Pigeon pea-mediated soil microbial shifts improve agroecosystem multifunctionality in long-term maize-palisade grass intercropping.

IF 6.2 2区 环境科学与生态学 Q1 GENETICS & HEREDITY
Ahmad Nuruddin Khoiri, Nídia Raquel Costa, Carlos Alexandre Costa Crusciol, Cristiano Magalhães Pariz, Ciniro Costa, Juliano Carlos Calonego, André Michel de Castilhos, Daniel Martins de Souza, Paulo Roberto de Lima Meirelles, Igor Vilela Cru, Luiz Gustavo Moretti, João William Bossolani, Eiko Eurya Kuramae
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Abstract

Background: Intercropping systems enhance agricultural sustainability by promoting ecosystem multifunctionality (EMF). This study examined the impact of adding pigeon pea (M + PG + PP) into a maize-palisade grass (M + PG) intercropping system under a no-till system (NTS) on soil microbial communities and ecosystem services. After five consecutive growing seasons, bulk soil samples from a soybean-based crop-livestock system were analyzed using metagenomics.

Results: The inclusion of pigeon pea significantly improved the EMF index, with higher plant productivity and slightly enhanced outcomes in soil health, lamb meat productivity, and climate protection. The M + PG + PP treatment enriched Bradyrhizobium spp., which were positively correlated with soil health, plant productivity, and EMF index. Functional analysis indicated that M + PG + PP treatment enhanced nitrogen metabolism, biofilm formation, and exopolysaccharide (EPS) biosynthesis, improving soil fertility and microbial activity. Similarly, functional analysis of microbial plant growth-promoting traits revealed that the M + PG + PP treatment promoted microbial functions related to nitrogen and iron acquisition, sulfur assimilation, and plant colonization, all essential for plant growth and nutrient cycling. In contrast, the M + PG treatment primarily enhanced pathways related to competitive exclusion and phytohormone production.

Conclusions: These findings highlight the importance of incorporating legumes such as pigeon pea into intercropping systems to optimize ecosystem services, enhance soil health, and promote long-term agricultural productivity and sustainability.

鸽豆介导的土壤微生物迁移改善了玉米-栅栏草长期间作农业生态系统的多功能性。
背景:间作制度通过促进生态系统的多功能性(EMF)来提高农业的可持续性。研究了免耕条件下玉米-围栏草间作中添加木豆(M + PG + PP)对土壤微生物群落和生态系统服务功能的影响。在连续五个生长季节后,使用宏基因组学分析了大豆作物-牲畜系统的大块土壤样本。结果:鸽豆的加入显著提高了EMF指数,提高了植物生产力,并在土壤健康、羊肉生产力和气候保护方面略有改善。M + PG + PP处理将令缓生根瘤菌数量增加,且缓生根瘤菌数量与土壤健康、植物生产力和EMF指数呈正相关。功能分析表明,M + PG + PP处理促进了土壤氮素代谢、生物膜形成和胞外多糖(EPS)的合成,提高了土壤肥力和微生物活性。同样,植物微生物促生长性状的功能分析表明,M + PG + PP处理促进了植物生长和养分循环所必需的氮和铁的获取、硫的同化和植物定植等微生物功能。相比之下,M + PG处理主要增强了与竞争排斥和植物激素产生相关的途径。结论:这些发现强调了将鸽豆等豆科作物纳入间作系统对优化生态系统服务、增强土壤健康、促进长期农业生产力和可持续性的重要性。
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来源期刊
Environmental Microbiome
Environmental Microbiome Immunology and Microbiology-Microbiology
CiteScore
7.40
自引率
2.50%
发文量
55
审稿时长
13 weeks
期刊介绍: Microorganisms, omnipresent across Earth's diverse environments, play a crucial role in adapting to external changes, influencing Earth's systems and cycles, and contributing significantly to agricultural practices. Through applied microbiology, they offer solutions to various everyday needs. Environmental Microbiome recognizes the universal presence and significance of microorganisms, inviting submissions that explore the diverse facets of environmental and applied microbiological research.
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