Chin J Plant Ecol ›› 2025, Vol. 49 ›› Issue (9): 1424-1433.DOI: 10.17521/cjpe.2025.0006 cstr: 32100.14.cjpe.2025.0006
• Research Articles • Previous Articles Next Articles
LÜ Wei-Dong, DONG Quan-Min, SUN Cai-Cai, LIU Wen-Ting, LIU Yu-Zhen, ZHANG Zhen-Xiang, LI Meng-Qi, YANG Xiao-Xia*(
)
Received:2025-01-02
Accepted:2025-04-16
Online:2025-09-20
Published:2025-04-17
Contact:
YANG Xiao-Xia
Supported by:LÜ Wei-Dong, DONG Quan-Min, SUN Cai-Cai, LIU Wen-Ting, LIU Yu-Zhen, ZHANG Zhen-Xiang, LI Meng-Qi, YANG Xiao-Xia. Effects of yak and Tibetan sheep grazing on plant and microbial carbon and nitrogen pools in alpine grassland[J]. Chin J Plant Ecol, 2025, 49(9): 1424-1433.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.plant-ecology.com/EN/10.17521/cjpe.2025.0006
| 处理 Treatment | 牦牛数量(头) Number of yaks (head) | 藏羊数量(只) Number of Tibetan sheep (head) | 小区面积 Area of plot (hm2) | 小区重复个数 Number of plots |
|---|---|---|---|---|
| 不放牧 CK | 0 | 0 | 0.05 | 3 |
| 藏羊单牧 SG | 0 | 2 | 0.17 | 3 |
| 牦牛单牧 YG | 1 | 0 | 0.26 | 3 |
| 牦牛藏羊1:2混牧 MG1:2 | 1 | 2 | 0.43 | 3 |
| 牦牛藏羊1:4混牧 MG1:4 | 1 | 4 | 0.60 | 3 |
| 牦牛藏羊1:6混牧 MG1:6 | 1 | 6 | 0.76 | 3 |
Table 1 Experimental design of grazing
| 处理 Treatment | 牦牛数量(头) Number of yaks (head) | 藏羊数量(只) Number of Tibetan sheep (head) | 小区面积 Area of plot (hm2) | 小区重复个数 Number of plots |
|---|---|---|---|---|
| 不放牧 CK | 0 | 0 | 0.05 | 3 |
| 藏羊单牧 SG | 0 | 2 | 0.17 | 3 |
| 牦牛单牧 YG | 1 | 0 | 0.26 | 3 |
| 牦牛藏羊1:2混牧 MG1:2 | 1 | 2 | 0.43 | 3 |
| 牦牛藏羊1:4混牧 MG1:4 | 1 | 4 | 0.60 | 3 |
| 牦牛藏羊1:6混牧 MG1:6 | 1 | 6 | 0.76 | 3 |
| CK | SG | YG | MG1:2 | MG1:4 | MG1:6 | |
|---|---|---|---|---|---|---|
| 生物量 Biomass (g·m-2) | ||||||
| 地上 Aboveground | 168.9 ± 15.29ab | 161.7 ± 8.14ab | 182.4 ± 14.88a | 114.5 ± 13.18c | 117.0 ± 6.85c | 141.1 ± 5.52bc |
| 根系 Root | 2 569.2 ± 292.6a | 2 344.7 ± 215.1a | 2 391.5 ± 237.7a | 1 321.9 ± 166.1b | 1 483.4 ± 129.3b | 1 648.1 ± 200.4b |
| 碳含量 Carbon content (g·kg-1) | ||||||
| 地上 Aboveground | 409.2 ± 0.60a | 372.4 ± 0.53e | 412.9 ± 1.96a | 379.7 ± 2.46d | 385.8 ± 2.28c | 397.4 ± 0.90b |
| 根系 Root | 335.2 ± 3.98b | 327.1 ± 2.47b | 255.1 ± 3.12d | 297.6 ± 9.10c | 355.4 ± 1.48a | 322.1 ± 1.34b |
| 氮含量 Nitrogen content (g·kg-1) | ||||||
| 地上 Aboveground | 14.1 ± 0.43c | 14.5 ± 0.12c | 18.7 ± 0.27a | 15.0 ± 0.45bc | 15.8 ± 0.18b | 14.7 ± 0.27c |
| 根系 Root | 7.1 ± 0.15d | 7.5 ± 0.08c | 6.7 ± 0.07e | 8.4 ± 0.09a | 7.9 ± 0.06b | 6.8 ± 0.05e |
| 碳氮比 C:N | ||||||
| 地上 Aboveground | 29.3 ± 0.93a | 25.6 ± 0.20bc | 22.1 ± 0.27d | 25.4 ± 061c | 24.4 ± 0.22c | 27.0 ± 0.55b |
| 根系 Root | 47.5 ± 1.47a | 43.7 ± 0.68b | 37.9 ± 0.57c | 35.6 ± 1.35c | 44.7 ± 0.46ab | 47.2 ± 0.50a |
| 容重 Bulk density (g·cm-3) | ||||||
