根际
枯萎病
生物
栽培
病菌
枯萎病
镰刀菌
植物抗病性
园艺
接种
细菌
微生物学
芽孢杆菌(形态)
植物
青枯病
孵化
农学
寄主(生物学)
生物病虫害防治
真菌不全
芽孢杆菌目
植物病害
殖民地化
植物对草食的防御
作者
Wei Zhang,Shengtao Xu,Hongwei Yu,Wang Yun-yue,Juhua Liu,Sébastien Carpentier,Si-Jun Zheng
摘要
Fusarium wilt of banana threatens banana production world-wide. Although beneficial rhizomicrobiomes are linked to disease resistance, whether resistant cultivars systemically recruit disease-suppressive rhizomicrobiomes after pathogen challenge remains unclear. Using a split-root system combined with rhizomicrobiome transfer, we tested whether systemically recruited rhizomicrobiomes from different cultivars after pathogen challenge could alter disease development in a susceptible cultivar. Rhizosphere soil suspension from the pathogen-challenged highly resistant cultivar GCTCV119 was the only donor treatment that significantly reduced the disease index in the susceptible recipient cultivar Guijiao No. 1. This effect was associated with pathogen-induced enrichment of absolute bacterial abundance and absolute Bacillus abundance in the rhizosphere of GCTCV119, whereas such enrichment was not observed in the other donor cultivars. A syncom of seven Bacillus strains from the GCTCV119 rhizosphere most effectively reduced (by 90.20%) the disease index by the induction of plant resistance. Soil incubation showed that pathogen-induced D-sorbitol accumulation in GCTCV119 significantly increased total bacterial abundance and Bacillus abundance, and reduced the disease index. This study highlights pathogen-triggered rhizomicrobiome reshaping, higher absolute bacterial abundance, and the suppressive role of Bacillus as key features linked to disease resistance in banana, providing insights into microbiome-mediated disease suppression.
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