Rice rhizodeposition promotes the build-up of organic carbon in soil via fungal necromass

被引:66
|
作者
Luo, Yu [1 ]
Xiao, Mouliang [2 ,3 ]
Yuan, Hongzhao [2 ]
Liang, Chao [4 ]
Zhu, Zhenke [2 ]
Xu, Jianming [1 ]
Kuzyakov, Yakov [1 ,5 ,6 ,8 ]
Wu, Jinshui [2 ]
Ge, Tida [2 ,3 ]
Tang, Caixian [7 ]
机构
[1] Zhejiang Univ, Inst Soil & Water Resources & Environm Sci, Zhejiang Prov Key Lab Agr Resources & Environm, Hangzhou 310058, Peoples R China
[2] Chinese Acad Sci, Inst Subtrop Agr, Key Lab Agroecol Proc Subtrop Reg, Changsha 410125, Hunan, Peoples R China
[3] Ningbo Univ, Inst Plant Virol, State Key Lab Managing Biot & Chem Threats Qual &, Ningbo 315211, Peoples R China
[4] Chinese Acad Sci, Inst Appl Ecol, Shenyang 110016, Peoples R China
[5] Univ Gottingen, Dept Soil Sci Temperate Ecosyst, Dept Agr Soil Sci, D-37077 Gottingen, Germany
[6] RUDN Univ, Agrotechnol Inst, Moscow 117198, Russia
[7] La Trobe Univ, Ctr AgriBiosci, Dept Anim Plant & Soil Sci, Melbourne Campus, Bundoora, Vic 3086, Australia
[8] Kazan Fed Univ, Inst Environm Sci, Kazan 420049, Russia
来源
基金
中国国家自然科学基金; 澳大利亚研究理事会;
关键词
Microbial necromass; N fertilization; PLFA-SIP; Amino sugars; Rhizosphere processes; Elevated CO2; Continuous (CO2)-C-13 labeling; MICROBIAL COMMUNITY STRUCTURE; PADDY SOIL; ASSIMILATED CARBON; ELEVATED CO2; ATMOSPHERIC CO2; ROOT RESIDUES; MURAMIC ACID; AMINO-SUGARS; MATTER; RHIZOSPHERE;
D O I
10.1016/j.soilbio.2021.108345
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Rice rhizodeposition plays an important role in carbon sequestration in paddy soils. However, the pathways through which rice rhizodeposits contribute to soil organic C (SOC) formation are poorly understood because of specific paddy soil conditions. Furthermore, microbial necromass has been largely ignored in studies examining the contribution of rhizodeposits to C sequestration during plant growth. To evaluate the contribution of microbial necromass to SOC formation via rhizodeposition, rice (Oryza sativa L.) plants were continuously labeled with 13CO2 for 38 days under ambient (aCO2, 400 mu L L-1) or elevated CO2 (eCO2, 800 mu L L-1) in a paddy field at two levels of N fertilization. The distributions of photosynthetic-13C in the shoots and roots, microbial communities, and SOC fractions were quantified. eCO2 increased plant growth and, consequently, the total 13C incorporated into the shoots, roots, and SOC compared to aCO2, while N fertilization (100 kg N ha-1) decreased root biomass and rhizodeposits in the soil and microbial pools, including living biomass (phospholipid fatty acids, PLFA) and microbial necromass (amino sugars). Rhizodeposits were initially immobilized mainly by bacteria and preferentially recovered in fungal necromass (glucosamine). While 13C incorporation into PLFAs was slightly increased during plant growth, 13C in microbial necromass increased greatly between the tillering and booting stages. Fungal necromass, which is less decomposable compared to bacterial residues, was the largest contributor to C sequestration with rhizodeposits via the mineral-associated SOC fraction, particularly under elevated CO2 without N fertilization. This study reveals the significance of the C pathways from rhizodeposits through fungal necromass and organo-mineral associations for the build up of SOC in paddy fields.
引用
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页数:9
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