| 1.1 ± 0.02ab | 1.0 ± 0.01b | 1.1 ± 0.01a | 1.0 ± 0.04ab | 1.0 ± 0.02ab | 0.9 ± 0.02b |
Table 2 Effects of different grazing livestock on plant community biomass and carbon and nitrogen content (mean ± SE)
| CK | SG | YG | MG1:2 | MG1:4 | MG1:6 | |
|---|---|---|---|---|---|---|
| 生物量 Biomass (g·m-2) | ||||||
| 地上 Aboveground | 168.9 ± 15.29ab | 161.7 ± 8.14ab | 182.4 ± 14.88a | 114.5 ± 13.18c | 117.0 ± 6.85c | 141.1 ± 5.52bc |
| 根系 Root | 2 569.2 ± 292.6a | 2 344.7 ± 215.1a | 2 391.5 ± 237.7a | 1 321.9 ± 166.1b | 1 483.4 ± 129.3b | 1 648.1 ± 200.4b |
| 碳含量 Carbon content (g·kg-1) | ||||||
| 地上 Aboveground | 409.2 ± 0.60a | 372.4 ± 0.53e | 412.9 ± 1.96a | 379.7 ± 2.46d | 385.8 ± 2.28c | 397.4 ± 0.90b |
| 根系 Root | 335.2 ± 3.98b | 327.1 ± 2.47b | 255.1 ± 3.12d | 297.6 ± 9.10c | 355.4 ± 1.48a | 322.1 ± 1.34b |
| 氮含量 Nitrogen content (g·kg-1) | ||||||
| 地上 Aboveground | 14.1 ± 0.43c | 14.5 ± 0.12c | 18.7 ± 0.27a | 15.0 ± 0.45bc | 15.8 ± 0.18b | 14.7 ± 0.27c |
| 根系 Root | 7.1 ± 0.15d | 7.5 ± 0.08c | 6.7 ± 0.07e | 8.4 ± 0.09a | 7.9 ± 0.06b | 6.8 ± 0.05e |
| 碳氮比 C:N | ||||||
| 地上 Aboveground | 29.3 ± 0.93a | 25.6 ± 0.20bc | 22.1 ± 0.27d | 25.4 ± 061c | 24.4 ± 0.22c | 27.0 ± 0.55b |
| 根系 Root | 47.5 ± 1.47a | 43.7 ± 0.68b | 37.9 ± 0.57c | 35.6 ± 1.35c | 44.7 ± 0.46ab | 47.2 ± 0.50a |
| 容重 Bulk density (g·cm-3) | ||||||
| 1.1 ± 0.02ab | 1.0 ± 0.01b | 1.1 ± 0.01a | 1.0 ± 0.04ab | 1.0 ± 0.02ab | 0.9 ± 0.02b |
Fig. 2 Effects of different grazing livestock on carbon and nitrogen pools in plant communities. Different lowercase letters represent significant differences in the same index between different grazing treatments (p < 0.05). CK, no grazing; SG, only Tibetan sheep grazing; YG, only yak grazing. MG1:2, mixed grazing with ratio of yak to Tibetan sheep as 1:2; MG1:4, mixed grazing with ratio of yak to Tibetan sheep as 1:4; MG1:6, mixed grazing with ratio of yak to Tibetan sheep as 1:6.
Fig. 3 Effects of different grazing livestock on the contents of soil microbial biomass carbon and nitrogen as well as carbon and nitrogen pools. Different lowercase letters represent significant differences in the same index between different grazing treatments (p < 0.05). CK, no grazing; SG, only Tibetan sheep grazing; YG, only yak grazing. MG1:2, mixed grazing with ratio of yak to Tibetan sheep as 1:2; MG1:4, mixed grazing with ratio of yak to Tibetan sheep as 1:4; MG1:6, mixed grazing with ratio of yak to Tibetan sheep as 1:6.
| [1] |
Bai YF, Wu JG, Clark CM, Pan QM, Zhang LX, Chen SP, Wang QB, Han XG (2012). Grazing alters ecosystem functioning and C:N:P stoichiometry of grasslands along a regional precipitation gradient. Journal of Applied Ecology, 49, 1204-1215.
