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接种枯草芽孢杆菌和类芽孢杆菌的仙人掌基因型根际微生物生物量和酶活性

Microbial biomass and enzymatic activity in the rhizosphere of prickly-pear cactus genotypes inoculated with Bacillus subtilis and Paenibacillus Sp.

作者信息

de Aviz Rhaiana Oliveira, Campos Janaira Rocha, Silva Davila Esmelinda Oliveira, Barbosa Larissa Macelle de Paulo, Costa Romário Martins, Borges Jhoice Ferreira, Leite Marcos Renan Lima, Rocha Sandra Mara Barbosa, Morais Pâmalla Graziely Carvalho, Dauala Gonçalves Albino, Pereira Arthur Prudencio de Araujo, de Medeiros Erika Valente, Araujo Ademir Sergio Ferreira

机构信息

Soil Microbial Ecology Group, Universidade Federal do Piauí, Teresina, PI, Brazil.

Postgraduate Program in Agricultural Sciences, Federal University of Piauí, Bom Jesus, PI, Brazil.

出版信息

Sci Rep. 2025 Jul 28;15(1):27415. doi: 10.1038/s41598-025-13708-7.

Abstract

Some bacterial taxa, such as Bacillus and Paenibacillus, are known to colonize the rhizosphere and promote plant growth. However, little is known about their effect on microbial biomass and enzymatic activity in the rhizosphere of plants under semi-arid conditions. This field study assessed the effects of B. subtilis and Paenibacillus sp. in the rhizosphere of two prickly-pear cactus genotypes on microbial biomass of C, N, and P, and on enzymatic activity during early and late growth stages. The analysis of variance showed that microbial biomass and enzymatic activity were significantly influenced by the interaction between PGPB taxa (B. subtilis and Paenibacillus sp.), prickly-pear cactus genotypes ('Baiana' and 'Doce'), and plant growth stage (90 and 270 days). Specifically, PGPB inoculation increased microbial biomass P, β-glucosidase, and acid phosphatase, while microbial biomass of C and N were primarily driven by differences between cactus genotypes 'Baiana' and 'Doce'. At the early growth stage (90 days), the highest values of microbial biomass C, P, and acid phosphatase were observed, whereas N biomass was higher at the later stage (270 days). B. subtilis increased microbial biomass P in the 'Doce' genotype and acid phosphatase in 'Baiana,' while Paenibacillus sp. increased β-glucosidase in 'Baiana.' The combination of the 'Doce' genotype with B. subtilis enhanced phosphorus availability, suggesting that specific plant-microbe interactions may benefit nutrient acquisition in arid, nutrient-poor soils; however, further research is needed to confirm whether this effect extends to other genotypes.

摘要

一些细菌类群,如芽孢杆菌属和类芽孢杆菌属,已知能定殖于根际并促进植物生长。然而,在半干旱条件下,它们对植物根际微生物生物量和酶活性的影响却鲜为人知。这项田间研究评估了枯草芽孢杆菌和类芽孢杆菌属在两种仙人掌基因型根际对碳、氮、磷微生物生物量以及生长早期和晚期酶活性的影响。方差分析表明,微生物生物量和酶活性受植物生长促进细菌类群(枯草芽孢杆菌和类芽孢杆菌属)、仙人掌基因型(“巴伊亚纳”和“多塞 ”)以及植物生长阶段(90天和270天)之间相互作用的显著影响。具体而言,接种植物生长促进细菌增加了微生物生物量磷、β - 葡萄糖苷酶和酸性磷酸酶,而碳和氮的微生物生物量主要受仙人掌基因型“巴伊亚纳”和“多塞 ”差异的驱动。在生长早期(90天),观察到微生物生物量碳、磷和酸性磷酸酶的最高值,而氮生物量在后期(270天)更高。枯草芽孢杆菌增加了“多塞 ”基因型中的微生物生物量磷和“巴伊亚纳”中的酸性磷酸酶,而类芽孢杆菌属增加了“巴伊亚纳”中的β - 葡萄糖苷酶。“多塞 ”基因型与枯草芽孢杆菌的组合提高了磷的有效性,这表明特定的植物 - 微生物相互作用可能有利于在干旱、养分贫瘠的土壤中获取养分;然而,需要进一步研究来证实这种效应是否适用于其他基因型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/657f/12304243/bd150aa8f41c/41598_2025_13708_Fig1_HTML.jpg

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