Inoculation of ACC deaminase‐producing endophytic bacteria down‐regulates ethylene‐induced pathogenesis‐related signaling in red pepper (Capsicum annuum L.) under salt stress

乙烯 稻黄单胞菌 生物 微生物学 胡椒粉 非生物胁迫 细菌 苯丙氨酸解氨酶 生物化学 植物 化学 食品科学 病菌 基因 过氧化物酶 催化作用 遗传学
作者
Aritra Roy Choudhury,Pankaj Trivedi,Jeongyun Choi,Munusamy Madhaiyan,Jung‐Ho Park,Wonho Choi,Denver I. Walitang,Tongmin Sa
出处
期刊:Physiologia Plantarum [Wiley]
卷期号:175 (2) 被引量:19
标识
DOI:10.1111/ppl.13909
摘要

Pathogenesis-related (PR) signaling plays multiple roles in plant development under abiotic and biotic stress conditions and is regulated by a plethora of plant physiological as well as external factors. Here, our study was conducted to evaluate the role of an ACC deaminase-producing endophytic bacteria in regulating ethylene-induced PR signaling in red pepper plants under salt stress. We also evaluated the efficiency of the bacteria in down-regulating the PR signaling for efficient colonization and persistence in the plant endosphere. We used a characteristic endophyte, Methylobacterium oryzae CBMB20 and its ACC deaminase knockdown mutant (acdS- ). The wild-type M. oryzae CBMB20 was able to decrease ethylene emission by 23% compared to the noninoculated and acdS- M. oryzae CBMB20 inoculated plants under salt stress. The increase in ethylene emission resulted in enhanced hydrogen peroxide concentration, phenylalanine ammonia-lyase activity, β-1,3 glucanase activity, and expression profiles of WRKY, CaPR1, and CaPTI1 genes that are typical salt stress and PR signaling factors. Furthermore, the inoculation of both the bacterial strains had shown induction of PR signaling under normal conditions during the initial inoculation period. However, wild-type M. oryzae CBMB20 was able to down-regulate the ethylene-induced PR signaling under salt stress and enhance plant growth and stress tolerance. Collectively, ACC deaminase-producing endophytic bacteria down-regulate the salt stress-mediated PR signaling in plants by regulating the stress ethylene emission levels and this suggests a new paradigm in efficient colonization and persistence of ACC deaminase-producing endophytic bacteria for better plant growth and productivity.

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