DOI URL |
| [2] | Bao SD (2000). Analysis of Soil Agriculture and Chemistry. 3rd ed. China Agriculture Press, Beijing. 39-58. |
| [鲍士旦 (2000). 土壤农化分析. 3版. 中国农业出版社, 北京. 39-58.] | |
| [3] |
Bardgett RD, Bullock JM, Lavorel S, Manning P, Schaffner U, Ostle N, Chomel M, Durigan G, Fry EL, Johnson D, Lavallee JM, Provost GL, Luo S, Png K, Sankaran M, et al. (2021). Combatting global grassland degradation. Nature Reviews Earth and Environment, 2, 720-735.
DOI |
| [4] |
Chang Q, Wang L, Ding SW, Xu TT, Li ZQ, Song XX, Zhao X, Wang DL, Pan DF (2018). Grazer effects on soil carbon storage vary by herbivore assemblage in a semi-arid grassland. Journal of Applied Ecology, 55, 2517-2526.
DOI URL |
| [5] |
Cuchillo-Hilario M, Wrage-Mönnig N, Isselstein J (2018). Forage selectivity by cattle and sheep co-grazing swards differing in plant species diversity. Grass and Forage Science, 73, 320-329.
DOI URL |
| [6] |
Dong SK, Gao HW, Xu GC, Hou XY, Long RJ, Kang MY, Lassoie JP (2007). Farmer and professional attitudes to the large-scale ban on livestock grazing of grasslands in China. Environmental Conservation, 34, 246-254.
DOI URL |
| [7] |
du Toit JT (2011). Coexisting with cattle. Science, 333, 1710-1711.
DOI URL |
| [8] | Fan YJ, Hou XY, Shi HX, Shi SL (2012). The response of carbon reserves of plants and soils to different grassland managements on alpine meadow of three headwater source regions. Grassland and Turf, 32(5), 41-46. |
| [范月君, 侯向阳, 石红霄, 师尚礼 (2012). 封育与放牧对三江源区高寒草甸植物和土壤碳储量的影响. 草原与草坪, 32(5), 41-46.] | |
| [9] | Fang JY, Guo ZD, Piao SL, Chen AP (2007). Terrestrial vegetation carbon sinks in China, 1981-2000. Science in China Series D: Earth Sciences, 50, 1341-1350. |
| [10] |
Feng B, Yang XX, Liu WT, Dong QM, Zhang CP, Liu YZ, Sun CC, Li CD, Shi G, Yang ZZ, Zhang XF, Wei LN (2022). Effects of different livestock assembly on the stoichiometry of alpine grassland functional groups. Acta Agrestia Sinica, 30, 1063-1070.
DOI |
|
[冯斌, 杨晓霞, 刘文亭, 董全民, 张春平, 刘玉祯, 孙彩彩, 李彩弟, 时光, 杨增增, 张小芳, 魏琳娜 (2022). 不同放牧方式对高寒草地功能群生态化学计量特征的影响. 草地学报, 30, 1063-1070.]
DOI |
|
| [11] | Fraser MD, Fleming HR, Moorby JM (2014). Traditional vs modern: role of breed type in determining enteric methane emissions from cattle grazing as part of contrasting grassland-based systems. PLoS ONE, 9, e107861. DOI: 10.1371/journal.pone.0107861. |
| [12] |
Fu G, Shen ZX, Zhang XZ, Zhou YT, Zhang YJ (2012). Response of microbial biomass to grazing in an alpine meadow along an elevation gradient on the Tibetan Plateau. European Journal of Soil Biology, 52, 27-29.
DOI URL |
| [13] | Gao XF, Wu CY, Han GD (2010). Steppe soil microorganisms is impacted by the grazing and their seasonal changes. Microbiology China Tongbao, 37, 1117-1122. |
| [高雪峰, 武春燕, 韩国栋 (2010). 草原土壤微生物受放牧的影响及其季节变化. 微生物学通报, 37, 1117-1122.] | |
| [14] |
Guo LB, Gifford RM (2002). Soil carbon stocks and land use change: a meta analysis. Global Change Biology, 8, 345-360.
