
Chinese Journal of Applied Ecology ›› 2026, Vol. 37 ›› Issue (4): 1247-1256.doi: 10.13287/j.1001-9332.202604.038
• Original Articles • Previous Articles Next Articles
YANG Guiqiao1,2,3, ZHAN Juan1,3, XU Weihong4, LIU Qinghua1,3, WANG Pengpeng1,3, ZHANG Sheng2, WANG Jianmei2, PANG Xueyong1,3*
Received:2025-11-28
Revised:2026-03-17
Online:2026-04-18
Published:2026-05-29
YANG Guiqiao, ZHAN Juan, XU Weihong, LIU Qinghua, WANG Pengpeng, ZHANG Sheng, WANG Jianmei, PANG Xueyong. Screening, identification, and growth-promoting effects of cold-tolerant phosphate-solubilizing bacteria from high-altitude cold engineering area[J]. Chinese Journal of Applied Ecology, 2026, 37(4): 1247-1256.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202604.038
| [1] 李正虎, 杨杰倩, 瞿广飞, 等. 高寒高海拔地区生态防护工程中土壤生境研究进展. 生态产业科学与磷氟工程, 2025, 40(1): 101-109 [2] 龙建廷, 乔伟, 许赵佳, 等. 青藏高原高寒矿区植被恢复技术研究进展. 中国饲料, 2023(15): 138-143 [3] 张静晓, 程莉渊, 李慧, 等. 重大铁路工程施工对沿线生态环境的影响. 工程管理学报, 2024, 38(5): 75-80 [4] 韩赟. 兰新高铁建设在甘肃祁连山区的生态环境修复措施. 铁路节能环保与安全卫生, 2017, 7(3): 119-121 [5] 胡振琪. 矿山复垦土壤重构的理论与方法. 煤炭学报, 2022, 47(7): 2499-2515 [6] 胡振琪. 煤矿山复垦土壤剖面重构的基本原理与方法. 煤炭学报, 1997, 22(6): 59-64 [7] Wang XY, Li Y, Wei Y, et al. Effects of fertilization and reclamation time on soil bacterial communities in coal mining subsidence areas. Science of the Total Environment, 2020, 739: 139882 [8] Zhao R, Shi Y, Huang LF, et al. Dynamics of protist and bacterial communities during the nitrogen removal by ecological floating beds of Sesuvium portulacastrum. Ecological Processes, 2025, 14: 35 [9] Bai YC, Chang YY, Hussain M, et al. Soil chemical and microbiological properties are changed by long-term chemical fertilizers that limit ecosystem functioning. Microorganisms, 2020, 8: 694 [10] Kafle A, Cope KR, Raths R, et al. Harnessing soil microbes to improve plant phosphate efficiency in cropping systems. Agronomy, 2019, 9: 127 [11] Li C, Sheng H, Tan MX, et al. Rhythmic radial oxygen loss enhances soil phosphorus bioavailability. Nature Communications, 2025, 16: 4413 [12] 关鑫鑫, 王传宇, 李翠兰, 等. 青藏高原不同类型草地土壤磷素分布及其影响因素. 水土保持学报, 2022, 36(5): 351-359 [13] Hong JT, Pang B, Zhao LR, et al. Soil phosphorus crisis in the Tibetan alpine permafrost region. Nature Communications, 2025, 16: 6204 [14] Cui YX, Bing HJ, Fang LC, et al. Extracellular enzyme stoichiometry reveals the carbon and phosphorus limitations of microbial metabolisms in the rhizosphere and bulk soils in alpine ecosystems. Plant and Soil, 2021, 458: 7-20 [15] Kour D, Yadav AN. Alleviation of cold stress in wheat with psychrotrophic phosphorus solubilizing Acinetobacter rhizosphaerae EU-KL44. Brazilian Journal of Microbiology, 2023, 54: 371-383 [16] Shi QW, Ma R, Sun ZP, et al. Low nocturnal temperature alters tomato foliar and root phosphorus fractions allocation by reducing soil phosphorus availability. Horticul-turae, 2023, 9: 536 [17] 段连学, 马祥, 琚泽亮, 等. 高寒地区氮肥减量分期施用对燕麦生物量及氮肥利用率的影响. 草地学报, 2024, 32(10): 3185-3193 [18] 徐洁章, 韩科峰, 吴良欢. 长期外源有机物料添加对双季稻产量、土壤肥力及土壤质量的影响. 中国农业大学学报, 2024, 29(12): 23-32 [19] 翟祎笑, 朱朝华, 李欣荣, 等. 黄芪(Astragalus membranaceus (Fisch.) Bge.)种子内生细菌群落结构和功能. 生态学杂志, 2025, 44(11): 3578-3587 [20] 王安康, 王继继, 司亚坤, 等. 真菌调控旱田土壤磷素周转的机制. 