植物生态学报 ›› 2015, Vol. 39 ›› Issue (1): 52-62.DOI: 10.17521/cjpe.2015.0006
所属专题: 生态化学计量
刘万德1,2, 苏建荣1,2,*(), 李帅锋1,2, 郎学东1,2, 张志钧1,2, 黄小波1,2
收稿日期:
2014-08-25
接受日期:
2014-11-06
出版日期:
2015-01-10
发布日期:
2015-01-22
通讯作者:
苏建荣
作者简介:
# 共同第一作者
基金资助:
LIU Wan-De1,2, SU Jian-Rong1,2,*(), LI Shuai-Feng1,2, LANG Xue-Dong1,2, ZHANG Zhi-Jun1,2, HUANG Xiao-Bo1,2
Received:
2014-08-25
Accepted:
2014-11-06
Online:
2015-01-10
Published:
2015-01-22
Contact:
Jian-Rong SU
About author:
# Co-first authors
摘要:
为探索植物叶片氮(N)、磷(P)、碳(C)生态化学计量特征随植物生长发育的变化规律, 在普洱季风常绿阔叶林中, 选取6种优势植物种(红锥(Castanopsis hystrix)、短刺锥(Castanopsis echidnocarpa)、泥柯(Lithocarpus fenestratus)、截果柯(Lithocarpus truncatus)、西南木荷(Schima wallichii)、茶梨(Anneslea fragrans))采集叶片, 分析其N、P、C含量及化学计量比随植物生长发育的变化。结果显示: 6种植物在不同生长阶段的N含量变化范围为7.90-17.72 mg·g-1, P为0.34-1.39 mg·g-1, C为458.48-516.87 mg·g-1, C:N为28.04-65.70, N:P为11.41-63.50, C:P为355.23-1878.17, 且不同生长阶段6种植物及总体叶片N、P、C含量及其化学计量比变化趋势各异。在变异系数上, N:P比整体变异最大, 为36.46% (变化范围19.19%-91.65%), 其次为C:P, 为34.80% (变化范围15.99%-91.60%), C的整体变异最小, 为3.12% (变化范围1.61%-5.89%)。变异来源分析结果显示, N含量、C含量、C:N、N:P及C:P均主要受植物生长阶段的影响, 而P含量主要受物种与生长阶段的交互作用影响。
刘万德, 苏建荣, 李帅锋, 郎学东, 张志钧, 黄小波. 云南普洱季风常绿阔叶林优势物种不同生长阶段叶片碳、氮、磷化学计量特征. 植物生态学报, 2015, 39(1): 52-62. DOI: 10.17521/cjpe.2015.0006
LIU Wan-De,SU Jian-Rong,LI Shuai-Feng,LANG Xue-Dong,ZHANG Zhi-Jun,HUANG Xiao-Bo. Leaf carbon, nitrogen and phosphorus stoichiometry at different growth stages in dominant tree species of a monsoon broad-leaved evergreen forest in Pu’er, Yunnan Province, China. Chinese Journal of Plant Ecology, 2015, 39(1): 52-62. DOI: 10.17521/cjpe.2015.0006
物种 Species | 科 Family | 属 Genus |
---|---|---|
红锥 Castanopsis hystrix | 壳斗科 Fagaceae | 锥属 Castanopsis |
短刺锥 C. echidnocarpa | 壳斗科 Fagaceae | 锥属 Castanopsis |
泥柯 Lithocarpus fenestratus | 壳斗科 Fagaceae | 柯属 Lithocarpus |
截果柯 L. truncatus | 壳斗科 Fagaceae | 柯属 Lithocarpus |
西南木荷 Schima wallichii | 山茶科 Theaceae | 木荷属 Schima |
茶梨 Anneslea fragrans | 山茶科 Theaceae | 茶梨属 Anneslea |
表1 所选物种信息
Table 1 The information on species studied
物种 Species | 科 Family | 属 Genus |
---|---|---|
红锥 Castanopsis hystrix | 壳斗科 Fagaceae | 锥属 Castanopsis |
短刺锥 C. echidnocarpa | 壳斗科 Fagaceae | 锥属 Castanopsis |
泥柯 Lithocarpus fenestratus | 壳斗科 Fagaceae | 柯属 Lithocarpus |
截果柯 L. truncatus | 壳斗科 Fagaceae | 柯属 Lithocarpus |
西南木荷 Schima wallichii | 山茶科 Theaceae | 木荷属 Schima |
茶梨 Anneslea fragrans | 山茶科 Theaceae | 茶梨属 Anneslea |
图1 不同生长阶段6种植物叶片氮(A)、磷(B)、碳(C)含量及C:N (D)、N:P (E)及C:P (F)(平均值±标准误差)。
Fig. 1 Leaf N (A), P (B) and C (C) contents and mass ratios of C:N (D), N:P (E) and C:P (F) at different growth stages in six plant species (mean ± SE).
