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Interactions between silicate weathering and ectomycorrhiza in severely acidified forests

Rombouts, Thomas ; Van Der Bauwhede, Robrecht ; Campioli, Matteo ; Wallander, Håkan LU orcid ; Sitters, Judith and Verbruggen, Erik (2026) In Communications Earth and Environment 7(1).
Abstract

Soil acidification driven by anthropogenic nitrogen (N) deposition is a growing global threat to forest health. Aside from direct nutrient-related effects, as forest soils acidify, severe reductions in ectomycorrhizal (EcM) fungi abundance and diversity follow. This is worrisome, as EcM fungi are essential for tree nutrient acquisition and are important catalysts of mineral weathering and soil formation. Conventional remediation techniques such as dolomite liming often increase buffering too rapidly, leading to disturbed EcM fungal communities. Enhanced silicate weathering (ESW), the application of finely ground rock dust, has emerged as a more gradual, slow-release antacid. However, interactions and feedback processes between ESW and... (More)

Soil acidification driven by anthropogenic nitrogen (N) deposition is a growing global threat to forest health. Aside from direct nutrient-related effects, as forest soils acidify, severe reductions in ectomycorrhizal (EcM) fungi abundance and diversity follow. This is worrisome, as EcM fungi are essential for tree nutrient acquisition and are important catalysts of mineral weathering and soil formation. Conventional remediation techniques such as dolomite liming often increase buffering too rapidly, leading to disturbed EcM fungal communities. Enhanced silicate weathering (ESW), the application of finely ground rock dust, has emerged as a more gradual, slow-release antacid. However, interactions and feedback processes between ESW and EcM remain poorly understood. ESW may improve EcM conditions, with outcomes depending on fungal community composition and mineralogy of the applied rock dust. Because EcM also accelerates mineral weathering, we postulate a positive feedback between ESW, EcM recovery and silicate dissolution. This synergy could restore nutrient cycling and tree vitality, while stabilising soil organic carbon (SOC) through complexation onto secondary minerals. Key knowledge gaps include genetic and biogeochemical pathways underlying fungal-mineral interaction, SOC sequestration effects, and the scalability across forest types and soil conditions. Tackling these unknowns will be crucial to safeguarding forest resilience under ongoing acidification.

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author
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organization
publishing date
type
Contribution to journal
publication status
published
subject
in
Communications Earth and Environment
volume
7
issue
1
article number
436
publisher
Springer Nature
external identifiers
  • scopus:105039650596
ISSN
2662-4435
DOI
10.1038/s43247-026-03592-y
language
English
LU publication?
yes
id
54b03801-7b2b-4af5-9e39-a327720d1def
date added to LUP
2026-08-13 13:12:56
date last changed
2026-08-13 13:13:45
@article{54b03801-7b2b-4af5-9e39-a327720d1def,
  abstract     = {{<p>Soil acidification driven by anthropogenic nitrogen (N) deposition is a growing global threat to forest health. Aside from direct nutrient-related effects, as forest soils acidify, severe reductions in ectomycorrhizal (EcM) fungi abundance and diversity follow. This is worrisome, as EcM fungi are essential for tree nutrient acquisition and are important catalysts of mineral weathering and soil formation. Conventional remediation techniques such as dolomite liming often increase buffering too rapidly, leading to disturbed EcM fungal communities. Enhanced silicate weathering (ESW), the application of finely ground rock dust, has emerged as a more gradual, slow-release antacid. However, interactions and feedback processes between ESW and EcM remain poorly understood. ESW may improve EcM conditions, with outcomes depending on fungal community composition and mineralogy of the applied rock dust. Because EcM also accelerates mineral weathering, we postulate a positive feedback between ESW, EcM recovery and silicate dissolution. This synergy could restore nutrient cycling and tree vitality, while stabilising soil organic carbon (SOC) through complexation onto secondary minerals. Key knowledge gaps include genetic and biogeochemical pathways underlying fungal-mineral interaction, SOC sequestration effects, and the scalability across forest types and soil conditions. Tackling these unknowns will be crucial to safeguarding forest resilience under ongoing acidification.</p>}},
  author       = {{Rombouts, Thomas and Van Der Bauwhede, Robrecht and Campioli, Matteo and Wallander, Håkan and Sitters, Judith and Verbruggen, Erik}},
  issn         = {{2662-4435}},
  language     = {{eng}},
  number       = {{1}},
  publisher    = {{Springer Nature}},
  series       = {{Communications Earth and Environment}},
  title        = {{Interactions between silicate weathering and ectomycorrhiza in severely acidified forests}},
  url          = {{http://dx.doi.org/10.1038/s43247-026-03592-y}},
  doi          = {{10.1038/s43247-026-03592-y}},
  volume       = {{7}},
  year         = {{2026}},
}