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应用生态学报 ›› 2026, Vol. 37 ›› Issue (7): 2463-2472.doi: 10.13287/j.1001-9332.202607.030

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根系分泌物与菌根网络介导的禾豆间作系统氮磷互促机制研究进展

于小倩1,2, 高英志1*   

  1. 1新疆农业大学草业学院, 西部干旱荒漠区草地资源与生态教育部重点实验室, 乌鲁木齐 830052;
    2东北师范大学草地科学研究所, 植被生态科学教育部重点实验室/吉林松嫩草地生态系统国家野外科学观测研究站/国家环境保护湿地生态与植被恢复重点实验室, 长春 130024
  • 收稿日期:2025-12-11 接受日期:2026-06-04 出版日期:2026-07-18 发布日期:2027-01-18
  • 通讯作者: *E-mail: gaoyz108@nenu.edu.cn
  • 作者简介:于小倩, 女, 1999年生, 博士研究生。主要从事土壤生态学研究。E-mail: yuxq390@nenu.edu.cn
  • 基金资助:
    国家重点研发计划项目(2025YFE0103800)和国家自然科学基金项目(W2412123,32271579)资助。

Research advances in the mechanisms of nitrogen-phosphorus synergy mediated by root exudates and mycorrhizal networks in cereal-legume intercropping systems

YU Xiaoqian1,2, GAO Yingzhi1*   

  1. 1Key Laboratory of Grassland Resources and Ecology of Western Arid Desert Area of the Ministry of Education, College of Grassland Science, Xinjiang Agricultural University, Urumqi 830052, China;
    2Key Laboratory of Vegetation Ecology of the Ministry of Education/Jilin Songnen Grassland Ecosystem National Observation and Research Station/State Environmental Protection Key Laboratory of Wetland Ecology and Vegetation Restoration, Institute of Grassland Science, Northeast Normal University, Changchun 130024, China
  • Received:2025-12-11 Accepted:2026-06-04 Online:2026-07-18 Published:2027-01-18

摘要: 禾豆间作系统通过植物根系与地下生物互作实现氮磷高效利用,是绿色农业的重要措施。本文系统总结了禾豆间作系统根系分泌物与菌根网络介导的氮磷互促机制,并对未来研究方向进行了展望。禾本科植物通过分泌有机酸与磷酸酶活化其根际难溶性磷,释放的有效磷经公共菌根网络转移至豆科植物根际,缓解其固氮过程的磷限制,激活能量代谢,启动根瘤形成,促进豆科结瘤固氮;禾本科植物根系分泌物还可通过刺激豆科植物关键结瘤基因表达等方式直接促进其固氮。菌根网络能将豆科植物固定的氮素以氨基酸等形式转运至禾本科植物,促进其根系发育与分泌物释放,增强磷活化能力。根系分泌物和公共菌根网络协同形成“氮磷互促”循环,显著提升禾豆间作系统的养分利用效率和生产力。未来应整合代谢组学、宏基因组、根际原位成像技术及人工智能等技术,阐明根系-菌根-微生物的多界面耦合机制,实现间作系统氮磷互促效率的精准预测与调控,为发展绿色智慧农业提供理论支撑。

关键词: 种间互作, 公共菌根网络, 生物固氮, 磷活化, 氮转移

Abstract: The cereal-legume intercropping system achieves efficient utilization of nitrogen and phosphorus through interactions between roots and soil organisms, making it a key practice in sustainable agriculture. We systematically summarized the nitrogen and phosphorus mutual promotion mechanism mediated by root exudates and mycorrhizal networks in the cereal-legume intercropping system, and proposed future research directions. Cereal plants mobilize phosphorus in rhizosphere by secreting organic acids and phosphatases. The released phosphorus is then transferred to the rhizosphere of legumes via the common mycorrhizal network (CMN), alleviating phosphorus limitations, activating energy metabolism, initiating nodule formation, and promoting nitrogen fixation in legumes. Root exudates of cereal plants can directly enhance biological nitrogen fixation in legumes by stimulating the expression of key nodulation genes. The CMN transport nitrogen fixed by legumes to cereal plants in the form of amino acids and other compounds, thereby promoting root development and exudate release in cereal plants, and enhancing phosphorus mobilization capacity. Root exudates and CMN work together to form “nitrogen-phosphorus synergy” cycle, significantly enhancing nutrient use efficiency and productivity in cereal-legume intercropping systems. In the future, technologies such as metabolomics, metagenomics, rhizosphere in situ imaging, and artificial intelligence should be integrated to elucidate the multi-interface coupling mechanisms among roots, mycorrhizae, and microorganisms. This will enable the precise prediction and regulation of nitrogen-phosphorus synergy in intercropping systems, thereby providing a theoretical foundation for the development of green and smart agriculture.

Key words: interspecific interaction, common mycorrhizal network, biological nitrogen fixation, phosphorus activation, nitrogen transfer