应用生态学报, 2025, 36(10): 2998-3006 [21] Faller L, Leite MFA, Kuramae EE. Enhancing phosphate-solubilising microbial communities through artificial selection. Nature Communications, 2024, 15: 1649 [22] Itelima JU, Bang WJ, Onyimba IA, et al. A review: Biofertilizer; a key player in enhancing soil fertility and crop productivity. Microbiology and Biotechnology, 2018, 2: 22-28 [23] 杨贵巧, 詹娟, 张胜, 等. 耐寒溶磷微生物解磷机制及生态功能, 应用生态学报, 2025, 36(11): 3523-3534 [24] Gulati A, Rahi P, Vyas P. Characterization of phosphate-solubilizing fluorescent pseudomonads from the rhizosphere of seabuckthorn growing in the cold deserts of Himalayas. Current Microbiology, 2008, 56: 73-79 [25] Kumar A, Guleria S, Mehta P, et al. Plant growth-promoting traits of phosphate solubilizing bacteria isolated from Hippophae rhamnoides L. (Sea-buckthorn) growing in cold desert Trans-Himalayan Lahul and Spiti regions of India. Acta Physiologiae Plantarum, 2015, 37: 48 [26] 刘晓婷, 姚拓. 高寒草地耐低温植物根际促生菌的筛选鉴定及特性研究. 草业学报, 2022, 31(8): 178-187 [27] Mukhia S, Kumar A, Kumari P, et al. Psychrotrophic plant beneficial bacteria from the glacial ecosystem of Sikkim Himalaya: Genomic evidence for the cold adaptation and plant growth promotion. Microbiological Research, 2022, 260: 127049 [28] 巩文峰, 邢瑜琪, 卓玛曲措, 等. 一株色季拉山长鞭红景天根际溶磷菌的分离、鉴定及其低温适应性分析. 南方农业学报, 2018, 49(2): 280-286 [29] Li MY, Wang JL, Yao T, et al. Isolation and characte-rization of cold-adapted PGPB and their effect on plant growth promotion. Journal of Microbiology and Biotechnology, 2021, 31: 1218-1230 [30] 柴加丽, 姚拓. 高寒草甸多枝黄耆根际促生菌特性研究与鉴定. 中国草地学报, 2022, 44(10): 68-74 [31] 张晗昱, 李丹丹, 郑瑾, 等. 青藏高原多年冻土区解磷菌筛选及抗逆能力评价. 微生物学报, 2024, 64(6): 1876-1890 [32] Valle Expósito CD, López JÁ, Liu JQ, et al. Development of a cold-active microbial compound biofertilizer on the improvement for rice (Oryza sativa L.) tolerance at low-temperature. Rhizosphere, 2022, 24: 100586 [33] Yarzábal LA, Monserrate L, Buela L, et al. Antarctic Pseudomonas spp. promote wheat germination and growth at low temperatures. Polar Biology, 2018, 41: 2343-2354 [34] Katiyar V, Goel R. Solubilization of inorganic phosphate and plant growth promotion by cold tolerant mutants of Pseudomonas fluorescens. Microbiological Research, 2003, 158: 163-168 [35] Chandra S, Askari K, Kumari M. Optimization of indole acetic acid production by isolated bacteria from Stevia rebaudiana rhizosphere and its effects on plant growth. Journal of Genetic Engineering and Biotechnology, 2018, 16: 581-586 [36] Wang NQ, Wang TQ, Chen Y, et al. Microbiome convergence enables siderophore-secreting-rhizobacteria to improve iron nutrition and yield of peanut intercropped with maize. Nature Communications, 2024, 15: 839 [37] Persmark M, Expert D, Neilands JB. Isolation, characterization, and synthesis of chrysobactin, a compound with siderophore activity from Erwinia chrysanthemi. Journal of Biological Chemistry, 1989, 264: 3187-3193 [38] 鲁如坤. 土壤农业化学分析方法. 北京: 中国农业科学技术出版社, 2000: 57-77 [39] Dasila H, Sah VK, Jaggi V, et al. Cold-tolerant phosphate-solubilizing Pseudomonas strains promote wheat growth and yield by improving soil phosphorous (P) nutrition status. Frontiers in Microbiology, 2023, 14: 1135693 [40] Rizvi A, Ahmed B, Khan MS, et al. Psychrophilic bacterial phosphate-biofertilizers: A novel extremophile for sustainable crop production under cold environment. Microorganisms, 2021, 9: 2451 [41] Yan H, Wang TY, Wang HC, et al. Screening and identification of cold-tolerant phosphorus and potassium solubilizing bacteria and their growth-promoting effects on soybean in cold regions. Agronomy, 2025, 15: 40 [42] 许昌超, 张俊涛, 叶少萍, 等. 