[1] Yu GR, Jia YL, He NP, et al. Stabilization of atmospheric nitrogen deposition in China over the past decade. Nature Geoscience, 2019, 12: 424-429 [2] Zhang Q, Li YA, Wang MR, et al. Atmospheric nitrogen deposition: A review of quantification methods and its spatial pattern derived from the global monitoring networks. Ecotoxicology and Environmental Safety, 2021, 216: 112180 [3] Cornelissen JHC, Lang SI, Soudzilovskaia NA. Compara-tive cryptogam ecology: A review of bryophyte and lichen traits that drive biogeochemistry. Annals of Botany, 2007, 99: 987-1001 [4] Geiser LH, Jovan SE, Glavich DA, et al. Lichen-based critical loads for atmospheric nitrogen deposition in Western Oregon and Washington Forests, USA. Environmental Pollution, 2010, 158: 2412-2421 [5] Conti ME, Cecchetti G. Biological monitoring: Lichens as bioindicators of air pollution assessment: A review. Environmental Pollution, 2001, 114: 471-492 [6] Sparrius LB. Response of epiphytic lichen communities to decreasing ammonia air concentrations in a moderately polluted area of the Netherlands. Environmental Pollution, 2007, 146: 375-379 [7] Root HT, GeiserLH, FennME, et al. A simple tool for estimating throughfall nitrogen deposition in forests of western North America using lichens. Forest Ecology and Management, 2013, 306: 1-8 [8] Bermejo-Orduna R, McBride JR, Shiraishi K, et al. Biomonitoring of traffic-related nitrogen pollution using Letharia vulpina (L.) Hue in the Sierra Nevada, California. Science of the Total Environment, 2014, 490: 205-212 [9] Xu SY, Huang H, Song W, et al. Lichen nitrogen concentrations and isotopes for indicating nitrogen deposition levels and source changes. Science of the Total Environment, 2021, 787: 147616 [10] Liu XY, Koba K, Liu CQ, et al. Pitfalls and new mecha-nisms in moss isotope biomonitoring of atmospheric nitrogen deposition. Environmental Science & Technology, 2012, 46: 12557-12566 [11] Dortch Q. The interaction between ammonium and nitrate uptake in phytoplankton. Marine Ecology Progress, 1990, 61: 183-201 [12] Malerba ME, Connolly SR, Heimann K. An experimentally validated nitrate-ammonium-phytoplankton model including effects of starvation length and ammonium inhibition on nitrate uptake. Ecological Modelling, 2015, 317: 30-40 [13] Epstein E, Hagen CE. A kinetic study of the absorption of alkalications by barely roots. Plant Physiology, 1952, 27: 457-474 [14] Kirk GJD. Plant-mediated processess to acquire nutrients: Nitrogen uptake by rice plants. Plant and Soil, 2001, 232: 129-134 [15] 张超一, 樊小林. 铵态氮及硝态氮配比对香蕉幼苗氮素吸收动力学特征的影响. 中国农业科学, 2015, 48(14): 2777-2784 [16] 石峰, 魏晓雪, 冯剑丰, 等. 不同无机氮条件下一种硅藻的氮吸收动力学及模型预测分析. 农业环境科学学报, 2018, 37(9): 1833-1841 [17] Wang CH, Wang M, Jia RZ, et al. Thalli growth, propagule survival, and integrated physiological response to nitrogen stress of Ramalina calicaris var. japonica in Shennongjia Mountain (China). Frontiers in Plant Science, 2018, 9: 568-577 [18] Gaio-Oliveira G, Dahlman L, Palmqvist K, et al. Nitrogen uptake in relation to excess supply and its effects on the lichens Evernia prunastri (L.) Ach and Xanthoria parietina (L.) Th. Fr. Planta, 2005, 220: 794-803 [19] Tozer WC, Hackell D, Miers DB, et al. Extreme isoto-pic depletion of nitrogen in New Zealand lithophytes and epiphytes: The result of diffusive uptake