Kiwifruit resistance to gray mold is enhanced by yeast-induced modulation of the endophytic microbiome

汉森尼德巴利酵母菌 灰葡萄孢菌 生物 微生物群 厚壁菌 放线菌门 基因组 微生物种群生物学 子囊菌纲 酵母 蛋白质细菌 猕猴桃 戴尔凯氏有孢圆酵母 微生物生态学 植物 微生物学 细菌 酿酒酵母 遗传学 基因 酵母菌 16S核糖体RNA
作者
Qinhong Liao,Yu Zhao,Zhenshuo Wang,Longfeng Yu,Quyangangmao Su,J.Q. Li,Anran Yuan,Junkui Wang,Dawei Tian,Chenglin Lin,Xiaoya Huang,Wenhua Li,Zhiqiang Sun,Qi Wang,Jia Liu
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:932: 173109-173109 被引量:6
标识
DOI:10.1016/j.scitotenv.2024.173109
摘要

The influence of endophytic microbial community on plant growth and disease resistance is of considerable importance. Prior research indicates that pre-treatment of kiwifruit with the biocontrol yeast Debaryomyces hansenii suppresses gray mold disease induced by Botrytis cinerea. However, the specific underlying mechanisms remain unclear. In this study, Metagenomic sequencing was utilized to analyze the composition of the endophytic microbiome of kiwifruit under three distinct conditions: the healthy state, kiwifruit inoculated with B. cinerea, and kiwifruit treated with D. hansenii prior to inoculation with B. cinerea. Results revealed a dominance of Proteobacteria in all treatment groups, accompanied by a notable increase in the relative abundance of Actinobacteria and Firmicutes. Ascomycota emerged as the major dominant group within the fungal community. Treatment with D. hansenii induced significant alterations in microbial community diversity, specifically enhancing the relative abundance of yeast and exerting an inhibitory effect on B. cinerea. The introduction of D. hansenii also enriched genes associated with energy metabolism and signal transduction, positively influencing the overall structure and function of the microbial community. Our findings highlight the potential of D. hansenii to modulate microbial dynamics, inhibit pathogenic organisms, and positively influence functional attributes of the microbial community.
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