图2 不同生长阶段植物叶片N、P、C含量及化学计量比(平均值±标准误差)。A, N含量。B, P含量。C, C含量。D, C:N。E, N:P。F, C:P。
Fig. 2 Leaf N, P and C contents and mass ratios of C:N, N:P and C:P at different growth stages (mean ± SE). A, N content. B, P contents. C, C contents. D, C:N. E, N:P . F, C:P.
参数 Para- meter | 物种 Species | 平均值 Mean | 变异系数 Coefficient of variation (%) | 极差 Range |
---|---|---|---|---|
N | 茶梨 Anneslea fragrans | 8.78 | 15.72 | 5.40 |
红锥 Castanopsis hystrix | 12.73 | 11.23 | 4.54 | |
短刺锥 C. echidnocarpa | 14.20 | 13.66 | 8.65 | |
西南木荷 Schima wallichii | 12.75 | 27.61 | 14.17 | |
泥柯 Lithocarpus fenestratus | 17.01 | 7.47 | 5.72 | |
截果柯 L. truncatus | 14.55 | 15.60 | 7.19 | |
合计 Total | 13.24 | 24.24 | 17.85 | |
P | 茶梨 Anneslea fragrans | 0.46 | 17.39 | 0.35 |
红锥 Castanopsis hystrix | 0.40 | 17.50 | 0.22 | |
短刺锥 C. echidnocarpa | 0.71 | 66.20 | 1.41 | |
西南木荷 Schima wallichii | 0.41 | 19.51 | 0.28 | |
泥柯 Lithocarpus fenestratus | 1.02 | 63.73 | 1.71 | |
截果柯 L. truncatus | 0.53 | 18.87 | 0.33 | |
合计 Total | 0.59 | 40.68 | 1.71 | |
C | 茶梨 Anneslea fragrans | 508.62 | 3.00 | 53.34 |
红锥 Castanopsis hystrix | 464.75 | 1.61 | 20.73 | |
短刺锥 C. echidnocarpa | 480.35 | 1.97 | 41.36 | |
西南木荷 Schima wallichii | 471.38 | 5.89 | 107.37 | |
泥柯 Lithocarpus fenestratus | 502.91 | 3.75 | 57.73 | |
截果柯 L. truncatus | 495.10 | 2.49 | 47.95 | |
合计 Total | 487.18 | 3.12 | 107.37 | |
C:N | 茶梨 Anneslea fragrans | 59.49 | 18.34 | 43.33 |
红锥 Castanopsis hystrix | 37.05 | 13.77 | 16.21 | |
短刺锥 C. echidnocarpa | 34.36 | 12.17 | 17.70 | |
西南木荷 Schima wallichii | 38.84 | 20.29 | 32.10 | |
泥柯 Lithocarpus fenestratus | 29.68 | 6.84 | 8.99 | |
截果柯 L. truncatus | 34.83 | 16.48 | 19.27 | |
合计 Total | 39.30 | 15.19 | 66.81 | |
N:P | 茶梨 Anneslea fragrans | 19.80 | 24.80 | 20.96 |
红锥 Castanopsis hystrix | 32.71 | 19.20 | 19.23 | |
短刺锥 C. echidnocarpa | 25.56 | 38.93 | 33.09 | |
西南木荷 Schima wallichii | 31.58 | 23.21 | 24.57 | |
泥柯 Lithocarpus fenestratus | 31.60 | 91.65 | 71.06 | |
截果柯 L. truncatus | 28.46 | 20.98 | 21.45 | |
合计 Total | 28.28 | 37.38 | 71.77 | |
C:P | 茶梨 Anneslea fragrans | 1 153.75 | 22.23 | 1100.84 |
红锥 Castanopsis hystrix | 1 195.89 | 15.99 | 622.73 | |
短刺锥 C. echidnocarpa | 855.62 | 35.06 | 942.17 | |
西南木荷 Schima wallichii | 1 195.06 | 22.49 | 911.85 | |
泥柯 Lithocarpus fenestratus | 934.20 | 91.60 | 2075.46 | |
截果柯 L. truncatus | 977.11 | 21.45 | 729.09 | |
合计 Total | 1 051.94 | 32.98 | 2075.46 |
表2 6种植物叶片N、P、C含量及化学计量比的变化
Table 2 Variations of leaf N, P and C contents and mass ratios of C:N, N:P, C:P in six plant species
参数 Para- meter | 物种 Species | 平均值 Mean | 变异系数 Coefficient of variation (%) | 极差 Range |
---|---|---|---|---|
N | 茶梨 Anneslea fragrans | 8.78 | 15.72 | 5.40 |
红锥 Castanopsis hystrix | 12.73 | 11.23 | 4.54 | |
短刺锥 C. echidnocarpa | 14.20 | 13.66 | 8.65 | |
西南木荷 Schima wallichii | 12.75 | 27.61 | 14.17 | |
泥柯 Lithocarpus fenestratus | 17.01 | 7.47 | 5.72 | |
截果柯 L. truncatus | 14.55 | 15.60 | 7.19 | |
合计 Total | 13.24 | 24.24 | 17.85 | |
P | 茶梨 Anneslea fragrans | 0.46 | 17.39 | 0.35 |
红锥 Castanopsis hystrix | 0.40 | 17.50 | 0.22 | |
短刺锥 C. echidnocarpa | 0.71 | 66.20 | 1.41 | |
西南木荷 Schima wallichii | 0.41 | 19.51 | 0.28 | |
泥柯 Lithocarpus fenestratus | 1.02 | 63.73 | 1.71 | |