DOI URL |
| [15] | Guo YJ, Li HP, Zhang QB, Bai L, Zhang W, Chen BL, Sang JH, Li Y, Shen YY (2024). Responses of soil available nitrogen mineralization ability to temperature and organic fertilizer addition in alpine grasslands of the Qinghai-Tibet Plateau. Pratacultural Science, 41, 1048-1056. |
| [郭雅婧, 李辉鹏, 张其斌, 白璐, 张伟, 陈宝林, 桑建辉, 李渊, 沈禹颖 (2024). 青藏高原高寒草地土壤速效氮矿化能力对温度和有机肥添加的响应. 草业科学, 41, 1048-1056.] | |
| [16] | Jia LX, Zhang F, Qiao JR, Yang Y, Zhao TQ, Zheng JH, Li MR, Zhang H, Zhao ML (2019). Effect of cutting regime on yield and nutritional value of Stipa grandis steppe. Chinese Journal of Grassland, 41(1), 9-16. |
| [贾丽欣, 张峰, 乔荠蓉, 杨阳, 赵天启, 郑佳华, 李梦然, 张昊, 赵萌莉 (2019). 放牧强度对荒漠草原无芒隐子草斑块碳氮化学计量特征的影响. 中国草地学报, 41(1), 9-16.] | |
| [17] | Li SQ, Wang XZ, Guo ZG, Zhou J, Xue R, Shen YY (2013). Effects of short-term grazing on C and N content in soil and soil microbe in alpine meadow in the north-eastern edge of the Qinghai Tibetan-Plateau. Chinese Journal of Grassland, 35(1), 55-60. |
| [李世卿, 王先之, 郭正刚, 周杰, 薛冉, 沈禹颖 (2013). 短期放牧对青藏高原东北边缘高寒草甸土壤及微生物碳氮含量的影响. 中国草地学报, 35(1), 55-60.] | |
| [18] | Liu B (2018). Effects and Regulatory Mechanisms of Different Herbivore Assemblages on Soil N Mineralization Rate. Master degree dissertation, Northeast Normal University, Changchun. |
| [刘柏 (2018). 不同放牧方式对草地土壤氮矿化速率的作用及调控机制. 硕士学位论文, 东北师范大学, 长春.] | |
| [19] |
Loucougaray G, Bonis A, Bouzillé JB (2004). Effects of grazing by horses and/or cattle on the diversity of coastal grasslands in western France. Biological Conservation, 116, 59-71.
DOI URL |
| [20] | Lv WD, Dong QM, Sun CC, Liu WT, Feng B, Liu YZ, Zhang ZX, Yang XX (2024). Effects of yak and tibetan sheep grazing on nitrogen pool of plant communities of alpine grassland in the Qinghai Tibet Plateau. Acta Agrestia Sinica, 32, 1420-1428. |
|
[吕卫东, 董全民, 孙彩彩, 刘文亭, 冯斌, 刘玉祯, 张振祥, 杨晓霞 (2024). 牦牛和藏羊放牧对青藏高原高寒草地植物群落氮库的影响. 草地学报, 32, 1420-1428.]
DOI |
|
| [21] | Mao C, Kou D, Peng YF, Qin SQ, Zhang QW, Yang YH (2021). Soil nitrogen transformations respond diversely to multiple levels of nitrogen addition in a Tibetan alpine steppe. Journal of Geophysical Research: Biogeosciences, 126, e2020JG006211. DOI: 10.1029/2020JG006211. |
| [22] |
Niu KC, He JS, Zhang ST, Lechowicz MJ (2016). Tradeoffs between forage quality and soil fertility: lessons from Himalayan rangelands. Agriculture, Ecosystems and Environment, 234, 31-39.
DOI URL |
| [23] | Wang GX, Cheng GD, Shen YP (2002). Soil organic carbon pool of grasslands on the Tibetan Plateau and its global implication. Journal of Glaciology and Geocryolog, 24, 693-700. |
| [王根绪, 程国栋, 沈永平 (2002). 青藏高原草地土壤有机碳库及其全球意义. 冰川冻土, 24, 693-700.] | |
| [24] |
Wang L, Wang DL, Bai YG, Jiang GT, Liu JS, Huang Y, Li YX (2010). Spatial distributions of multiple plant species affect herbivore foraging selectivity. Oikos, 119, 401-408.
