
Chinese Journal of Applied Ecology ›› 2023, Vol. 34 ›› Issue (8): 2185-2193.doi: 10.13287/j.1001-9332.202308.012
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LENG Peng1,2, WANG Jianqing1,2*, TAN Yunyan1,2, SHAO Yajun1,2, WANG Liyan1,2, SHI Xiuzhen1,2, ZHANG Guoyou3
Received:2023-02-28
Accepted:2023-06-26
Online:2023-08-15
Published:2024-02-15
LENG Peng, WANG Jianqing, TAN Yunyan, SHAO Yajun, WANG Liyan, SHI Xiuzhen, ZHANG Guoyou. Effects of elevated carbon dioxide (CO2)and ozone (O3)concentrations on ectoenzyme activities in rice rhizospheric soil[J]. Chinese Journal of Applied Ecology, 2023, 34(8): 2185-2193.
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URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202308.012
| [1] Wang J, Hasegawa T, Li L, et al. Changes in grain protein and amino acids composition of wheat and rice under short-term increased [CO2] and temperature of canopy air in a paddy from East China. New Phytologist, 2019, 222: 726-734 [2] IPCC. Climate Change 2021: The Physical Science Basis. Contribution of Working Group Ⅰ to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge: Cambridge University Press, 2021 [3] WMO. Greenhouse Gas Bulletin: The State of Greenhouse Gases in the Atmosphere Based on Global Observations through 2018. Geneva: World Meteorological Organization, 2019 [4] Wang J, Shi X, Li L, et al. Changes in soil nematodes in rhizosphere and non-rhizosphere soils following combined elevated [CO2] and canopy warming in a winter wheat field. Geoderma, 2021, 386: 114907 [5] Ruiz-Vera UM, Siebers M, Gray SB, et al. Global warming can negate the expected [CO2] stimulation in photosynthesis and productivity for soybean grown in the Midwestern United States. Plant Physiology, 2013, 162: 410-423 [6] Gu X, Wang T, Li C. Elevated ozone decreases the multifunctionality of belowground ecosystems. Global Change Biology, 2022, 29: 890-908 [7] Li K, Hayes F, Chadwick DR, et al. Changes in microbial community composition drive the response of ecosystem multifunctionality to elevated ozone. Environmental Research, 2022, 214: 114142 [8] Wang J, Shi X, Lucas-Borja ME, et al. Soil nematode abundances drive agroecosystem multifunctionality under short-term elevated [CO2 ] and [O3]. Global Change Biology, 2022, 29: 1618-1627 [9] Cui Y, Fang L, Guo X, et al. Ecoenzymatic stoichio-metry and microbial nutrient limitation in rhizosphere soil in the arid area of the northern Loess Plateau, China. Soil Biology and Biochemistry, 2018, 116: 11-21 [10] Johanna P, Yakov K. Carbon input by roots into the soil: Quantification of rhizodeposition from root to ecosystem scale. Global Change Biology, 2018, 24: 1-12 [11] Xu H, Qu Q, Chen Y, et al. Responses of soil enzyme activity and soil organic carbon stability over time after cropland abandonment in different vegetation zones of the Loess Plateau of China. Catena, 2021, 196: 104812 [12] 梁文举, 董元华, 李英滨, 等. 土壤健康的生物学表征与调控. 应用生态学报, 2021, 32(2): 719-728 [13] Kelley AM, Fay PA, Polley HW, et al. Atmospheric [CO2] and soil extracellular enzyme activity: A meta-analysis and [CO2] gradient experiment. Ecosphere, 2011, 2: 96 [14] Phillips PR, Finzi AC, Bernhardt ES. Enhanced root exudation induces microbial feedbacks to N cycling in a pine forest under long-term [CO2] fumigation. Ecology Letters, 2011, 14: 187-194 [15] Xue S, Yang X, Liu G, et al. Effects of elevated [CO2] and drought on the microbial biomass and enzymatic activities in the rhizospheres of two grass species in Chinese loess soil. Geoderma, 2017, 286: 25-34 [16] Chen W, Zhang L, Li X, et al. Elevated ozone increases nitrifying and denitrifying enzyme activities in the rhizosphere of wheat after 5 years of fumigation. Plant and Soil, 2015, 392: 279-288 [17] Fatima A, Singh AA, Agrawal M, et al. Effect of elevated [O3] on rhizospheric enzymatic activities of ozone sensitive and tolerant wheat cultivars. Archives of Agronomy and Soil Science, 2018, 64: 1768-1776 [18] Keane JB, Hoosbeek MR, Taylor CR, et al. Soil C, N and P cycling enzyme responses to nutrient limitation under elevated [CO2]. Biogeochemistry, 2020, 151: 221-235 [19] Wang YH, Yan DH, Wang FJ, et al. Effects of elevated [CO2] and drought on plant physiology, soil carbon and soil enzyme activities. Pedosphere, 2017, 27: 846-855 [20] Thakur MP, Del Real IM, Cesarz S, et al. Soil micro-bial, nematode, and enzymatic responses to elevated [CO2], N fertilization, warming, and reduced precipitation. Soil Biology and Biochemistry, 2019, 135: 184-193 [21] Kumar A, Padhy SR, Das RR, et al. Elucidating relationship between nitrous oxide emission and functional soil microbes from tropical lowland rice soil exposed to elevated [CO2]: A path modelling approach. Agriculture, Ecosystems and Environment, 2021, 308: 107268 [22] 尹微琴, 景浩祺, 王亚波, 等. O3浓度升高对小麦根际土壤酶活性和有机酸含量的影响. 