[1] BALMFORD A, BOND W. Trends in the state of nature and their implications for human well-being[J]. Ecology Letters, 2005, 8(11):1218-1234 [2] GALLOWAY J N, TOWNSEND A R, ERISMAN J W, et al. Transformation of the nitrogen cycle:Recent trends, questions, and potential solutions[J]. Science, 2008, 320(5878):889-892 [3] ZHU J X, WANG Q F, HE N P, et al. Imbalanced atmospheric nitrogen and phosphorus depositions in China:Implications for nutrient limitation[J]. Journal of Geophysical Research-Biogeosciences, 2016, 121(6):1605-1616 [4] GRUBER N, GALLOWAY J N. An Earth-system perspective of the global nitrogen cycle[J]. Nature, 2008, 451(7176):293-296 [5] 王奇, 王金枝, 姜丽丽, 等. 氮和磷添加对草原群落特征及有关生态过程的影响[J]. 草地学报, 2017, 25(5):914-920 [6] 罗黎鸣, 苗彦军, 潘影, 等. 不同干扰强度对拉萨河谷草甸草原群落特征和功能性状的影响[J]. 草地学报, 2015, 23(6):1161-1166 [7] 孟婷婷, 倪健, 王国宏. 植物功能性状与环境和生态系统功能[J]. 植物生态学报, 2007, 31(1):150-165 [8] MENG T T, NI J, HARRISON S P. Plant morphometric traits and climate gradients in northern China:a meta-analysis using quadrat and flora data[J]. Annals of Botany, 2009, 104(6):1217-1229 [9] HARRISON S P, PRENTICE I C, BARBONI D, et al. Ecophysiological and bioclimatic foundations for a global plant functional classification[J]. Journal of Vegetation Science, 2010, 21(2):300-317 [10] MVLLER N, SCHNELLER J J, HOLDEREGGER R. Variation in breeding system among populations of the common woodland herb Anemone nemorosa (Ranunculaceae)[J]. Plant Systematics and Evolution, 2000, 221(1/2):69-76 [11] 路德维希·冯·贝塔朗菲. 生命问题:现代生物学思想评价[M]. 北京:商务印书馆, 1999:52-54 [12] 武瑞鑫, 邵新庆, 胡新振, 等. 披针叶黄华茎叶性状对不同草地管理措施的响应及其生长关系研究[J]. 草地学报, 2015, 23(3):476-482 [13] HUANG Y X, ZHAO X Y, ZHOU D W, et al. Allometry of Corispermum macrocarpum in response to soil nutrient, water and population density[J]. Botany Botanique, 2010, 88(1):13-19 [14] WEINER J. Allocation, plasticity and allometry in plants[J]. Perspectives in Plant Ecology Evolution & Systematics, 2004, 6(4):207-215 [15] WANG T H, ZHOU D W, WANG P, et al. Size-dependent reproductive effort in Amaranthus retroflexus:the influence of planting density and sowing date[J]. Canadian Journal of Botany-revue Canadienne De Botanique, 2006, 84(3):485-492 [16] ALLEN A P, POCKMAN W T, RESTREPO C, et al. Allometry, growth and population regulation of the desert shrub Larrea tridentata[J]. Functional Ecology, 2010, 22(2):197-204 [17] 陆霞梅, 周长芳, 安树青. 植物的表型可塑性, 异速生长及其入侵能力[J]. 生态学杂志, 2007, 26(9):1438-1444 [18] PIGLIUCCI M. Evolution of phenotypic plasticity:where are we going now?[J]. Trends in Ecology and Evolution, 2005, 20(9):481-486 [19] 周小玲, 马新娥, 尚可为, 等. 不同物候期胀果甘草生物量和营养物质生殖分配研究[J]. 草业学报, 2012, 21(4):25-32 [20] 黄迎新, 宋彦涛, 范高华, 等. 灰绿藜形态性状与繁殖性状的异速关系[J]. 草地学报, 2015, 23(5):905-913 [21] 杨中领. 青藏高原东部高寒草甸群落结构和功能对施肥和放牧的响应[D]. 兰州:兰州大学, 2011:23-24 [22] 牛克昌. 青藏高原高寒草甸群落主要组分种繁殖特征对施肥和放牧的响应[D]. 兰州:兰州大学, 2008:41-43 [23] 金晓明, 兰雪, 关庆新, 等. 不同密度下羊草种群的无性繁殖对策[J]. 草地学报, 2017, 4(25):164-169 [24] 赵玉红, 魏学红, 苗彦军, 等. 藏北高寒草甸不同退化阶段植物群落特征及其繁殖分配研究[J]. 草地学报, 2012, 20(2):221-228 [25] LIU R, YANG X, GAO R, et al. Allometry rather than abiotic drivers explains biomass allocation among leaves, stems and roots of Artemisia across a large environmental gradient in China[J]. Journal of Ecology, 2020, 10(5):25-36 [26] 赵洁, 李伟,井光花,等. 黄土区封育和放牧草地物种多样性和地上生物量对氮素添加的响应[J]. 