DOI URL |
| [25] | Wang L, Zhang MN, Xu M, Wang DL (2021). A scientific basis for promoting grassland ecosystem multifunctionality by diversifying grazing livestock: a review. Chinese Science Bulletin, 66, 3791-3798. |
| [王岭, 张敏娜, 徐曼, 王德利 (2021). 草地多功能提升的多样化家畜放牧理论及应用. 科学通报, 66, 3791-3798.] | |
| [26] | Wang Z (2021). Effects of Different Grazing Types on Functional Traits of Dominant Species in Typical Steppe of Inner Mongolia. Master degree dissertation, Inner Mongolia University, Hohhot. |
| [王铮 (2021). 不同放牧方式对内蒙古典型草原优势种植物功能性状的影响. 硕士学位论文, 内蒙古大学, 呼和浩特.] | |
| [27] |
Winding A, Hund-Rinke K, Rutgers M (2005). The use of microorganisms in ecological soil classification and assessment concepts. Ecotoxicology and Environmental Safety, 62, 230-248.
PMID |
| [28] | Wu JH, Wang LX, Zhang JH, Zhuo Y, Wu SN, Wang FG, Xu ZC, Qi Y, Wen L (2018). Response of soil properties and microbial biomass to different grazing intensities in temperate typical steppe. Acta Agrestia Sinica, 26, 832-840. |
|
[邬嘉华, 王立新, 张景慧, 卓义, 武胜男, 王凤歌, 徐智超, 祁瑜, 温璐 (2018). 温带典型草原土壤理化性质及微生物量对放牧强度的响应. 草地学报, 26, 832-840.]
DOI |
|
| [29] | Xiong K, Jin ML, Yu T, Cui YZ (2015). Stoichiometry characteristics of CNP in typical steppe plant at different grazing gradient. Journal of Green Science and Technology, (7), 4-7. |
| [熊坤, 金美伶, 于婷, 崔艳智 (2015). 不同放牧梯度上典型草原植物碳氮磷化学计量特征. 绿色科技, (7), 4-7.] | |
| [30] | Yan ZQ, Qi YC, Dong YS, Peng Q, Sun LJ, Jia JQ, Cao CC, Guo SF, He YL (2014). Nitrogen cycling in grassland ecosystem in response to climate change and human activities. Acta Prataculturae Sinica, 23, 279-292. |
|
[闫钟清, 齐玉春, 董云社, 彭琴, 孙良杰, 贾军强, 曹丛丛, 郭树芳, 贺云龙 (2014). 草地生态系统氮循环关键过程对全球变化及人类活动的响应与机制. 草业学报, 23, 279-292.]
DOI |
|
| [31] | Yang XX, Dong QM, Chu H, Ding CX, YU Y, Zhang CP, Zhang YF, Yang ZZ (2019). Different responses of soil element contents and their stoichiometry (C:N:P) to yak grazing and Tibetan sheep grazing in an alpine grassland on the eastern Qinghai-Tibetan Plateau. Agriculture Ecosystems and Environment, 285, 106628. DOI: 10.1016/j.agee.2019.106628. |
| [32] |
Zhang YF, Yang XX, Dong QM, Zhang CP, Yu Y, Yang ZZ, Feng B, Chu H, Wei LN, Zhang XF (2019). Effects of mixed of yak and tibetan sheep on feed intake of grazing livestock and plant compensation growth. Acta Agrestia Sinica, 27, 1607-1614.
DOI |
|
[张艳芬, 杨晓霞, 董全民, 张春平, 俞旸, 杨增增, 冯斌, 褚晖, 魏琳娜, 张小芳 (2019). 牦牛和藏羊混合放牧对放牧家畜采食量和植物补偿性生长的影响. 草地学报, 27, 1607-1614.]
DOI |
|
| [33] |
Zhang YJ, Zhu JT, Shen RN, Wang L (2020). Research progress on the effects of grazing on grassland ecosystem. Chinese Journal of Plant Ecology, 44, 553-564.
DOI URL |
|
[张扬建, 朱军涛, 沈若楠, 王荔 (2020). 放牧对草地生态系统影响的研究进展. 植物生态学报, 44, 553-564.]