of atmospheric ammonia? Oecologia, 2005, 144: 628-635 [20] Munzi S, Pirintsos SA, Loppi S. Chlorophyll degradation and inhibition of polyamine biosynthesis in the lichen Xanthoria parietina under nitrogen stress. Ecotoxicology and Environmental Safety, 2009, 72: 281-285 [21] Palmqvist K, Dahlman L. Responses of the green algal foliose lichen Platismatia glauca to increased nitrogen supply. New Phytologist, 2006, 171: 343-356 [22] Britton JA, Fisher MJ. Terricolous alpine lichens are sensitive to both load and concentration of applied nitrogen and have potential as bioindicators of nitrogen deposition. Environmental Pollution, 2010, 158: 1296-1302 [23] Hyvarinen M, Crittenden PD. Relationships between atmospheric nitrogen inputs and the vertical nitrogen and phosphorus concentration gradients in the lichen Cladonia portentosa. New Phytologist, 2010, 140: 519-530 [24] Remke E, Brouwer E, Kooijman A, et al. Even low to medium nitrogen deposition impacts vegetation of dry, coastal dunes around the Baltic Sea. Environmental Pollution, 2008, 157: 792-800 [25] Hauck M. Ammonium and nitrate tolerance in lichens. Environmental Pollution, 2010, 158: 1127-1133 [26] Wolfgang W, Katja P. Short-term 15N uptake kinetics and nitrogen nutrition of bryophytes in a lowland rainforest, Costa Rica. Functional Plant Biology, 2008, 35: 51-62 [27] Liu XY, Koba K, Yoh M, et al. Nitrogen and oxygen isotope effects of tissue nitrate associated with nitrate acquisition and utilisation in the moss Hypnum plumaeforme. Functional Plant Biology, 2012, 39: 598-608 [28] Dahlman L, Persson J, Palmqvist K, et al. Organic and inorganic nitrogen uptake in lichens. Planta, 2004, 219: 459-467 [29] Johansson O, Olofsson J, Giesler R, et al. Lichen responses to nitrogen and phosphorus additions can be explained by the different symbiont responses. New Phytologist, 2011, 191: 795-805 [30] Brown DH, Miller JE. Studies of ammonia uptake and loss by lichens. Lichenologist, 1999, 31: 85-93 [31] Crittenden PD. The effect of oxygen deprivation on inorganic nitrogen uptake in an Antarctic macrolichen. Lichenologist, 1996, 28: 347 [32] 霍常富, 孙海龙, 范志强, 等. 根系氮吸收过程及其主要调节因子. 应用生态学报, 2007, 18(6): 1356-1364 [33] Yan Y, Zhang ZH, Sun HW, et al. Nitrate confers rice adaptation to high ammonium by suppressing its uptake but promoting its assimilation. Molecular Plant, 2023, 16: 1871-1874 [34] Xiao CB, Sun DD, Liu BB, et al. Nitrate transporter NRT1.1 and anion channel SLAH3 form a functional unit to regulate nitrate-dependent alleviation of ammo-nium toxicity. Journal of Integrative Plant Biology, 2022, 64: 942-957 [35] 刘婷, 尚忠林. 植物对铵态氮的吸收转运调控机制研究进展. 植物生理学报, 2016, 52(6): 799-809 [36] Johansson O, Palmqvist K, Olofsson J. Nitrogen deposition drives lichen community changes through differential species responses. Global Change Biology, 2012, 18: 2626-2635 [37] 李庆余, 徐新娟, 顾海龙, 等. 氮素形态对樱桃番茄果实发育中氮代谢的影响. 应用生态学报, 2010, 21(9): 2335-2341 [38] Liu XY, Koba K, Takebayashi Y, et al. Dual N and O isotopes of nitrate in natural plants: First insights into individual variability and organ-specific patterns. Biogeochemistry, 2013, 114: 399-411 [39] Li S, Yan L, Zhang W, et al. Nitrate alleviates ammonium toxicity in Brassica napus by coordinating rhizosphere and cell pH and ammonium assimilation. Plant Journal, 2024, 117: 786-804 |