截果柯 L. truncatus | 0.53 | 18.87 | 0.33 | |
合计 Total | 0.59 | 40.68 | 1.71 | |
C | 茶梨 Anneslea fragrans | 508.62 | 3.00 | 53.34 |
红锥 Castanopsis hystrix | 464.75 | 1.61 | 20.73 | |
短刺锥 C. echidnocarpa | 480.35 | 1.97 | 41.36 | |
西南木荷 Schima wallichii | 471.38 | 5.89 | 107.37 | |
泥柯 Lithocarpus fenestratus | 502.91 | 3.75 | 57.73 | |
截果柯 L. truncatus | 495.10 | 2.49 | 47.95 | |
合计 Total | 487.18 | 3.12 | 107.37 | |
C:N | 茶梨 Anneslea fragrans | 59.49 | 18.34 | 43.33 |
红锥 Castanopsis hystrix | 37.05 | 13.77 | 16.21 | |
短刺锥 C. echidnocarpa | 34.36 | 12.17 | 17.70 | |
西南木荷 Schima wallichii | 38.84 | 20.29 | 32.10 | |
泥柯 Lithocarpus fenestratus | 29.68 | 6.84 | 8.99 | |
截果柯 L. truncatus | 34.83 | 16.48 | 19.27 | |
合计 Total | 39.30 | 15.19 | 66.81 | |
N:P | 茶梨 Anneslea fragrans | 19.80 | 24.80 | 20.96 |
红锥 Castanopsis hystrix | 32.71 | 19.20 | 19.23 | |
短刺锥 C. echidnocarpa | 25.56 | 38.93 | 33.09 | |
西南木荷 Schima wallichii | 31.58 | 23.21 | 24.57 | |
泥柯 Lithocarpus fenestratus | 31.60 | 91.65 | 71.06 | |
截果柯 L. truncatus | 28.46 | 20.98 | 21.45 | |
合计 Total | 28.28 | 37.38 | 71.77 | |
C:P | 茶梨 Anneslea fragrans | 1 153.75 | 22.23 | 1100.84 |
红锥 Castanopsis hystrix | 1 195.89 | 15.99 | 622.73 | |
短刺锥 C. echidnocarpa | 855.62 | 35.06 | 942.17 | |
西南木荷 Schima wallichii | 1 195.06 | 22.49 | 911.85 | |
泥柯 Lithocarpus fenestratus | 934.20 | 91.60 | 2075.46 | |
截果柯 L. truncatus | 977.11 | 21.45 | 729.09 | |
合计 Total | 1 051.94 | 32.98 | 2075.46 |
参数 Parameter | 生长阶段 Growth stages | 平均值 Mean | 变异系数 Coefficient of variation (%) | 极差 Range |
---|---|---|---|---|
N | 幼苗幼树 Seedling | 12.92 | 22.45 | 12.27 |
小树 Sapling | 12.96 | 29.08 | 16.89 | |
中树 Medium tree | 13.94 | 22.83 | 12.29 | |
大树 Mature tree | 12.87 | 16.72 | 6.96 | |
P | 幼苗幼树 Seedling | 0.45 | 35.22 | 0.76 |
小树 Sapling | 0.53 | 44.66 | 1.01 | |
中树 Medium tree | 0.66 | 72.98 | 1.61 | |
大树 Mature tree | 1.01 | 65.71 | 1.53 | |
C | 幼苗幼树 Seedling | 484.09 | 5.06 | 77.23 |
小树 Sapling | 487.59 | 4.15 | 74.98 | |
中树 Medium tree | 488.38 | 5.11 | 107.37 | |
大树 Mature tree | 489.16 | 2.88 | 42.31 | |
C:N | 幼苗幼树 Seedling | 39.77 | 30.18 | 58.16 |
小树 Sapling | 40.97 | 32.30 | 53.72 | |
中树 Medium tree | 37.24 | 28.78 | 41.14 | |
大树 Mature tree | 39.19 | 21.22 | 26.09 | |
N:P | 幼苗幼树 Seedling | 33.39 | 54.41 | 63.98 |
小树 Sapling | 26.22 | 30.26 | 31.49 | |
中树 Medium tree | 26.44 | 38.23 | 34.00 | |
大树 Mature tree | 19.86 | 64.21 | 26.90 | |
C:P | 幼苗幼树 Seedling | 1 225.22 | 38.58 | 1 808.29 |
小树 Sapling | 1 023.82 | 27.24 | 1 094.90 | |
中树 Medium tree | 954.83 | 36.11 | 1 209.56 | |
大树 Mature tree | 803.67 | 74.58 | 1 647.69 |
表3 不同生长阶段植物叶片N、P、C含量及化学计量比的变化
Table 3 Variations of leaf N, P and C contents and mass ratios of C:N, N:P, C:P at different growth stages
参数 Parameter | 生长阶段 Growth stages | 平均值 Mean | 变异系数 Coefficient of variation (%) | 极差 Range |
---|---|---|---|---|
N | 幼苗幼树 Seedling | 12.92 | 22.45 | 12.27 |
小树 Sapling | 12.96 | 29.08 | 16.89 | |
中树 Medium tree | 13.94 | 22.83 | 12.29 | |
大树 Mature tree | 12.87 | 16.72 | 6.96 | |
P | 幼苗幼树 Seedling | 0.45 | 35.22 | 0.76 |
小树 Sapling | 0.53 | 44.66 | 1.01 | |
中树 Medium tree | 0.66 | 72.98 | 1.61 | |
大树 Mature tree | 1.01 | 65.71 | 1.53 | |
C | 幼苗幼树 Seedling | 484.09 | 5.06 | 77.23 |
