Progress of Research on Root Secretion under Different Crop Intercropping Systems
DOI:
https://doi.org/10.54691/90np7t76Keywords:
Plant-soil-microbiome; Agricultural; Root Secretion.Abstract
Food security has become a global concern with increasing population, declining natural resources, increasing energy costs and environmental changes.Enhancing positive legacy effects requires a deeper understanding of plant-soil-microbiome interactions and innovative crop, input, and soil management, which can help achieve agricultural sustainability.
Downloads
References
[1] Jing J, Cong W F, Bezemer T M. Legacies at work: plant–soil–microbiome interactions underpinning agricultural sustainability[J]. Trends in Plant Science, 2022, 27(8): 781-792.
[2] Wang G, Bei S, Li J, et al. Soil microbial legacy drives crop diversity advantage: Linking ecological plant–soil feedback with agricultural intercropping[J]. Journal of applied ecology, 2021, 58(3): 496-506.
[3] Wu LinKun W L K, Lin XiangMin L X M, Lin WenXiong L W X. Advances and perspective in research on plant-soil-microbe interactions mediated by root exudates[J]. 2014.
[4] WU Lin-Kun, LIN Xiang-Min, LIN Wen-Hsiung. Progress and prospects of research on plant-soil-microbe interactions mediated by root secretions[J]. Journal of Plant Ecology, 2014, 38(3):13.
[5] Jilan Long, Zheng Jiang, Dingqin Liu, Yuxuan Miao, Lingyan Zhou, Ying Feng, Jianing Pei, Ruiqiang Liu, Xuhui Zhou, Yuling Fu. Progress of plant root secretion and its mediated inter-root stimulatory effects under drought[J]. Journal of Plant Ecology, 2024, 48(preprint): 0-0.
[6] Li-Long. Competition-restoration production principle and facilitation theory of intercropping yield advantage[D]. Ecological Environment Research Center of Chinese Academy of Sciences,2001.
[7] Fan, F., Zhang, F., Song, Y. et al. Nitrogen Fixation of Faba Bean (Vicia faba L.) Interacting with a Non-legume in Two Contrasting Intercropping Systems. Plant Soil 283, 275–286 (2006).
[8] Liu X, Rahman T, Yang F, Song C, Yong T, Liu J, et al. PAR interception and utilization in different maize and soybean intercropping patterns. PloS one. 2017; 12(1):e0169218.
[9] Yang F, Huang S, Gao R, Liu W, Yong T, Wang X, et al. Growth of soybean seedlings in relay strip inter-cropping systems in relation to light quantity and red:far-red ratio. Field Crops Research. 2014; 155:245–253.
[10] Amosse´ C, Jeuffroy MH, Mary B, David C. Contribution of relay intercropping with legume cover crops on nitrogen dynamics in organic grain systems. Nutrient Cycling in Agroecosystems. 2013; 98(1): 1–14.
[11] Yang F, Liao D, Fan Y, Gao R, Wu X, Rahman T, et al. Effect of narrow-row planting patterns on crop competitive and economic advantage in maize–soybean relay strip intercropping system. Plant Produc-tion Science. 2016; 20(1): 1–11.
[12] Li Flood. Research methods of plant root secretion[J]. Genomics and Applied Biology, 2013, (4):540-547.
[13] Ma Junqing. Study of AMF symbiosis-induced changes in maize root secretion and the mechanism of changes based on a multi-omics approach[D]. Guangxi University,2023.
[14] Geng Gui. Effects of crop root secretions on soil carbon and nitrogen content, microbial population and enzyme activities[D]. Shenyang Agricultural University,2012.
[15] Duan Dongdong. Influence of drought and its soil legacy effects on plant growth in typical grasslands of the Loess Plateau[D]. Lanzhou University,2023.
[16] Zhang Yunlong. Effects of extreme drought on primary productivity and biomass of underground root systems in Inner Mongolian grasslands[D]. Chinese Academy of Agricultural Sciences, 2021.
[17] Adedokun E O, Rather I A, Bajpai V K, et al. 2016. Biocontrol efficacy of Lactobacillus fermentum YML014 against food spoilage moulds using the tomato puree model [J]. Frontiers in Life Science, 9(1): 64-68.
[18] Alharby H F, Al-Zahrani H S, Alzahrani Y M, et al. 2021. Maize Grain Extract Enriched with Polyamines Alleviates Drought Stress in Triticum aestivum through Up-Regulation of the Ascorbate– Glutathione Cycle, Glyoxalase System, and Polyamine Gene Expression [J]. Agronomy, 11(5): 949.
[19] Department of Plant Ecopathology, Department of Plant Protection, Beijing Agricultural University. 1991. Advances in plant inter-root ecology and inter-root biological control [M]. Beijing: People's University of China Press.
[20] Chen J-M, Jiang D-F, Liu S-T, et al. 2000. 2000. Ecological effects of mycorrhizal fungi on maize growth[J]. Ecological Agriculture Research, 8(03): 27-29.
[21] Chen Xiaoying. 2014. Effects of mycorrhizal fungi on carbon and nitrogen metabolism of maize under low temperature stress[D]. Beijing: Graduate School of Chinese Academy of Sciences (Northeast Institute of Geography and Agroecology).
Downloads
Published
Issue
Section
License

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.




