[1] 金凤新, 徐永波, 张芸慧. 大兴安岭林区外来树种引种中试可行性研究. 林业调查规划, 2007, 32(5): 37-40 [2] 齐明文. 大兴安岭国有林区生态保护与经济转型面临的问题及对策. 现代园艺, 2020, 43(14): 225-226 [3] McCormack ML, Dickie IA, Eissenstat DM, et al. Redefining fine roots improves understanding of below-ground contributions to terrestrial biosphere processes. New Phytologist, 2015, 207: 505-518 [4] 魏庐潞, 徐婷婷, 马周娟, 等. 同质园环境下不同种源鬼箭锦鸡儿根叶功能性状差异. 应用生态学报, 2024, 35(11): 3005-3014 [5] Freschet GT, Roumet C, Comas LH, et al. Root traits as drivers of plant and ecosystem functioning: Current understanding, pitfalls and future research needs. New Phytologist, 2021, 232: 1123-1158 [6] Schneider HM, Lynch JP. Should root plasticity be a crop breeding target? Frontiers in Plant Science, 2020, 11: 546 [7] Pregitzer KS, DeForest JL, Burton AJ, et al. Fine root architecture of nine North American trees. Ecological Monographs, 2002, 72: 293-309 [8] 黄锦学, 吴帆, 梁天豪, 等. 土壤增温对中亚热带格氏栲天然林细根化学计量学特征的影响. 应用生态学报, 2025, 36(11): 3256-3264 [9] Guo DL, Xia MX, Wei X, et al. Anatomical traits associated with absorption and mycorrhizal colonization are linked to root branch order in twenty-three Chinese temperate tree species. New Phytologist, 2008, 180: 673-683 [10] 周诚, 刘彤, 王庆贵, 等. 长期氮添加对阔叶红松林细根形态、解剖结构和化学组分的影响. 北京林业大学学报, 2022, 44(11): 31-40 [11] Qin Y, Fu MY, Jin GZ, et al. Large seasonal variation in fine root economics, ectomycorrhizal and hydraulic strategies in Pinus koraiensis: Partly dependent on tree life stages and root orders. Journal of Ecology, 2026, 114: e70256 [12] 司洪生. 关于我国红松分类与分布的探讨. 林业科技通讯, 2015(8): 3-5 [13] 李东亮, 王本俊, 王瑞杰, 等. 内蒙古大兴安岭栽培红松的研究. 植物研究, 2000, 20(3): 294-299 [14] 赵光仪, 侯爱菊, 杨春田. 大兴安岭引种红松的商榷. 林业科学, 1991, 27(2): 149-153 [15] 张桂梅, 王志田. 红松引种中间试验研究. 内蒙古林业科技, 2004, 30(3): 14-16 [16] 林立. 内蒙古大兴安岭林区红松引进试验基本成功. 内蒙古林业, 1987(10): 27 [17] 包雪峰, 张树涛, 徐小梅, 等. 内蒙古大兴安岭东南部林区红松引种可行性分析. 内蒙古林业, 2015(6): 27 [18] 黄波, 杨立学, 李凡, 等. 石质陡坡条件下红松和樟子松的细根适应策略. 应用生态学报, 2026, 37(5): 1422-1430 [19] 陈晨, 杨雨春, 申方圆, 等. 间伐对红松吸收根功能性状的影响. 生态学报, 2025, 45(8): 3969-3977 [20] Kong DL, Wang JJ, Wu HF, et al. Nonlinearity of root trait relationships and the root economics spectrum. Nature Communications, 2019, 10: 2203 [21] Reich PB. The world-wide ‘fast-slow’ plant economics spectrum: A traits manifesto. Journal of Ecology, 2014, 102: 275-301 [22] Bergmann J, Weigelt A, van der Plas F, et al. The fungal collaboration gradient dominates the root economics space in plants. Science Advances, 2020, 6: eaba3756 [23] Kou L, Zuo WY, Freschet GT, et al. Toward refining and contextualizing the root economics space. Trends in Ecology & Evolution, 2026, 41: 416-426 [24] Lipson DA, Bowman WD, Monson RK. Luxury uptake and storage of nitrogen in the rhizomatous alpine herb, Bistorta bistortoides. Ecology, 1996, 77: 1277-1285 [25] Chapin FS Ⅲ. The mineral nutrition of wild plants. Annual Review of Ecology and Systematics, 1980, 11: 233-260 [26] Zeng J, Li XY, Xing LH, et al. Soil nitrogen regulates root carbon secretion in the context of global change: A global meta-analysis. Functional Ecology, 2024, 38: 2067-2080 [27] Rog I, Hilman B, Fox H, et al. Increased belowground tree carbon allocation in a mature mixed forest in a dry versus a wet year. Global Change Biology, 2024, 30: e17172 [28] 邹国元, 杨志福, 李晓林. 低温下钾在植物水分调节中的作用. 中国农业大学学报, 1999, 4(1): 21-25 [29] Liu XJ, Du YJ, Ren Y, et al. New insights into the cortex-to-stele ratio show it to effectively indicate inter- and intraspecific function in the absorptive roots of temperate trees. Frontiers in Plant Science, 2023, 14: 1061503 [30] Zhang Y, Cao JJ, Yang QP, et al. The worldwide allometric relationship in anatomical structures for plant roots. Plant Diversity, 2023, 45: 621-629 [31] 闫媛媛, 郭琪, 管俊泽, 等. 红松和水曲柳叶生态化学计量及养分重吸收特征的地理变异. 应用生态学报, 2023, 34(4): 977-984 [32] Lavoie M, Mack MC, Schuur EAG. Effects of elevated nitrogen and temperature on carbon and nitrogen dyna-mics in Alaskan Arctic and boreal soils. Journal of Geophysical Research: Biogeosciences, 2011, 116: G03013 [33] 高雷, 杨瑞彤, 刘宝东, 等. 植物对土壤氮吸收的多维度策略及其生态意义. 植物研究, 2025, 45(5): 662-674 [34] Nadelhoffer KJ, Giblin AE, Shaver GR, et al. Effects of temperature and substrate quality on element mineralization in six arctic soils. Ecology, 1991, 72: 242-253 [35] Pregitzer KS, King JS, Burton AJ, et al. Responses of tree fine roots to temperature. New Phytologist, 2000, 147: 105-115 [36] 陈天, 程瑞梅, 沈雅飞, 等. 氮添加对三峡库区马尾松人工林土壤团聚体有机氮组分和氮矿化的影响. 应用生态学报, 2023, 34(10): 2601-2609 [37] Iii FC, Bloom AJ, Field CB, et al. Plant responses to multiple environmental factors. BioScience, 1987, 37: 49-57 [38] Austin AT, Yahdjian L, Stark JM, et al. Water pulses and biogeochemical cycles in arid and semiarid ecosystems. Oecologia, 2004, 141: 221-235 [39] Barberon M, Geldner N. Radial transport of nutrients: The plant root as a polarized epithelium. Plant Physio-logy, 2014, 166: 528-537 [40] 崔婉莹, 刘思佳, 魏亚伟, 等. 氮添加和水分胁迫对红松、水曲柳幼苗生物量分配的影响. 应用生态学报, 2019, 30(5): 1454-1462 |