小树 Sapling | 487.59 | 4.15 | 74.98 | |
中树 Medium tree | 488.38 | 5.11 | 107.37 | |
大树 Mature tree | 489.16 | 2.88 | 42.31 | |
C:N | 幼苗幼树 Seedling | 39.77 | 30.18 | 58.16 |
小树 Sapling | 40.97 | 32.30 | 53.72 | |
中树 Medium tree | 37.24 | 28.78 | 41.14 | |
大树 Mature tree | 39.19 | 21.22 | 26.09 | |
N:P | 幼苗幼树 Seedling | 33.39 | 54.41 | 63.98 |
小树 Sapling | 26.22 | 30.26 | 31.49 | |
中树 Medium tree | 26.44 | 38.23 | 34.00 | |
大树 Mature tree | 19.86 | 64.21 | 26.90 | |
C:P | 幼苗幼树 Seedling | 1 225.22 | 38.58 | 1 808.29 |
小树 Sapling | 1 023.82 | 27.24 | 1 094.90 | |
中树 Medium tree | 954.83 | 36.11 | 1 209.56 | |
大树 Mature tree | 803.67 | 74.58 | 1 647.69 |
参数 Parameter | 变异来源 Source of variation | 离差平方和 Sum of squares of deviations (SS) | df | 均方 Mean square (MS) | F | p |
---|---|---|---|---|---|---|
N (mg·g-1) | 物种 Species | 515.68 | 5 | 103.14 | 11.38 | 0.00 |
物种间误差 Error among species | 217.49 | 24 | 9.06 | |||
生长阶段 Growth stage | 2 147.38 | 3 | 715.79 | 84.31 | 0.00 | |
生长阶段间误差 Error among growth stages | 611.32 | 72 | 8.49 | |||
物种×生长阶段 Species × Growth stage | 757.75 | 15 | 50.52 | 5.95 | 0.00 | |
P (mg·g-1) | 物种 Species | 3.60 | 5 | 0.72 | 21.32 | 0.00 |
物种间误差 Error among species | 0.81 | 24 | 0.03 | |||
生长阶段 Growth stage | 2.40 | 3 | 0.80 | 16.89 | 0.00 | |
生长阶段间误差 Error among growth stages | 3.41 | 72 | 0.05 | |||
物种×生长阶段 Species × Growth stage | 10.57 | 15 | 0.71 | 14.90 | 0.00 | |
C (mg·g-1) | 物种 Species | 266 602.48 | 5 | 53 320.50 | 7.13 | 0.00 |
物种间误差 Error among species | 179 485.43 | 24 | 7 478.56 | |||
生长阶段 Growth stage | 2 773 966.81 | 3 | 924 655.60 | 127.31 | 0.00 | |
生长阶段间误差 Error among growth stages | 522 960.01 | 72 | 7 263.33 | |||
物种×生长阶段 Species × Growth stage | 712 916.28 | 15 | 47 527.75 | 6.54 | 0.00 | |
C:N | 物种 Species | 10 483.35 | 5 | 2 096.67 | 32.81 | 0.00 |
物种间误差 Error among species | 1 533.77 | 24 | 63.91 | |||
生长阶段 Growth stage | 18 289.86 | 3 | 6 096.62 | 72.08 | 0.00 | |
生长阶段间误差 Error among growth stages | 6 089.92 | 72 | 84.58 | |||
物种×生长阶段 Species × Growth stage | 5 421.81 | 15 | 361.45 | 4.27 | 0.00 | |
N:P | 物种 Species | 1 155.88 | 5 | 231.18 | 2.24 | 0.08 |
物种间误差 Error among species | 2 472.71 | 24 | 103.03 | |||
生长阶段 Growth stage | 13 145.00 | 3 | 4 381.67 | 68.61 | 0.00 | |
生长阶段间误差 Error among growth stages | 4 598.38 | 72 | 63.87 | |||
物种×生长阶段 Species × Growth stage | 10 189.61 | 15 | 679.31 | 10.64 | 0.00 | |
C:P | 物种 Species | 1 654 291.72 | 5 | 330 858.35 | 2.87 | 0.04 |
物种间误差 Error among species | 2 766 919.49 | 24 | 115 288.31 | |||
生长阶段 Growth stage | 17 259 909.97 | 3 | 5 753 303.30 | 64.52 | 0.00 | |
生长阶段间误差 Error among growth stages | 6 420 001.91 | 72 | 89 166.69 | |||
物种×生长阶段 Species × Growth stage | 8 581 371.25 | 15 | 572 091.42 | 6.42 | 0.00 |
表4 6种植物叶片N、P、C含量及化学计量比的变异来源分析
Table 4 Sources of variations in leaf N, P and C contents and mass ratios of C:N, N:P and C:P in six plant species
参数 Parameter | 变异来源 Source of variation | 离差平方和 Sum of squares of deviations (SS) | df | 均方 Mean square (MS) | F | p |
---|---|---|---|---|---|---|
N (mg·g-1) | 物种 Species | 515.68 | 5 | 103.14 | 11.38 | 0.00 |
物种间误差 Error among species | 217.49 | 24 | 9.06 | |||
生长阶段 Growth stage | 2 147.38 | 3 | 715.79 | 84.31 | 0.00 | |
