[1] Yang YH, Ji CJ, Ma WH, et al. Significant soil acidification across northern China’s grasslands during 1980s-2000s. Global Change Biology, 2012, 18: 2292-2300 [2] Neina D. The role of soil pH in plant nutrition and soil remediation. Applied and Environmental Soil Science, 2019, 2019: 5794869 [3] Cai JP, Luo WT, Liu HY, et al. Precipitation-mediated responses of soil acid buffering capacity to long-term nitrogen addition in a semi-arid grassland. Atmospheric Environment, 2017, 170: 312-318 [4] Chen DM, Lan ZC, Hu SJ, et al. Effects of nitrogen enrichment on belowground communities in grassland: Relative role of soil nitrogen availability vs. soil acidification. Soil Biology & Biochemistry, 2015, 89: 99-108 [5] Wright IJ, Reich PB, Westoby M, et al. The worldwide leaf economics spectrum. Nature, 2004, 428: 821-827 [6] Larson JE, Funk JL. Seedling root responses to soil moisture and the identification of a belowground trait spectrum across three growth forms. New Phytologist, 2016, 210: 827-838 [7] Kandlikar GS, Kleinhesselink AR, Kraft NJ. Functional traits predict species responses to environmental variation in a California grassland annual plant community. Journal of Ecology, 2022, 110: 833-844 [8] 冷寒冰, 苏鸣, 张春英. 锦绣杜鹃对不同光环境的光合特性响应及适应机制. 生态学杂志, 2023, 42(8): 1793-1801 [9] Poorter H, Niklas KJ, Reich PB, et al. Biomass allocation to leaves, stems and roots: Meta-analyses of interspecific variation and environmental control. New Phyto-logist, 2012, 193: 30-50 [10] Zhou SJ, Zhang M, Chen SZ, et al. Acid resistance of Masson pine (Pinus massoniana Lamb.) families and their root morphology and physiological response to simu-lated acid deposition. Scientific Reports, 2020, 10: 22066 [11] Hermans C, Conn SJ, Chen JG, et al. An update on magnesium homeostasis mechanisms in plants. Metallomics, 2013, 5: 1170-1183 [12] Singh A, Agrawal M. Acid rain and its ecological consequences. Journal of Environmental Biology, 2008, 29: 15-24 [13] 万宏伟, 杨阳, 白世勤, 等. 羊草草原群落6种植物叶片功能特性对氮素添加的响应. 植物生态学报, 2008, 32(3): 611-621 [14] Yu HL, He NP, Wang QF, et al. Development of atmospheric acid deposition in China from the 1990s to the 2010s. Environmental Pollution, 2017, 231: 182-190 [15] Yang GJ, Stevens C, Zhang ZJ, et al. Different nitrogen saturation thresholds for above-, below-, and total net primary productivity in a temperate steppe. Global Change Biology, 2023, 29: 4586-4594 [16] Pérez-Harguindeguy N, Díaz S, Garnier E, et al. New handbook for standardized measurement of plant functional traits worldwide. Australian Journal of Botany, 2013, 61: 167-234 [17] 付佳琳, 蔡江平, 刘贺永, 等. 内蒙古草甸草原植物叶片光合色素对极端干旱的响应. 中国草地学报, 2022, 44(4): 40-47 [18] Li TP, Wang RZ, Cai JP, et al. Enhanced carbon acquisition and use efficiency alleviate microbial carbon relative to nitrogen limitation under soil acidification. Ecological Processes, 2021, 10: 32 [19] Poorter H, Niinemets U, Poorter L, et al. Causes and consequences of variation in leaf mass per area (LMA): A meta-analysis. New Phytologist, 2009, 182: 565-588 [20] Chen DM, Lan ZC, Bai X, et al. Evidence that acidification-induced declines in plant diversity and producti-vity are mediated by changes in below-ground communities and soil properties in a semi-arid steppe. Journal of Ecology, 2013, 101: 1322-1334 [21] 于天一, 孙秀山, 石程仁, 等. 土壤酸化危害及防治技术研究进展. 生态学杂志, 2014, 33(11): 3137-3143 [22] Silva IR, Smyth TJ, Moxley DF, et al. Aluminum accumulation at nuclei of cells in the root tip: Fluorescence detection using lumogallion and confocal laser scanning microscopy. Plant Physiology, 2000, 123: 543-552 [23] Li Y, Sun J, Tian DS, et al. Soil acid cations induced reduction in soil respiration under nitrogen enrichment and soil acidification. Science of the Total Environment, 2018, 615: 1535-1546 [24] 尹永强, 何明雄, 邓明军. 土壤酸化对土壤养分及烟叶品质的影响及改良措施. 中国烟草科学, 2008, 29(1): 51-54 [25] Feng X, Wang RZ, Li TP, et al. Plant functional traits modulate the effects of soil acidification on above- and belowground biomass. Biogeosciences, 2024, 21: 2641-2653 [26] Kunito T, Isomura I, Sumi H, et al. Aluminum and acidity suppress microbial activity and biomass in acidic forest soils. Soil Biology and Biochemistry, 2016, 97: 23-30 [27] Wright I, Reich P, Westoby M, et al. The worldwide leaf economics spectrum. Nature, 2004, 428: 821-827 [28] Zama N, Kirkman K, Mkhize N, et al. Soil acidification in nutrient-enriched soils reduces the growth, nutrient concentrations, and nitrogen-use efficiencies of Vachellia sieberiana (DC.) Kyal. & Boatwr Saplings. Plants, 2022, 11: 3564 [29] 杨婷, 钟全林, 李宝银, 等. 短期铵态氮与硝态氮配施对刨花楠幼苗生长及叶片性状的影响. 应用生态学报, 2022, 33(1): 25-32 [30] 王一鸣, 龙胜举, 陈延, 等. 土壤酸化对景天三七叶片光合特性及超微结构的影响. 浙江农业学报, 2019, 31(6): 915-921 [31] 黄继山, 温文保, 蔺万煌, 等. 酸雨对树木叶细胞伤害的模拟研究. 林业科学研究, 2002, 15(2): 219-224 [32] Li SY, Li HX, Yang CL, et al. Rates of soil acidification in tea plantations and possible causes. Agriculture, Ecosystems and Environment, 2016, 233: 60-66 [33] 姜勇, 徐柱文, 王汝振, 等. 长期施肥和增水对半干旱草地土壤性质和植物性状的影响. 应用生态学报, 2019, 30(7): 2470-2480 |