以安徽石台亚热带常绿阔叶林植物叶片为研究对象,分析了植物叶中C、N、P含量以及它们之间的化学计量关系,讨论了不同类型植物叶片的化学计量特征。结果显示:所研究的28种植物物种间差异明显,叶片中C含量为400.08~519.36 mg/g,N 为5.15~15.39 mg/g,P为0.30~0.97 mg/g,m(C):m(N)范围为29.99~92.25、m(C):m(P)的范围为467.01~1 443.81、m(N):m(P)的范围为10.01~29.29,且N与P、m(C):m(N)值与m(C):m(P)值之间呈现显著的正相关关系,m(N):m(P)的变化主要由P含量决定。不同生活型植物m(C):m(N)值从大到小表现为灌木(59.68)>乔木(51.56)>草本和藤本植物(44.50),草本和藤本植物与灌木之间m(C):m(N)差异显著; 不同植物m(C):m(P)值从大到小表现为灌木(1 043.4)>草本和藤本植物(818.78)>乔木(808.35),灌木与乔木、草本和藤本植物都存在显著差异。该地区灌木m(C):m(N)值和m(C):m(P)值均最高,说明灌木对N、P的利用效率最高。3种类型植物m(N):m(P)值均大于16,说明该地区常绿阔叶林主要受P限制。虽然植物受P限制,但其m(C):m(P)值含量较高,说明植物对其生长受限的元素利用效率会更高,这反映了植物对环境适应的一种对策。
Abstract
This study focused on the foliage of major plants in a subtropical evergreen broad-leaf forest in Shitai, Anhui province, and we tried to figure out the trait of foliar C, N and P at different types, and strived to reveal their relationships. The result showed that foliar C concentrations were ranged from 400.08 to 519.36 mg/g, N from 5.15 to 15.39 mg/g and P from 0.30 to 0.97 mg/g for 28 major species. The ratios of m(C):m(N), m(C):m(P)and m(N):m(P)was 29.99-92.25, 467.01-1 443.81 and 10.01-29.29, respectively. There was a strong correlation between N and P, m(C):m(N)and m(C):m(P). The change of m(N):m(P)ratio was mainly determined by the P concentration. As for the relationships among C, N, P concentrations in different types, we concluded that ratio of foliar m(C):m(N)was 59.68 in shrubs, 51.56 in trees, and 44.50 in herb, and significant difference was found between the shrub and herb species. The ratio of foliar m(C):m(P)was 1 043.4 in shrubs, 818.78 in herb, 808.35 in trees. There was significant difference between shrubs and both trees and herbs. These showed that maximum utilization efficiency of N and P existed in shrub species. The m(N):m(P)ratios for shrubs, herbs and trees were more than 16, indicating that evergreen broad-leaf forest was restricted by P utilization. The higher ratio of m(C):m(P)manifested that plants would be more efficient for the restriction elements, reflecting the responses of plants adapting to the environment.
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参考文献
[1] Elser J J, Bracken M E S, Cleland E E, et al.Global analysis of nitrogen and phosphorus limitation of primary producers in fresh water, marine and terrestrial ecosystems[J]. Ecology Letters, 2007(10): 1-8.
[2] Vitousek P, Howarth R W. Nitrogen limitation on land and in the sea: How can it occur?[J]. Biogeochemistry, 1991, 13: 87-115.
[3] Vitouseck P. Nutrient cycling and nutrient use efficiency[J]. The American Naturalist, 1982, 119(4):553-572.
[4] 曾德慧,陈广生.生态化学计量学:复杂生命系统奥秘的探索[J].植物生态学报,2005,29(6):1007-1019.
Zeng D H, Chen G S. Ecological stoichiometry: a science to explore the complexity of living systems[J]. Acta Phytoecologica Sinica,2005,29(6):1007-1019.
[5] Martin J W, Harry G M O V, Evalyne O A M. Nutrient concentrations in mire vegetation as a measure of nutrient limitation in mire ecosystems[J]. Journal of Vegetation Science,1995,6:5-16.
[6] Zhang L X, Bai Y F, Han X G. Application of N:P stoichiometry to ecology studies[J]. Acta Botanica Sinica, 2003, 45(9): 1009-1018.
[7] Reich P B, Oleksyn J. Global patterns of plant leaf N and P in relation to temperature and latitude[J]. Proceedings of the National Academy of Sciences of the United States of America, 2004, 101(30): 11001-11006.
[8] McGroddy M E, Daufresne T, Hedin L O. Scaling of C:N:P stoichiometry in forests worldwide: implications of terrestrial redfield-type ratios[J]. Ecology, 2004, 85(9): 2390-2401.