生长阶段间误差 Error among growth stages | 611.32 | 72 | 8.49 | |||
物种×生长阶段 Species × Growth stage | 757.75 | 15 | 50.52 | 5.95 | 0.00 | |
P (mg·g-1) | 物种 Species | 3.60 | 5 | 0.72 | 21.32 | 0.00 |
物种间误差 Error among species | 0.81 | 24 | 0.03 | |||
生长阶段 Growth stage | 2.40 | 3 | 0.80 | 16.89 | 0.00 | |
生长阶段间误差 Error among growth stages | 3.41 | 72 | 0.05 | |||
物种×生长阶段 Species × Growth stage | 10.57 | 15 | 0.71 | 14.90 | 0.00 | |
C (mg·g-1) | 物种 Species | 266 602.48 | 5 | 53 320.50 | 7.13 | 0.00 |
物种间误差 Error among species | 179 485.43 | 24 | 7 478.56 | |||
生长阶段 Growth stage | 2 773 966.81 | 3 | 924 655.60 | 127.31 | 0.00 | |
生长阶段间误差 Error among growth stages | 522 960.01 | 72 | 7 263.33 | |||
物种×生长阶段 Species × Growth stage | 712 916.28 | 15 | 47 527.75 | 6.54 | 0.00 | |
C:N | 物种 Species | 10 483.35 | 5 | 2 096.67 | 32.81 | 0.00 |
物种间误差 Error among species | 1 533.77 | 24 | 63.91 | |||
生长阶段 Growth stage | 18 289.86 | 3 | 6 096.62 | 72.08 | 0.00 | |
生长阶段间误差 Error among growth stages | 6 089.92 | 72 | 84.58 | |||
物种×生长阶段 Species × Growth stage | 5 421.81 | 15 | 361.45 | 4.27 | 0.00 | |
N:P | 物种 Species | 1 155.88 | 5 | 231.18 | 2.24 | 0.08 |
物种间误差 Error among species | 2 472.71 | 24 | 103.03 | |||
生长阶段 Growth stage | 13 145.00 | 3 | 4 381.67 | 68.61 | 0.00 | |
生长阶段间误差 Error among growth stages | 4 598.38 | 72 | 63.87 | |||
物种×生长阶段 Species × Growth stage | 10 189.61 | 15 | 679.31 | 10.64 | 0.00 | |
C:P | 物种 Species | 1 654 291.72 | 5 | 330 858.35 | 2.87 | 0.04 |
物种间误差 Error among species | 2 766 919.49 | 24 | 115 288.31 | |||
生长阶段 Growth stage | 17 259 909.97 | 3 | 5 753 303.30 | 64.52 | 0.00 | |
生长阶段间误差 Error among growth stages | 6 420 001.91 | 72 | 89 166.69 | |||
物种×生长阶段 Species × Growth stage | 8 581 371.25 | 15 | 572 091.42 | 6.42 | 0.00 |
1 | Ågren GI (2004). The C:N:P stoichiometry of autotrophs- theory and observations. Ecology Letters, 7, 185-191. |
2 | An Z, Niu DC, Wen HY, Yang Y, Zhang HR, Fu H (2011). Effects of N addition on nutrient resorption efficiency and C:N:P stoichiometric characteristics in Stipa bungeana of steppe grasslands in the Loess Plateau, China. Chinese Journal of Plant Ecology, 35, 801-807. |
(in Chinese with English abstract) [安卓, 牛得草, 文海燕, 杨益, 张洪荣, 傅华 (2011). 氮素添加对黄土高原典型草原长芒草氮磷重吸收率及C:N:P化学计量特征的影响.植物生态学报, 35, 801-807.] | |
3 | Chen JQ, Zhang R, Hou YC, Ma LN, Ding LM, Long RJ, Shang ZH (2013). Relationships between species diversity and C, N and P ecological stoichiometry in plant communities of sub-alpine meadow. Chinese Journal of Plant Ecology, 37, 979-987. |
(in Chinese with English abstract) [陈军强, 张蕊, 侯尧宸, 马丽娜, 丁路明, 龙瑞军, 尚占环 (2013). 亚高山草甸植物群落物种多样性与群落C、N、P生态化学计量的关系.植物生态学报, 37, 979-987.] | |
4 | Elser JJ, Acharya K, Kyle M, Cotner J, Makino W, Markow T, Watts T, Hobbie S, Fagan W, Schade J, Hood J, Sterner RW (2003). Growth rate-stoichiometry couplings in diverse biota. Ecology Letters, 6, 936-943. |
5 | Elser JJ, Bracken MES, Cleland EE, Gruner DS, Harpole WS, Hillebrand H, Ngai JT, Seabloom EW, Shurin JB, Smith JE (2007). Global analysis of nitrogen and phosphorus limitation of primary producers in freshwater, marine and terrestrial ecosystems. Ecology Letters, 10, 1135-1142. |
6 | Elser JJ, Doberfuhl DR, MacKay NA, Schampel JH (1996). Organism size, life history, and N:P stoichiometry. Bioscience, 46, 674-684. |
