering, State Key Laboratory of Luminescent Materials and Devices) A Arong Luo A Andreas Schuldt C Chao-Dong Zhu

Abstract

Abstract Biodiversity loss can destabilize ecosystem functioning. How biodiversity–stability relationships are interlinked across trophic levels remains poorly investigated, however, limiting our ability to predict ecosystem-level consequences of declining biodiversity. Here, we analyze the drivers of multi-year herbivore community stability—as a key connector between primary producers and higher trophic levels—and its coupling with host tree diversity and growth stability along a subtropical tree diversity gradient. Phylogenetic diversity, abundance asynchrony and population stability of herbivores emerge as key intra-community regulators of herbivore temporal stability. These regulators, in turn, are strongly affected by changes in tree species richness through tree functional diversity, tree growth asynchrony, and tree growth population stability. Importantly, accounting for herbivore dietary specialization unveils clear stabilizing effects of tree species richness on the community stability of specialists but not of generalists. For the overall herbivore community, higher tree richness results in less stable abundance dynamics. Our findings suggest that biodiversity loss will propagate bottom-up to affect the stability of communities at higher trophic levels, and particularly destabilize communities of more vulnerable specialists. Global change and plantation management may thus also compromise biodiversity conservation by reducing abundance and species richness stability of higher trophic levels.

Article Details

Volume / Issue Vol. 17, Issue 1
Published January 15, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

M

Ming-Qiang Wang

G

Georg Albert

C

Carlo L. Seifert

D

Douglas Chesters

H

Helge Bruelheide

Institute of Biology/Geobotany and Botanical Garden, Martin Luther University Halle-Wittenberg

Y

Yi Li

J

Jing-Ting Chen

A

Andréa Davrinche

Research Center for Ecological Change, Organismal and Evolutionary Research Programme, Faculty of Biological and Environmental Sciences

S

Sylvia Haider

Vegetation Ecology and Biodiversity Conservation Group, Institute of Ecology, Leuphana University of Lüneburg

S

Shan Li

Institute of Solid State Chemistry, Department of Physical Chemistry, Beijing Advanced Innovation Center for Materials Genome Engineering

G

Goddert von Oheimb

Institute of General Ecology and Environmental Protection, Technische Universität Dresden

T

Tobias Proß

K

Keping Ma

X

Xiaojuan Liu

Spin-X Institute, School of Chemistry and Chemical Engineering, State Key Laboratory of Luminescent Materials and Devices

A

Arong Luo

A

Andreas Schuldt

C

Chao-Dong Zhu