Changes in the composition of soil microbial communities and their carbon‐cycle genes following the conversion of primary broadleaf forests to plantations and secondary forests. (23rd March 2022)
- Record Type:
- Journal Article
- Title:
- Changes in the composition of soil microbial communities and their carbon‐cycle genes following the conversion of primary broadleaf forests to plantations and secondary forests. (23rd March 2022)
- Main Title:
- Changes in the composition of soil microbial communities and their carbon‐cycle genes following the conversion of primary broadleaf forests to plantations and secondary forests
- Authors:
- Luo, Xianzhen
Wen, Dazhi
Hou, Enqing
Zhang, Lingling
Li, Yue
He, Xianjin - Abstract:
- Abstract: The soil organic carbon (C) cycle is primarily mediated by soil microorganisms and their genes that function in the C cycle (C‐cycle genes), both of which are strongly affected by land cover disturbance. However, the mechanism underlying microbially mediated soil C loss after conversion of primary natural broadleaf forests (BF) to plantation forests (PF) and secondary forests (SF) remains unknown. Here, we measured soil physicochemical properties and soil microbial community properties, and examined their linkages with microbial C‐cycle genes. Forest conversion dramatically decreased the richness of the soil fungal community but not of the bacterial community, and altered the composition of both communities. Analysis of C‐cycle genes revealed that the abundance of genes associated with C fixation, methane metabolism, and C degradation decreased by 51.3%, 57.9%, and 67.0%, respectively with the conversion of BF to PF; and by 6.3%, 4.1%, and 15.6%, respectively, with the conversion of BF to SF. The reductions in the abundance of C‐cycle genes, especially the reduction of hemicellulose‐ and lignin‐degradation genes, were primarily associated with the declines in the abundance of forest conversion‐sensitive microbes indexed by operational taxonomic units ( fsOTUs, β = 0.41). fs OTUs were taxonomically diverse and included members frequently co‐occurring with numerous other microbes in the microbial communities, indicating that the manipulation of fs OTUs by forestAbstract: The soil organic carbon (C) cycle is primarily mediated by soil microorganisms and their genes that function in the C cycle (C‐cycle genes), both of which are strongly affected by land cover disturbance. However, the mechanism underlying microbially mediated soil C loss after conversion of primary natural broadleaf forests (BF) to plantation forests (PF) and secondary forests (SF) remains unknown. Here, we measured soil physicochemical properties and soil microbial community properties, and examined their linkages with microbial C‐cycle genes. Forest conversion dramatically decreased the richness of the soil fungal community but not of the bacterial community, and altered the composition of both communities. Analysis of C‐cycle genes revealed that the abundance of genes associated with C fixation, methane metabolism, and C degradation decreased by 51.3%, 57.9%, and 67.0%, respectively with the conversion of BF to PF; and by 6.3%, 4.1%, and 15.6%, respectively, with the conversion of BF to SF. The reductions in the abundance of C‐cycle genes, especially the reduction of hemicellulose‐ and lignin‐degradation genes, were primarily associated with the declines in the abundance of forest conversion‐sensitive microbes indexed by operational taxonomic units ( fsOTUs, β = 0.41). fs OTUs were taxonomically diverse and included members frequently co‐occurring with numerous other microbes in the microbial communities, indicating that the manipulation of fs OTUs by forest management could improve soil fertility and soil C sequestration. Forest conversion‐induced shifts in fs OTUs abundance were associated with changes in soil potassium permanganate oxidizable organic carbon (PXC) concentration, dissolved organic carbon (DOC) concentration, and soil pH. Our results indicate that alterations in soil substrate supply (e.g., DOC and PXC) and soil pH induced by forest conversion may strongly shape fs OTUs structure and decrease the abundance of hemicellulose and lignin degradation genes, and consequently increase C loss. … (more)
- Is Part Of:
- Land degradation & development. Volume 33:Number 6(2022)
- Journal:
- Land degradation & development
- Issue:
- Volume 33:Number 6(2022)
- Issue Display:
- Volume 33, Issue 6 (2022)
- Year:
- 2022
- Volume:
- 33
- Issue:
- 6
- Issue Sort Value:
- 2022-0033-0006-0000
- Page Start:
- 974
- Page End:
- 985
- Publication Date:
- 2022-03-23
- Subjects:
- carbon cycling genes -- forest conversion -- microbial co‐occurrence -- network analysis -- soil microbiomes
Land degradation -- Periodicals
Soil conservation -- Periodicals
Reclamation of land -- Periodicals
Land use -- Periodicals
Economic development -- Environmental aspects -- Periodicals
333.7315 - Journal URLs:
- http://onlinelibrary.wiley.com/ ↗
- DOI:
- 10.1002/ldr.4183 ↗
- Languages:
- English
- ISSNs:
- 1085-3278
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5146.796790
British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 21283.xml