7 | Elser JJ, Fagan WF, Denno RF, Dobberfuhl DR, Folarin A, Huberty A, Interlandi S, Kilham SS, McCauley E, Schulz KL, Siemann EH, Sterner RW (2000). Nutritional constraints in terrestrial and freshwater food webs. Nature, 408, 578-580. |
8 | Gao SP, Li JX, Xu MC, Chen X, Dai J (2007). Leaf N and P stoichiometry of common species in successional stages of the evergreen broad-leaved forest in Tiantong National Forest Park, Zhejiang Province, China. Acta Ecologica Sinica, 27, 947-952. (in Chinese with English abstract)[高三平, 李俊祥, 徐明策, 陈熙, 戴洁 (2007). 天童常绿阔叶林不同演替阶段常见种叶片N、P化学计量学特征. 生态学报, 27, 947-952.] |
9 | Han WX, Fang JY, Guo DL, Yan Z (2005). Leaf nitrogen and phosphorus stoichiometry across 753 terrestrial plant species in China. New Phytologist, 168, 377-385. |
10 | Han WX, Wu Y, Tang LY, Chen YH, Li LP, He JS, Fang JY (2009). Leaf carbon, nitrogen and phosphorus stoichiometry across plant species in Beijing and its periphery. Acta Scientiarum Naturalium Universitatis Pekinensis, 45, 855-860. |
(in Chinese with English abstract) [韩文轩, 吴漪, 汤璐瑛, 陈雅涵, 李利平, 贺金生, 方精云 (2009). 北京及周边地区植物叶的碳氮磷元素计量特征.北京大学学报, 45, 855-860.] | |
11 | He JS, Fang JY, Wang ZH, Guo DL, Flynn DFB, Zhi G (2006). Stoichiometry and large-scale patterns of leaf carbon and nitrogen in the grassland biomes of China. Oecologia, 149, 115-122. |
12 | He JS, Wang L, Flynn DFB, Wang XP, Ma WH, Fang JY (2008). Leaf nitrogen:phosphorus stoichiometry across Chinese grassland biomes. Oecologia, 155, 301-310. |
13 | He JS, Wang XP, Schmid B, Flynn DFB, Li XF, Reich PB, Fang JY (2010). Taxonomic identity, phylogeny, climate and soil fertility as drivers of leaf traits across Chinese grassland biomes. Journal of Plant Research, 123, 551-561. |
14 | Hu YS, Yao XY, Liu YH (2014). N and P stoichiometric traits of plant and soil in different forest succession stages in Changbai Mountains. Chinese Journal of Applied Ecology, 25, 632-638. |
(in Chinese with English abstract) [胡耀升, 么旭阳, 刘艳红 (2014). 长白山森林不同演替阶段植物与土壤氮磷的化学计量特征.应用生态学报, 25, 632-638.] | |
15 | Kerkhoff AJ, Enquist BJ, Elser JJ, Fagan WF (2005). Plant allometry, stoichiometry and the temperature-dependence of primary productivity. Global Ecology and Biogeography, 14, 585-598. |
16 | Li Z, Han L, Liu YH, An SQ, Leng X (2012). C, N and P stoichiometric characteristics in leaves of Suaeda salsa during different growth phase in coastal wetlands of China. Chinese Journal of Plant Ecology, 36, 1054-1061. |
(in Chinese with English abstract) [李征, 韩琳, 刘玉虹, 安树青, 冷欣 (2012). 滨海盐地碱蓬不同生长阶段叶片 C、N、P化学计量特征.植物生态学报, 36, 1054-1061.] | |
17 | Liu WD, Su JR, Li SF, Zhang ZJ, Lang XD (2011). Species- area relationship at different succession stages of monsoon evergreen broad-leaved forest in south subtropical area of Yunnan Province. Chinese Journal of Applied Ecology, 22, 317-322. |
(in Chinese with English abstract) [刘万德, 苏建荣, 李帅锋, 张志钧, 郎学东 (2011). 南亚热带季风常绿阔叶林不同演替阶段物种-面积关系.应用生态学报, 22, 317-322.] | |
18 | Liu WD, Su JR, Li SF, Zhang ZJ, Li ZW (2010). Stoichiometry study of C, N and P in plant and soil at different successional stages of monsoon evergreen broad-leaved forest in Pu’er, Yunnan Province. Acta Ecologica Sinica, 30, 6581-6590. |
