Visualization and quantification of carbon "rusty sink" by rice root iron plaque: Mechanisms, functions, and global implications. (19th August 2022)
- Record Type:
- Journal Article
- Title:
- Visualization and quantification of carbon "rusty sink" by rice root iron plaque: Mechanisms, functions, and global implications. (19th August 2022)
- Main Title:
- Visualization and quantification of carbon "rusty sink" by rice root iron plaque: Mechanisms, functions, and global implications
- Authors:
- Wei, Liang
Zhu, Zhenke
Razavi, Bahar S.
Xiao, Mouliang
Dorodnikov, Maxim
Fan, Lichao
Yuan, Hongzhao
Yurtaev, Andrey
Luo, Yu
Cheng, Weiguo
Kuzyakov, Yakov
Wu, Jinshui
Ge, Tida - Abstract:
- Abstract: Paddies contain 78% higher organic carbon (C) stocks than adjacent upland soils, and iron (Fe) plaque formation on rice roots is one of the mechanisms that traps C. The process sequence, extent and global relevance of this C stabilization mechanism under oxic/anoxic conditions remains unclear. We quantified and localized the contribution of Fe plaque to organic matter stabilization in a microoxic area (rice rhizosphere) and evaluated roles of this C trap for global C sequestration in paddy soils. Visualization and localization of pH by imaging with planar optodes, enzyme activities by zymography, and root exudation by 14 C imaging, as well as upscale modeling enabled linkage of three groups of rhizosphere processes that are responsible for C stabilization from the micro‐ (root) to the macro‐ (ecosystem) levels. The 14 C activity in soil (reflecting stabilization of rhizodeposits) with Fe 2+ addition was 1.4–1.5 times higher than that in the control and phosphate addition soils. Perfect co‐localization of the hotspots of β‐glucosidase activity (by zymography) with root exudation ( 14 C) showed that labile C and high enzyme activities were localized within Fe plaques. Fe 2+ addition to soil and its microbial oxidation to Fe 3+ by radial oxygen release from rice roots increased Fe plaque (Fe 3+ ) formation by 1.7–2.5 times. The C amounts trapped by Fe plaque increased by 1.1 times after Fe 2+ addition. Therefore, Fe plaque formed from amorphous and complex FeAbstract: Paddies contain 78% higher organic carbon (C) stocks than adjacent upland soils, and iron (Fe) plaque formation on rice roots is one of the mechanisms that traps C. The process sequence, extent and global relevance of this C stabilization mechanism under oxic/anoxic conditions remains unclear. We quantified and localized the contribution of Fe plaque to organic matter stabilization in a microoxic area (rice rhizosphere) and evaluated roles of this C trap for global C sequestration in paddy soils. Visualization and localization of pH by imaging with planar optodes, enzyme activities by zymography, and root exudation by 14 C imaging, as well as upscale modeling enabled linkage of three groups of rhizosphere processes that are responsible for C stabilization from the micro‐ (root) to the macro‐ (ecosystem) levels. The 14 C activity in soil (reflecting stabilization of rhizodeposits) with Fe 2+ addition was 1.4–1.5 times higher than that in the control and phosphate addition soils. Perfect co‐localization of the hotspots of β‐glucosidase activity (by zymography) with root exudation ( 14 C) showed that labile C and high enzyme activities were localized within Fe plaques. Fe 2+ addition to soil and its microbial oxidation to Fe 3+ by radial oxygen release from rice roots increased Fe plaque (Fe 3+ ) formation by 1.7–2.5 times. The C amounts trapped by Fe plaque increased by 1.1 times after Fe 2+ addition. Therefore, Fe plaque formed from amorphous and complex Fe (oxyhydr)oxides on the root surface act as a "rusty sink" for organic matter. Considering the area of coverage of paddy soils globally, upscaling by model revealed the radial oxygen loss from roots and bacterial Fe oxidation may trap up to 130 Mg C in Fe plaques per rice season. This represents an important annual surplus of new and stable C to the existing C pool under long‐term rice cropping. Abstract : Fe plaque formed from amorphous and complex Fe (oxyhydr)oxides on root surface act as a "rusty sink" for organic matter. Upscaling by model revealed the global significance of C preservation within Fe 3+ complexes in paddy soils. Considering the global area of paddy soils, radial oxygen loss from roots and bacterial Fe oxidation may trap up to 130 Mg C per rice season in Fe plaque. This represents an important annual surplus of new and stable C to the existing C pool under long‐term rice cropping. … (more)
- Is Part Of:
- Global change biology. Volume 28:Number 22(2022)
- Journal:
- Global change biology
- Issue:
- Volume 28:Number 22(2022)
- Issue Display:
- Volume 28, Issue 22 (2022)
- Year:
- 2022
- Volume:
- 28
- Issue:
- 22
- Issue Sort Value:
- 2022-0028-0022-0000
- Page Start:
- 6711
- Page End:
- 6727
- Publication Date:
- 2022-08-19
- Subjects:
- carbon sequestration -- enzyme activity -- Fe‐oxidizing and Fe‐reducing bacteria -- fluctuating redox conditions -- iron plaque -- rhizosphere processes
Climatic changes -- Environmental aspects -- Periodicals
Troposphere -- Environmental aspects -- Periodicals
Biodiversity conservation -- Periodicals
Eutrophication -- Periodicals
551.5 - Journal URLs:
- http://www.blackwell-synergy.com/member/institutions/issuelist.asp?journal=gcb ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1111/gcb.16372 ↗
- Languages:
- English
- ISSNs:
- 1354-1013
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4195.358330
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 24284.xml