应用生态学报, 2018, 29(2): 547-553 [23] Xia L, Lam SK, Kiese R, et al. Elevated [CO2] negates [O3] impacts on terrestrial carbon and nitrogen cycles. One Earth, 2021, 4: 1752-1763 [24] Dong D, Shi C, Yan S, et al. Effects of elevated atmospheric [CO2], [O3] and soil phenanthrene on soil enzyme activities and microbial biomass. Applied Ecology and Environmental Research, 2019, 17: 8501-8512 [25] Wang J, Shi X, Tan Y, et al. Elevated [O3] exerts stronger effects than elevated [CO2] on the functional guilds of fungi, but collectively increase the structural complexity of fungi in a paddy soil. Microbial Ecology, 2022, doi: s00248-022-02124-3 [26] Shang B, Fu R, Agathokleous E, et al. Ethylenediurea offers moderate protection against ozone-induced rice yield loss under high ozone pollution. Science of the Total Environment, 2022, 806: 151341 [27] Wu J, Joergensen RG, Pommerening B, et al. Measurement of soil microbial biomass C by fumigation-extraction: An automated procedure. Soil Biology and Biochemistry, 1990, 22: 1167-1169 [28] Brookes PC, Landman A, Pruden G, et al. Chloroform fumigation and the release of soil nitrogen: A rapid direct extraction method to measure microbial biomass nitrogen in soil. Soil Biology and Biochemistry, 1985, 17: 837-842 [29] Saiya-Cork KR, Sinsabaugh RL, Zak DR. The effects of long term nitrogen deposition on extracellular enzyme activity in an Acer saccharum forest soil. Soil Biology and Biochemistry, 2002, 34: 1309-1315 [30] Liu S, Ji C, Wang C, et al. Climatic role of terrestrial ecosystem under elevated [CO2]: A bottom-up greenhouse gases budget. Ecology Letters, 2018, 21: 1108-1118 [31] 郝建朝, 吴沿友, 连宾, 等. 土壤多酚氧化酶性质研究及意义. 土壤通报, 2006, 37(3): 470-474 [32] Xiao W, Chen X, Jing X, et al. A meta-analysis of soil extracellular enzyme activities in response to global change. Soil Biology and Biochemistry, 2018, 123: 21-32 [33] Allison SD, Vitousek PM. Responses of extracellular enzymes to simple and complex nutrient inputs. Soil Biology and Biochemistry, 2005, 37: 937-944 [34] Kuzyakov Y, Horwath WR, Dorodnikov M, et al. Review and synthesis of the effects of elevated atmospheric [CO2] on soil processes: No changes in pools, but increased fluxes and accelerated cycles. Soil Biology and Biochemistry, 2019, 128: 66-78 [35] Hu E, Ren Z, Wang X, et al. Effect of elevated tropospheric ozone on soil carbon and nitrogen: A meta-analysis. Environmental Research Letters, 2022, 17: 043001 [36] Chen Z, Maltz MR, Cao J, et al. Elevated [O3] alters soil bacterial and fungal communities and the dynamics of carbon and nitrogen. Science of the Total Environment, 2019, 677: 272-280 [37] Kanerva T, Palojärvi A, Rämö K, et al. Changes in soil microbial community structure under elevated tropospheric [O3] and [CO2]. Soil Biology and Biochemistry, 2008, 40: 2502-2510 [38] Wang J, Tan Y, Shi X, et al. Simplifying network complexity of soil bacterial community exposed to short-term carbon dioxide and ozone enrichment in a paddy soil. Journal of Environmental Management, 2023, 326: 116656 [39] Hu E, Yuan Z, Zhang H, et al. Impact of elevated tropo-spheric ozone on soil C, N and microbial dynamics of winter wheat. Agriculture, Ecosystems and Environment, 2018, 253: 166-176 [40] Chen Z, Wang X, Yao F, et al. Elevated ozone changed soil microbial community in a rice paddy. Soil Science Society of America Journal, 2010, 74: 829-837 [41] Wu H, Li Q, Lu C, et al. Elevated ozone effects on soil nitrogen cycling differ among wheat cultivars. Applied Soil Ecology, 2016, 108: 187-194 [42] Kollist H, Moldau H, Mortensen L, et al. Ozone flux to plasmalemma in barley and wheat is controlled by sto-mata rather than by direct reaction of ozone with cell wall ascorbate. Journal of Plant Physiology, 2000, 156: 645-651 |
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