(in Chinese with English abstract) [刘万德, 苏建荣, 李帅锋, 张志钧, 李忠文 (2010). 云南普洱季风常绿阔叶林演替系列植物和土壤C、N、P化学计量特征.生态学报, 30, 6581-6590.] | |
19 | Liu WX, Zhu KJ (2013). Characteristics of nitrogen and phosphorus stoichiometry of plants in different functional groups on alpine meadow in the eastern edge of Tibetan Plateau. Chinese Journal of Grassland, 35(2), 52-58. |
(in Chinese with English abstract) [刘雯霞, 朱柯嘉 (2013). 青藏高原东缘高寒草甸不同功能群植物氮磷化学计量特征研究.中国草地学报, 35(2), 52-58.] | |
20 | Liu XZ, Zhou GY, Zhang DQ, Liu SZ, Chu GW, Yan JH (2010). N and P stoichiometry of plant and soil in lower subtropical forest successional series in southern China. Chinese Journal of Plant Ecology, 34, 64-71. |
(in Chinese with English abstract) [刘兴诏, 周国逸, 张德强, 刘世忠, 褚国伟, 闫俊华 (2010). 南亚热带森林不同演替阶段植物与土壤中N、P的化学计量特征.植物生态学报, 34, 64-71.] | |
21 | Makino W, Cotner JB, Sterner RW, Elser JJ (2003). Are bacteria more like plants or animals? Growth rate and resource dependence of bacterial C:N:P stoichiometry. Functional Ecology, 17, 121-130. |
22 | Michaels AF (2003). The ratios of life. Science, 300, 906-907. |
23 | Niu DC, Li Q, Jiang SG, Chang PJ, Fu H (2013). Seasonal variations of leaf C:N:P stoichiometry of six shrubs in desert of China’s Alxa Plateau. Chinese Journal of Plant Ecology, 37, 317-325. |
(in Chinese with English abstract) [牛得草, 李茜, 江世高, 常佩静, 傅华 (2013). 阿拉善荒漠区6种主要灌木植物叶片C:N:P化学计量比的季节变化.植物生态学报, 37, 317-325.] | |
24 | Reich PB, Oleksyn J (2004). Global patterns of plant leaf N and P in relation to temperature and latitude. Proceedings of the National Academy of Sciences of the United States of America, 101, 11001-11006. |
25 | Song YT, Zhou DW, Li Q, Wang P, Huang YX (2012). Leaf nitrogen and phosphorus stoichiometry in 80 herbaceous plant species of Songnen grassland in Northeast China. Chinese Journal of Plant Ecology, 36, 222-230. |
(in Chinese with English abstract) [宋彦涛, 周道玮, 李强, 王平, 黄迎新 (2012). 松嫩草地80种草本植物叶片氮磷化学计量特征.植物生态学报, 36, 222-230.] | |
26 | Sterner RW, Elser JJ (2002). Ecological Stoichiometry: The Biology of Elements from Molecules to the Biosphere. Princeton University Press, Princeton, USA. |
27 | Sterner RW, Schulz KL (1998). Zooplankton nutrition: Recent progress and a reality check. Aquatic Ecology, 32, 261-279. |
28 | Wang DM, Yang HM (2011). Carbon and nitrogen stoichiometry at different growth stages in legumes and grasses. Pratacultural Science, 28, 921-925. |
(in Chinese with English abstract) [王冬梅, 杨惠敏 (2011). 4种牧草不同生长期C、N生态化学计量特征.草业科学, 28, 921-925.] | |
29 | Wang JY, Wang SQ, Li RL, Yan JH, Sha LQ, Han SJ (2011). C:N:P stoichiometric characteristics of four forest types’ dominant tree species in China. Chinese Journal of Plant Ecology, 35, 587-595. |
(in Chinese with English abstract) [王晶苑, 王绍强, 李纫兰, 闫俊华, 沙丽清, 韩士杰 (2011). 中国四种森林类型主要优势植物的C:N:P化学计量学特征.植物生态学报, 35, 587-595.] | |
30 | Wang KB, Shangguan ZP (2011). Seasonal variations in leaf C, N, and P stoichiometry of typical plants in the Yangou watershed in the loess hilly gully region. Acta Ecologica Sinica, 31, 4985-4991. |
(in Chinese with English abstract) [王凯博, 上官周平 (2011). 黄土丘陵区燕沟流域典型植物叶片C、N、P化学计量特征季节变化.生态学报, 31, 4985-4991.] | |
