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揭示异养氨氧化细菌的双重作用:通过调节细胞分裂素的传递促进植物再生。

Unveiling the dual role of heterotrophic ammonia-oxidizing bacteria: enhancing plant regrowth through modulating cytokinin delivery.

作者信息

Wang Xiao-Ling, Si Zhen-Qiang, Yu Hao, Qi Lin, Liu Wei, Shi Jiang, Song Peng

机构信息

College of Agriculture, Henan University of Science and Technology, Luoyang, Henan, China.

出版信息

Front Microbiol. 2023 Sep 20;14:1268442. doi: 10.3389/fmicb.2023.1268442. eCollection 2023.

Abstract

This study aims to investigate the dual impacts of heterotrophic ammonia-oxidizing bacteria (HAOB) strains on the regrowth of Italian ryegrass by studying cytokinin delivery from roots to leaves. The dual impacts encompass both the "soil-inside-role" and "soil-outside-role," which refer to the HAOB operating inside and outside the rhizosphere soil within the rhizosphere microenvironment. The experimental design consisted of two sets of experiments, Exp-1 and Exp-2, involving different treatments. In Exp-1, various concentrations of NO were added to the roots to observe the soil-inside-role on cytokinin delivery from roots to leaves. In Exp-2, NO addition was combined with HAOB inoculation to observe the combined effects of the root-outside-role and root-inside-role on cytokinin synthesis and transport. The results indicated that NO concentrations ranging from 30 to 40 mmol L had the most optimal effect on increasing leaf cytokinin content and delivery from roots to leaves, consequently promoting greater leaf regrowth biomass. When inoculated, the HAOB strain significantly increased rhizosphere soil nitrification rates under the soil-inside-role, leading to increased NO release from the soil and a subsequent boost in cytokinin delivery from roots to leaves. Additionally, the HAOB strain independently enhanced cytokinin delivery from roots to leaves outside the rhizosphere soil within the rhizosphere microenvironment, demonstrating its soil-outside-role. The combined effects of the soil-inside-role and soil-outside-role substantially increased leaf cytokinin content, playing a crucial role in promoting Italian ryegrass regrowth. The study's findings shed light on the mechanisms through which HAOB can enhance plant growth by performing dual roles in the rhizosphere, offering potential applications in agriculture. Understanding the interaction between HAOB, cytokinins, and plant growth could lead to more effective strategies for improving crop productivity and promoting sustainable agriculture.

摘要

本研究旨在通过研究细胞分裂素从根系向叶片的传递,来探究异养氨氧化细菌(HAOB)菌株对意大利黑麦草再生的双重影响。这种双重影响包括“根际土壤内作用”和“根际土壤外作用”,分别指HAOB在根际微环境中的根际土壤内部和外部发挥作用。实验设计包括两组实验,即实验1和实验2,涉及不同的处理方式。在实验1中,向根系添加不同浓度的NO,以观察根际土壤内作用对细胞分裂素从根系向叶片传递的影响。在实验2中,将添加NO与接种HAOB相结合,以观察根际土壤外作用和根际土壤内作用对细胞分裂素合成和运输的综合影响。结果表明,30至40 mmol·L的NO浓度对增加叶片细胞分裂素含量以及从根系向叶片的传递具有最适宜的效果,从而促进了更大的叶片再生生物量。接种后,HAOB菌株在根际土壤内作用下显著提高了根际土壤硝化率,导致土壤中NO释放增加,进而促进了细胞分裂素从根系向叶片的传递。此外,HAOB菌株在根际微环境中的根际土壤外部独立增强了细胞分裂素从根系向叶片的传递,显示出其根际土壤外作用。根际土壤内作用和根际土壤外作用的综合影响显著增加了叶片细胞分裂素含量,在促进意大利黑麦草再生中发挥了关键作用。该研究结果揭示了HAOB通过在根际发挥双重作用来促进植物生长的机制,为农业提供了潜在应用。了解HAOB、细胞分裂素和植物生长之间的相互作用,可能会带来提高作物生产力和促进可持续农业发展的更有效策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12e5/10557131/dfea91c1aaf0/fmicb-14-1268442-g001.jpg

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