[9] 银晓瑞,梁存柱,王立新,等.内蒙古典型草原不同恢复演替阶段植物养分化学计量学[J].植物生态学报,2010, 34(1):39-47.
Yin X R, Liang C Z, Wang L X, et al.Ecological stoichiometry of plant nutrients at different restoration succession stages in typical steppe of Inner Mongolia, China[J]. Chinese Journal of Plant Ecology,2010,34(1):39-47.
[10] 刘兴诏,周国逸,张德强,等.南亚热带森林不同演替阶段植物与土壤N、P的化学计量特征[J].植物生态学报, 2010, 34(1):64-71.
Liu X Z, Zhou G Y, Zhang D Q, et al.N and P stoichiometry of plant and soil in lower subtropical forest successional series in southern China[J]. Chinese Journal of Plant Ecology,2010,34(1):64-71.
[11] 张文彦,樊江文,钟华平,等.中国典型草原优势植物功能群氮磷化学计量学特征研究[J].草地学报,2010,18(4):503-509.
Zhang W Y, Fan J W, Zhong H P, et al. The nitrogen:phosphorus stoichiometry of different plant functional groups for dominant species of typical steppes in China[J]. Acta Agrestia Sinica,2010,18(4):503-509.
[12] 吴统贵,吴明,刘丽,等.杭州湾滨海湿地3种草本植物叶片N、P化学计量学的季节变化[J].植物生态学报,2010,34(1):23-28.
Wu T G, Wu M, Liu L, et al.Seasonal variations of leaf nitrogen and phosphorus stoichiometry of three herbaceous species in Hangzhou Bay coastal wetlands, China[J]. Chinese Journal of Plant Ecology,2010, 34(1):23-28.
[13] Elser J J, Sterner R W, Gorokhova E, et al. Biological stoichiometry from genes to ecosystems[J]. Ecology Letters, 2000(3): 540-550.
[14] Elser J J, Fagan W F, Denno R F, et al. Nutritional constraints in terrestrial and freshwater food webs[J]. Nature, 2000, 408: 578-580.
[15] Han W X, Fang J Y, Guo D L, et al. Leaf nitrogen and phosphorus stochiometry across 753 terrestrial plant species in China[J]. New Phytologist, 2005, 168: 377-385.
[16] Hedin L O. Global organization of terrestrial plant-nutrient interactions[J]. Proceedings of the National Academy of Sciences of the United States of America, 2004, 101(30): 10849-10850.
[17] Aerts R, Chapin F S. The mineral nutrition of wild plants revisited: a re-evaluation of processes and patterns[J]. Advances in Ecological Research, 2000, 30: 1-68.
[18] 任书杰,于贵瑞,陶波,等.中国东部南北样带654种植物叶片氮和磷的化学计量学特征研究[J]. 环境科学,2007,28(12): 2665-2673.
Ren S J, Yu G R, Tao B, et al.Leaf nitrogen and phosphorus stoichiometry across 654 terrestrial plant species in NSTEC[J]. Environmental Science,2007,28(12):2665-2673.
[19] Niklas K J, Owens T, Reich P B, et al. Nitrogen/phosphorus leaf stoichiometry and the scaling of plant growth[J]. Ecology Letters, 2005(8): 636-642.
[20] Herbert D A, Williams M, Rastetter E B. A model analysis of N and P limitation on carbon accumulation in Amazonian secondary forest after alternate land-use abandonment[J]. Biogeochemistry, 2003, 65(1): 121-150.
[21] 阎恩荣,王希华,郭明,等.浙江天童山常绿阔叶林常绿针叶林与落叶阔叶林的C:N:P化学计量特征[J]. 植物生态学报, 2010,34(1):48-57.
Yan E R, Wang X H, Guo M, et al.C:N:P stoichiometry across evergreen broad-leaved forests, evergreen coniferous forests and deciduous broad-leaved forests in the Tiantong region, Zhejiang Province, eastern China[J]. Chinese Journal of Plant Ecology,2010,34(1):48-57.
[22] Koerselman W, Meuleman A F M. The vegetation N:P ratio: a new tool to detect the nature of nutrient limitation[J].Journal of Applied Ecology, 1996, 33: 1441-1450.
基金
收稿日期:2013-10-15 修回日期:2014-02-25
基金项目:国家重点基础研究发展计划(2010CB950602); 中国科学院战略先导性科技专项项目(2011XDA05050204)
第一作者:柯立,硕士。*通信作者:徐小牛,教授。E-mail: xnxu6162@163.com。
引文格式:柯立,崔珺,杨佳,等. 安徽石台亚热带常绿阔叶林植物叶中C、N、P特征分析[J]. 南京林业大学学报:自然科学版,2014,38(6):28-32.