DOI |
| [1] | XIAO Zhi-Shu. Advances in pollination and seed dispersal of tropical liana Mucuna (Fabaceae): current status and outlook [J]. , 2027, 51(动植物互作): 0-. |
| [2] | LIU Zhi-Xiang, LI Fenglan, HUANG Xiaolei. The complexity of insect gall ecosystem and advances in gall induction mechanisms [J]. , 2027, 51(动植物互作): 0-. |
| [3] | Zhao Zhi-Yi, HUANG Wei-Quan, HU Jing-Yan, WANG Yi-yue, Yu Mengjie, Yuhuan Wu. Advances of plant litter decomposition and its microbial mechanisms in peatland [J]. , 2026, 50(预发表): 0-. |
| [4] | . Plant Responses to Cadmium Contamination: Mechanisms of Uptake, Transport, and Physiological-Molecular Mitigation [J]. Chin J Plant Ecol, 2026, 50(预发表): 1-. |
| [5] | CHEN Xin-Rui, SONG Wei-Feng, Yi WANG, Hao WANG, Shi-Yao SUN, Cai-Jiang WANG, Shi-Peng CAI, Hong REN, Yu-Tao HE, Min PAN, Guang-Xiu CAO, Yi YAN, Zhi-Yong XIE, WANG Hang. Nitrogen and phosphorus resorption characteristics and adaptive strategies of typical emergent plants in the lakeshore zone of Dianchi Lake, China [J]. , 2026, 50(预发表): 0-. |
| [6] | Qing He, Xudong Yuan, Boshen Ren, Zhiyang Feng, Mengzhen Lu, Qiaoling Lin, Qinghu Jiang, Linsen Yang, Huiliang Yu, Hui Yao, Jingyuan Yang, Feng Liu, Mingxi Jiang. Effects of Erigeron annuus invasion on plant community structure and diversity in subalpine peat wetlands [J]. Chin J Plant Ecol, 2026, 50(预发表): 0-. |
| [7] | XI Nian-Xun. The impact of multiple global change factors on traits of mycorrhizal plants [J]. , 2026, 50(预发表): 0-. |
| [8] | Yang Meihua, Zhang ZiJia, Qiao Dong, Feng Junna, Pang ZiJie, Qian Long, Liu Zhihui, Cai Nana, Hu Zhongmin, Yang Guojiao. A dataset of arbor community surveys and species diversity in Hainan tropical forests [J]. Chin J Plant Ecol, 2026, 50(预发表): 0-. |
| [9] | ZOU Ji-Kai, WU Jia-Yi, GU Yun-Yi, CHEN Bao-Ming. Effects of different nitrogen forms and arbuscular mycorrhizal fungi on competitive ability of invasive alien plant Bidens alba [J]. Chin J Plant Ecol, 2026, 50(3): 722-730. |
| [10] | DUAN Shi-Long, YU Cheng-Jin, XU Xin-Yao, FENG Gu, XIE Xian-An, ZHANG Lin. Plant-arbuscular mycorrhizal fungi-bacteria continuum and its maintenance mechanisms [J]. Chin J Plant Ecol, 2026, 50(3): 600-611. |
| [11] | JIANG Kang-Wei, LÜ Cheng, WANG Ya-Fei, LI Hong, ZHANG Zhi-Qing, WANG Yu, ZHANG Qing-Qing, Tuerxunnayi REYIMU. Effects of soil arbuscular mycorrhizal fungal communities on soil multifunctionality under grazing disturbance [J]. Chin J Plant Ecol, 2026, 50(3): 685-699. |
| [12] | LIU Run-Hong, YANG Liu-Rong, LIANG Hui-Ting, SHEN Wei-Jun. Research progress and prospect on phosphorus acquisition and utilization strategies of arbuscular mycorrhizal and ectomycorrhizal plants [J]. Chin J Plant Ecol, 2026, 50(3): 566-583. |
| [13] | REN Xi-Tong, LI Ying, ZHANG Yu, XIONG Hu-An-He, ZHANG Rui-Ke, QI Shan-Shan, DAI Zhi-Cong, DU Dao-Lin. Interaction between arbuscular mycorrhizal fungi and litter contributes to responses of Solidago canadensis to nutrient stress [J]. Chin J Plant Ecol, 2026, 50(3): 710-721. |
| [14] | JIANG Qing-Hong, DING Lu, WANG Zhe, ZHENG Chun-Li, FENG Zhao-Chuo. Growth-promoting effects of arbuscular mycorrhizal fungi combined with different functional bacteria on Medicago sativa [J]. Chin J Plant Ecol, 2026, 50(3): 774-788. |
| [15] | ZHANG He-Kai, XIE Wei, CHEN Bao-Dong, YIN Chun-Ying. Roles and mechanisms of mycorrhizal fungi in maintaining plant species coexistence [J]. Chin J Plant Ecol, 2026, 50(3): 536-551. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
Copyright © 2026 Chinese Journal of Plant Ecology
Tel: 010-62836134, 62836138, E-mail: apes@ibcas.ac.cn, cjpe@ibcas.ac.cn