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猕猴桃-姬松茸间作有效提高了产量、养分吸收和根际细菌群落。

Kiwifruit-Agaricus blazei intercropping effectively improved yield productivity, nutrient uptake, and rhizospheric bacterial community.

作者信息

Shen Chuan, Li Xia, Qin Jianfeng

机构信息

Shaannan Eco-Economy Research Center, Ankang University, Ankang, 725000, China.

Department of Electronic and Information Engineering, Ankang University, Ankang, 725000, China.

出版信息

Sci Rep. 2024 Jul 17;14(1):16546. doi: 10.1038/s41598-024-66030-z.

Abstract

Intercropping systems have garnered attention as a sustainable agricultural approach for efficient land use, increased ecological diversity in farmland, and enhanced crop yields. This study examined the effect of intercropping on the kiwifruit rhizosphere to gain a deeper understanding of the relationships between cover plants and kiwifruit in this sustainable agricultural system. Soil physicochemical properties and bacterial communities were analyzed using the Kiwifruit-Agaricus blazei intercropping System. Moreover, a combined analysis of 16S rRNA gene sequencing and metabolomic sequencing was used to identify differential microbes and metabolites in the rhizosphere. Intercropping led to an increase in soil physicochemical and enzyme activity, as well as re-shaping the bacterial community and increasing microbial diversity. Proteobacteria, Bacteroidota, Myxococcota, and Patescibacteria were the most abundant and diverse phyla in the intercropping system. Expression analysis further revealed that the bacterial genera BIrii41, Acidibacter, and Altererythrobacter were significantly upregulated in the intercropping system. Moreover, 358 differential metabolites (DMs) were identified between the monocropping and intercropping cultivation patterns, with fatty acyls, carboxylic acids and derivatives, and organooxygen compounds being significantly upregulated in the intercropping system. The KEGG metabolic pathways further revealed considerable enrichment of DMs in ABC transporters, histidine metabolism, and pyrimidine metabolism. This study identified a significant correlation between 95 bacterial genera and 79 soil metabolites, and an interactive network was constructed to explore the relationships between these differential microbes and metabolites in the rhizosphere. This study demonstrated that Kiwifruit-Agaricus blazei intercropping can be an effective, labor-saving, economic, and sustainable practice for reshaping bacterial communities and promoting the accumulation and metabolism of beneficial microorganisms in the rhizosphere.

摘要

间作系统作为一种可持续农业方式,因其能高效利用土地、增加农田生态多样性并提高作物产量而备受关注。本研究考察了间作对猕猴桃根际的影响,以更深入了解这种可持续农业系统中覆盖植物与猕猴桃之间的关系。利用猕猴桃-姬松茸间作系统分析了土壤理化性质和细菌群落。此外,采用16S rRNA基因测序和代谢组测序相结合的分析方法,鉴定根际中的差异微生物和代谢产物。间作导致土壤理化性质和酶活性增加,同时重塑了细菌群落并增加了微生物多样性。变形菌门、拟杆菌门、粘球菌门和帕氏菌门是间作系统中最丰富和多样的菌门。表达分析进一步表明,间作系统中细菌属BIrii41、嗜酸菌属和交替赤杆菌属显著上调。此外,在单作和间作种植模式之间鉴定出358种差异代谢物(DMs),其中脂肪酰基、羧酸及其衍生物和有机氧化合物在间作系统中显著上调。KEGG代谢途径进一步揭示了DMs在ABC转运蛋白、组氨酸代谢和嘧啶代谢中的大量富集。本研究确定了95个细菌属与79种土壤代谢物之间的显著相关性,并构建了一个交互网络来探索根际中这些差异微生物与代谢物之间的关系。本研究表明,猕猴桃-姬松茸间作对于重塑细菌群落以及促进根际有益微生物的积累和代谢而言,可能是一种有效、省力、经济且可持续的做法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbc7/11255323/4eb0215480b5/41598_2024_66030_Fig1_HTML.jpg

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