土壤中一株溶磷青霉菌的分离鉴定及其应用效果研究. 中国土壤与肥料, 2020(6): 272-278 [43] Priya P, Aneesh B, Sivakumar KC, et al. Comparative proteomic analysis of saline tolerant, phosphate solubilizing endophytic Pantoea sp., and Pseudomonas sp. isolated from Eichhornia rhizosphere. Microbiological Research, 2022, 265: 127217 [44] Yi YM, Huang WY, Ge Y. Exopolysaccharide: A novel important factor in the microbial dissolution of tricalcium phosphate. World Journal of Microbiology and Biotechnology, 2008, 24: 1059-1065 [45] Vanneste S, Pei YR, Friml J. Mechanisms of auxin action in plant growth and development. Nature Reviews Molecular Cell Biology, 2025, 26: 648-666 [46] Etesami H, Glick BR. Bacterial indole-3-acetic acid: A key regulator for plant growth, plant-microbe interactions, and agricultural adaptive resilience. Microbiological Research, 2024, 281: 127602 [47] Yahya M, ul Islam E, Rasul M, et al. Differential root exudation and architecture for improved growth of wheat mediated by phosphate solubilizing bacteria. Frontiers in Microbiology, 2021, 12: 744094 [48] Sasirekha B, Srividya S. Siderophore production by Pseudomonas aeruginosa FP6, a biocontrol strain for rhizoctonia solani and colletotrichum gloeosporioides causing diseases in chilli. Agriculture and Natural Resources, 2016, 50: 250-256 [49] Farina R, Beneduzi A, Ambrosini A, et al. Diversity of plant growth-promoting rhizobacteria communities associa-ted with the stages of canola growth. Applied Soil Eco-logy, 2012, 55: 44-52 [50] Iqbal N, Rahman MM, Cawthray GR, et al. Drought and herbivory differentially modulate the leaf exudation of organic acids in chickpea. Journal of Soil Science and Plant Nutrition, 2024, 24: 2722-2733 [51] Rai A, Sharma NK, Singh VK, et al. Study of phosphate solubilizing fluorescent Pseudomonas recovered from rhizosphere and endorhizosphere of Aloe barbadensis (L.). Geomicrobiology Journal, 2023, 40: 347-359 [52] Wang LL, Zhou FY, Zhou JB, et al. Genomic analysis of Pseudomonas asiatica JP233: An efficient phosphate-solubilizing bacterium. Genes, 2022, 13: 2290 [53] 武燕茹, 杨文权, 刘家庆, 等. 1株矮生嵩草根际高效溶磷菌的筛选、鉴定与促生效果研究. 草地学报, 2025, 33(2): 410-418 [54] Pan L, Cai BY. Phosphate-solubilizing bacteria: Advances in their physiology, molecular mechanisms and microbial community effects. Microorganisms, 2023, 11: 2904 |
| [1] | WU Minghao, CUI Junjing, YUN Luyang, JIN Wende, LI Hao, ZHANG Renfei. Ecological restoration zoning control for the plain section of the Yongding River based on the coupling of landscape ecological risks and ecosystem service values [J]. Chinese Journal of Applied Ecology, 2026, 37(4): 1187-1201. |
| [2] | ZHU Jinli, ZHAO Qing, LUO Hao, ZHANG Chi. Ecological restoration path of territorial space in the Guangdong-Hong Kong-Macao Greater Bay Area, China [J]. Chinese Journal of Applied Ecology, 2026, 37(2): 563-571. |
| [3] | ZHU Zongbin, YAO Longjie, WAN Yingna, XUE Liyao, LI Qianguo, XU Bingjie, XU Xinyou, YUE Bangrui. Delineation of territorial space ecological restoration zoning based on the characteristics of ‘source-flow-sink’ of ecosystem services: A case study of Xi’an City, Shaanxi Province, China [J]. Chinese Journal of Applied Ecology, 2026, 37(1): 243-252. |