草业学报, 2017, 26(8):54-64 [27] BAI Y F, WU J G, CLARK C M. Tradeoffs and thresholds in the effects of nitrogen addition on biodiversity and ecosystem functioning:evidence from Inner Mongolia Grasslands[J]. Global Change Biology, 2010, 16(1):358-372 [28] LIU J, YANG X, GHANIZADEH H, et al. Long-term enclosure can benefit grassland community stability on the Loess Plateau of China[J]. Sustainability, 2020, 13(1):213-214 [29] CORNELISSEN J H C, LAVOREL S, GARNIER E, et al. A handbook of protocols for standardised and easy measurement of plant functional traits worldwide[J]. Australian Journal of Botany, 2003(53):335-380 [30] 王亮, 牛克昌, 杨元合, 等. 中国草地生物量地上-地下分配格局:基于个体水平的研究[J]. 中国科学:生命科学, 2010, 40(7):642-649 [31] CHEPLICK G P. Population Biology of Grasses[M]. United Kingdom:Cambridge University Press, 1998:40 [32] WARTON D I, WRIGHT I J, FALSTER D S, et al. Bivariate line-fitting methods for allometry[J]. Biological Reviews, 2006, 81(2):259-291 [33] XIE J B, TANG L S, WANG Z Y, et al. Distinguishing the biomass allocation variance resulting from ontogenetic drift or Acclimation to Soil Texture[J]. Plos One, 2012, 7(7):e41502 [34] 陈国鹏, 杨克彤, 王立, 等. 甘肃南部7种高寒杜鹃生物量分配的异速生长关系[J]. 植物生态学报, 2020, 44(10):1040-1049 [35] BLOOM A J, CHAPIN F S I, MOONEY H A I. Resource limitation in plants-an economic analogy[J]. Annual Review of Ecology and Systematics, 1985(16):363-392 [36] MVLLER I, SCHMID B, WEINER J. The effect of nutrient availability on biomass allocation patterns in 27 species of herbaceous plants[J]. Perspectives in Plant Ecology Evolution & Systematics, 2000, 3(2):115-127 [37] SHIPLEY B, MEZIANE D. The balanced-growth hypothsis and the allometry of leaf and root biomass allocation[J]. Functional Ecology, 2010, 16(3):326-331 [38] THOMPSON T L, DOERGE T A, GODIN R E. Nitrogen and water interactions in subsurface drip-irrigated cauliflower[J]. Soil Science Society of America Journal, 2000, 64(1):412-418 [39] HILLEBRAND H, GRUNER D S, BORER E T, et al. Consumer versus resource control of producer diversity depends on ecosystem type and producer community structure[J]. Proceedings of the National Academy of Sciences of the United States of America, 2007, 104(26):10904-10909 [40] STEARNS S C. The Evolution of life histories[M]. Oxford:Oxford University Press, 1992:56-58 [41] HARPER J L, OGDEN J. The reproductive strategy of higher plants:I.The concept of strategy with special reference to Senecio vulgaris L[J].Journal of Ecology, 1970, 53(8):681-698 [42] POORTE A H, NAGEL O. The role of biomass allocation in the growth response of plants to different levels of light, CO2, nutrients and water:a quantitative review[J]. Australian Journal of Plant Physiology, 2000, 27(189):595-607 [43] WRIGHT S D, MCCONNAUGHAY K D M. Interpreting phenotypic plasticity:the importance of ontogeny[J]. Plant Species Biology, 2002, 17(2):119-131 [44] WU J B, HONG J T, WANG X D, et al. Biomass Partitioning and Its Relationship with the Environmental Factors at the Alpine Steppe in Northern Tibet[J]. PLoS One, 2013, 8(12):e81986 [45] NIKLAS K J. A phyletic perspective on the allometry of plant biomass-partitioning patterns and functionally equivalent organ-categories[J]. The New Phytologist, 2006, 171(1):27-40 [46] NIU K C, PHILIPPE C, ZHAO B B, et al. The Allometry of Reproductive Biomass in Response to Land Use in Tibetan Alpine Grasslands[J]. Functional Ecology, 2009, 23(2):274-283 [47] 杨中领, 苏芳龙, 苗原, 等. 施肥和放牧对青藏高原高寒草甸物种丰富度的影响[J]. 植物生态学报, 2014, 38(10):26-35 [48] 丛日慧, 刘思齐, 朱羚, 等. 短期放牧下典型草原草畜生产和转化效率研究[J]. 中国草地学报, 2017, 39(6):47-53 |