31 | Wu TG, Chen BF, Xiao YH, Pan YJ, Chen Y, Xiao JH (2010a). Leaf stoichiometry of trees in three forest types in Pearl River Delta, South China. Chinese Journal of Plant Ecology, 34, 58-63. |
(in Chinese with English abstract) [吴统贵, 陈步峰, 肖以华, 潘勇军, 陈勇, 萧江华 (2010a). 珠江三角洲3种典型森林类型乔木叶片生态化学计量学.植物生态学报, 34, 58-63.] | |
32 | Wu TG, Wu M, Liu L, Xiao JH (2010b). Seasonal variations of leaf nitrogen and phosphorus stoichiometry of three herbaceous species in Hangzhou Bay coastal wetlands, China. Chinese Journal of Plant Ecology, 34, 23-28. |
(in Chinese with English abstract) [吴统贵, 吴明, 刘丽, 萧江华 (2010b). 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.植物生态学报, 34, 23-28.] | |
33 | Yan ER, Wang XH, Zhou W (2008). N:P stoichiometry in secondary succession in evergreen broad-leaved forest, Tiantong, East China. Journal of Plant Ecology(Chinese Version), 32, 13-22. |
(in Chinese with English abstract) [阎恩荣, 王希华, 周武 (2008). 天童常绿阔叶林演替系列植物群落的N:P化学计量特征.植物生态学报 32, 13-22.] | |
34 | Yan K, Fu DG, He F, Duan CQ (2011). Leaf nutrient stoichiometry of plants in the phosphorus-enriched soils of the Lake Dianchi watershed, southwestern China. Chinese Journal of Plant Ecology, 35, 353-361. |
(in Chinese with English abstract) [阎凯, 付登高, 何峰, 段昌群 (2011). 滇池流域富磷区不同土壤磷水平下植物叶片的养分化学计量特征. 植物生态学报, 35, 353-361.] | |
35 | Yan ZB, Kim NY, Han TS, Fang JY, Han WX (2013). Effects of nitrogen and phosphorus fertilization on leaf carbon, nitrogen and phosphorus stoichiometry of Arabidopsis thaliana. Chinese Journal of Plant Ecology, 37, 551-557. |
(in Chinese with English abstract) [严正兵, 金南瑛, 韩廷申, 方精云, 韩文轩 (2013). 氮磷施肥对拟南芥叶片碳氮磷化学计量特征的影响.植物生态学报, 37, 551-557.] | |
36 | Yang HM, Wang DM (2011). Advances in the study on ecological stoichiometry in grass-environment system and its response to environmental factors. Acta Prataculturae Sinica, 20, 244-252. |
(in Chinese with English abstract) [杨惠敏, 王冬梅 (2011). 草-环境系统植物碳氮磷生态化学计量学及其对环境因子的响应研究进展. 草业学报, 20, 244-252.] | |
37 | Yang K, Huang JH, Dong D, Ma WH, He JS (2010). Canopy leaf N and P stoichiometry in grassland communities of Qinghai-Tibetan Plateau, China. Chinese Journal of Plant Ecology, 34, 17-22. |
(in Chinese with English abstract) [杨阔, 黄建辉, 董丹, 马文红, 贺金生 (2010). 青藏高原草地植物群落冠层叶片氮磷化学计量学分析.植物生态学报, 34, 17-22.] | |
38 | Yu YF, Peng WX, Song TQ, Zeng FP, Wang KL, Du H, Lu SY, Fan FJ (2014). Stoichiometric characteristics of plant and soil C, N and P in different forest types in depressions between karst hills, southwest China. Chinese Journal of Applied Ecology, 25, 947-954. |
(in Chinese with English abstract) [俞月凤, 彭晚霞, 宋同清, 曾馥平, 王克林, 杜虎, 鹿士杨, 范夫静 (2014). 喀斯特峰丛洼地不同森林类型植物和土壤C、N、P 化学计量特征. 应用生态学报, 25, 947-954.] | |
39 | Zhang K, He MZ, Li XR, Tan HJ, Gao YH, Li G, Han GJ, Wu YY (2014). Foliar carbon, nitrogen and phosphorus stoichiometry of typical desert plants across the Alashan Desert. Acta Ecologica Sinica, 34, 6538-6547. |
(in Chinese with English abstract) [张珂, 何明珠, 李新荣, 谭会娟, 高艳红, 李刚, 韩国君, 吴杨杨 (2014). 阿拉善荒漠典型植物叶片碳、氮、磷化学计量特征研究.生态学报, 34, 6538-6547. ] | |
40 | Zhang LX, Bai YF, Han XG (2004). Differential responses of N:P stoichiometry of Leymus chinensis and carex korshinskyi to N additions in a steppe ecosystem in Nei Mongol. Acta Botanica Sinica, 46, 259-270. |
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