| [4] | YAO Longjie, ZHANG Donglin, ZHU Danli, ZHU Zongbin, PAN Weitao, YUE Bangrui. Spatial prioritization in territorial ecological restoration: Theoretical foundation, assessment framework, and planning issues [J]. Chinese Journal of Applied Ecology, 2025, 36(9): 2885-2898. |
| [5] | REN Haiyan, YUAN Yuan, ZHAO Wenduo, LI Anting, LI Yuxin, SONG Xiaohui. Advances in the application of stress-resilient and growth-enhancing seed coating and pelleting technology for ecological restoration [J]. Chinese Journal of Applied Ecology, 2025, 36(8): 2563-2570. |
| [6] | LIU Xinwei, KONG Fanjie, LIU Wen, TANG Xiumei, DU Peiyu, HUAI Heju, SUN Xiang, ZHANG Dongyuan. Ecological restoration zoning of territorial space in the Tarim River Basin under the spatial optimization-functional improvement framework [J]. Chinese Journal of Applied Ecology, 2025, 36(12): 3625-3635. |
| [7] | ZHANG Lun, ZHANG Yulong, XIA Zhenyao, DING Yu, LIU Chang, ZHANG Bingliu, ZHOU Mengxia, CUI Lei, XIAO Hai. Evaluation of ecological restoration effect of high-steep rocky slopes in dry-hot valley region [J]. Chinese Journal of Applied Ecology, 2025, 36(12): 3636-3646. |
| [8] | JIA Lei, ZHANG Mi, XIAO Wei, PU Yini, SHI Jie, GE Pei, QIAO Heng, LUO Shiji, ZHANG Shenbao. Enhancement of lake CO2 uptake by pen removal and ecological restoration and its driving factors [J]. Chinese Journal of Applied Ecology, 2025, 36(12): 3787-3798. |
| [9] | CHEN Kunlun, LIN Rumeng, CHEN Nenyu, HE Lina, HE Qingjun. Landscape ecological risk assessment and ecological security pattern construction in Chuxiong Yi Autonomous Prefecture, Yunnan Province, China [J]. Chinese Journal of Applied Ecology, 2025, 36(11): 3467-3478. |
| [10] | YANG Guiqiao, ZHAN Juan, ZHANG Sheng, WANG Jianmei, PANG Xueyong. Phosphate-solubilizing mechanisms and ecological functions of cold-tolerant phosphate-solubilizing microorganisms [J]. Chinese Journal of Applied Ecology, 2025, 36(11): 3523-3534. |
| [11] | CHU Wei, WANG Yanyan, GUO Yue, PENG Yanhui, WU Zeyan, LIN Wenxiong. Screening of Casuarina equisetifolia rhizosphere-promoting bacteria and their effects on seed germination and seedling growth [J]. Chinese Journal of Applied Ecology, 2024, 35(8): 2159-2166. |
| [12] | KAN Heng, DING Guanqiao, GUO Jie, LIU Jiang, OU Minghao. Identification of key areas for ecological restoration of territorial space based on ecological security pattern analysis: A case study of the Taihu Lake city cluster [J]. Chinese Journal of Applied Ecology, 2024, 35(8): 2217-2227. |
| [13] | CHEN Junru, JIANG Zihao, XIAO Bo, YANG Yuhang, DOU Weiqiang, CAO Yousong. Rainwater harvesting effect of biocrusted soil-surfaces and the key influencing factors in the hilly region of Chinese Loess Plateau [J]. Chinese Journal of Applied Ecology, 2024, 35(6): 1645-1652. |
| [14] | GAO Mengwen, HU Yecui, LIU Xinwei, LIANG Mengyin, KONG Fanjie, BAI Yuping. Delineation of water ecological restoration zoning from a multi-dimensional perspective: A case study in Hechi, a typical karst region [J]. Chinese Journal of Applied Ecology, 2024, 35(6): 1661-1670. |
| [15] | ZHONG Rui, WANG Jiaoyue, XU Tingting, XI Fengming, HAN Mei, HU Qinqin, BING Longfei, YIN Yan. Assessment of carbon reduction and sink enhancement potential of photovoltaic+mining ecological restoration model [J]. Chinese Journal of Applied Ecology, 2024, 35(5): 1379-1387. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||