Identifying Carbon-Degrading Enzyme Activities in Association with Soil Organic Carbon Accumulation Under Land-Use Changes

被引:11
作者
Wu, Junjun [1 ]
Cheng, Xiaoli [2 ]
Luo, Yiqi [3 ]
Liu, Wenzhi [1 ]
Liu, Guihua [1 ]
机构
[1] Chinese Acad Sci, Key Lab Aquat Bot & Watershed Ecol, Wuhan Bot Garden, Wuhan 430074, Peoples R China
[2] Yunnan Univ, Sch Ecol & Environm Sci, Kunming 650091, Yunnan, Peoples R China
[3] No Arizona Univ, Ctr Ecosyst Sci & Soc, Dept Biol Sci, Flagstaff, AZ 86011 USA
基金
中国国家自然科学基金;
关键词
Cellulase; Land-use change; Ligninase; Meta-analysis; Soil organic carbon; Specific enzyme activity; MICROBIAL COMMUNITY STRUCTURE; USE EFFICIENCY; ECOENZYMATIC STOICHIOMETRY; TROPICAL FOREST; MATTER; DYNAMICS; DECOMPOSITION; LITTER; SEQUESTRATION; STABILIZATION;
D O I
10.1007/s10021-021-00711-y
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Land degradation and restoration strongly influence terrestrial soil organic carbon (SOC) dynamics. However, the underlying mechanisms are not well understood. Here, based on a meta-analysis of 803 observations from 138 studies worldwide, our data analyses suggest that C-degrading enzymes play a crucial role in regulating SOC dynamics under land degradation and restoration. Our result showed that decreased cellulase activity but unchanged ligninase activity was associated with land degradation, whereas higher increased cellulase activity compared with ligninase activity was associated with land restoration. Consequently, the ligninase-to-cellulase ratios were higher under land degradation and lower under land restoration. Also, the specific enzyme activity (the amount of enzyme produced per unit microbial biomass) was greater under land degradation but lower under land restoration. By comparison with the short-term (<= 30) land degradation, the long-term (> 30 years) land degradation significantly increased the ligninase-to-cellulase ratio. On the contrary, the long-term land restoration exerted a more negative effect on the ligninase-to-cellulase ratio. The increases in the specific enzyme activity and ligninase-to-cellulase ratio were tightly correlated with decreases in SOC content under land degradation. A similar correlation was also found between decreases in specific enzyme activity and ligninase-to-cellulase ratio and increases in SOC content under land restoration. Overall, the decrease of SOC storage under land degradation is not only due to the low plant inputs, but also likely because of the accelerated degradation of recalcitrant C pools. However, the reverse applies for land restoration. The novel insights provided by our results contribute to the understanding of microbial mechanisms underlying the changes in SOC accumulation in response to land-use changes.
引用
收藏
页码:1219 / 1233
页数:15
相关论文
共 94 条
[1]   Losses of Soil Organic Carbon with Deforestation in Mangroves of Madagascar [J].
Arias-Ortiz, Ariane ;
Masque, Pere ;
Glass, Leah ;
Benson, Lisa ;
Kennedy, Hilary ;
Duarte, Carlos M. ;
Garcia-Orellana, Jordi ;
Benitez-Nelson, Claudia R. ;
Humphries, Marc S. ;
Ratefinjanahary, Ismael ;
Ravelonjatovo, Jaona ;
Lovelock, Catherine E. .
ECOSYSTEMS, 2021, 24 (01) :1-19
[2]   Lignin degradation during a laboratory incubation followed by 13C isotope analysis [J].
Bahri, H. ;
Rasse, D. P. ;
Rumpel, C. ;
Dignac, M. -F. ;
Bardoux, G. ;
Mariotti, A. .
SOIL BIOLOGY & BIOCHEMISTRY, 2008, 40 (07) :1916-1922
[3]   A meta-analysis of experimental warming effects on terrestrial nitrogen pools and dynamics [J].
Bai, Edith ;
Li, Shanlong ;
Xu, Wenhua ;
Li, Wei ;
Dai, Weiwei ;
Jiang, Ping .
NEW PHYTOLOGIST, 2013, 199 (02) :441-451
[4]   Soil enzymes in a changing environment: Current knowledge and future directions [J].
Burns, Richard G. ;
DeForest, Jared L. ;
Marxsen, Juergen ;
Sinsabaugh, Robert L. ;
Stromberger, Mary E. ;
Wallenstein, Matthew D. ;
Weintraub, Michael N. ;
Zoppini, Annamaria .
SOIL BIOLOGY & BIOCHEMISTRY, 2013, 58 :216-234
[5]   Recovery of biochemical functionality in polluted flood-plain soils:: The role of microhabitat differentiation through revegetation and rehabilitation of the river dynamics [J].
Carreira, J. A. ;
Vinegla, B. ;
Garcia-Ruiz, R. ;
Ochoa, V. ;
Hinojosa, M. B. .
SOIL BIOLOGY & BIOCHEMISTRY, 2008, 40 (09) :2088-2097
[6]   Soil physical changes induced by sugarcane cultivation in the Atlantic Forest biome, northeastern Brazil [J].
Cavalcanti, Roberta Q. ;
Rolim, Mario M. ;
de Lima, Renato P. ;
Tavares, Uilka E. ;
Pedrosa, Elvira M. R. ;
Cherubin, Mauricio R. .
GEODERMA, 2020, 370
[7]   Linking microbial functional gene abundance and soil extracellular enzyme activity: Implications for soil carbon dynamics [J].
Chen, Ji ;
Sinsabaugh, Robert L. .
GLOBAL CHANGE BIOLOGY, 2021, 27 (07) :1322-1325
[8]   Soil carbon loss with warming: New evidence from carbon-degrading enzymes [J].
Chen, Ji ;
Elsgaard, Lars ;
van Groenigen, Kees Jan ;
Olesen, Jurgen E. ;
Liang, Zhi ;
Jiang, Yu ;
Laerke, Pout E. ;
Zhang, Yuefang ;
Luo, Yiqi ;
Hungate, Bruce A. ;
Sinsabaugh, Robert L. ;
Jorgensen, Uffe .
GLOBAL CHANGE BIOLOGY, 2020, 26 (04) :1944-1952
[9]   A keystone microbial enzyme for nitrogen control of soil carbon storage [J].
Chen, Ji ;
Luo, Yiqi ;
van Groenigen, Kees Jan ;
Hungate, Bruce A. ;
Cao, Junji ;
Zhou, Xuhui ;
Wang, Rui-wu .
SCIENCE ADVANCES, 2018, 4 (08)
[10]   Differential responses of carbon-degrading enzyme activities to warming: Implications for soil respiration [J].
Chen, Ji ;
Luo, Yiqi ;
Garcia-Palacios, Pablo ;
Cao, Junji ;
Dacal, Marina ;
Zhou, Xuhui ;
Li, Jianwei ;
Xia, Jianyang ;
Niu, Shuli ;
Yang, Huiyi ;
Shelton, Shelby ;
Guo, Wei ;
van Groenigen, Kees Jan .
GLOBAL CHANGE BIOLOGY, 2018, 24 (10) :4816-4826