Developed BL-EF to acquire plant growth-promoting functions under salt stress by introducing the ACC deaminase gene

IF 5.7 2区 生物学 Q1 PLANT SCIENCES Plant Physiology and Biochemistry Pub Date : 2025-05-01 Epub Date: 2025-03-05 DOI:10.1016/j.plaphy.2025.109764
Xinyu Jia , Linlin Sun , Junsong Yue , Xiaohu Zhou , Zihe Deng , Xiaochen Liu , Zhansheng Wu
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Abstract

The application of plant growth-promoting rhizobacteria (PGPR) is a novel and effective strategy to ameliorate soil salinity and increase agricultural productivity. ACC deaminase (ACCD) in PGPR plays a key role in alleviating salt stress and promoting plant growth. This study aimed to investigate the potential of ACCD-producing strain BL-EF to mitigate salt stress in tomato plants. The ACCD gene was introduced into the non-PGPR Escherichia coli to successfully construct to construct BL-EF and produce catalytically active ACCD. The results showed that strain BL-EF significantly increased the height of tomato plants by 30.94% and 44.63%, under both normal and salt stress conditions, respectively. Strain BL-EF also modulated the photosynthetic pigmentation process in plants, promoting plant growth and increasing tomato tolerance to salt stress. The osmoregulatory system improved and the antioxidant enzyme activities increased to counteract reactive oxygen species-induced activities inoculated with BL-EF compared with those not inoculated with BL-EF. In addition, the inoculation with BL-EF strains increased soil enzyme activities and enhanced nutrients availability in the soil for plants uptake. In conclusion, the inoculation of ACC deaminase-producing strain BL-EF holds immense potential to alleviate salt stress in tomato plants, offering significant benefits to the agricultural sector.

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通过引入ACC脱氨酶基因,开发BL-EF获得盐胁迫下植物促生长功能
植物促生根瘤菌(PGPR)的应用是改善土壤盐分、提高农业生产力的一种新颖有效的策略。PGPR中的ACC脱氨酶(ACC deaminase, ACCD)在缓解盐胁迫、促进植物生长中起关键作用。本研究旨在探讨产生accd的菌株BL-EF在番茄植株中缓解盐胁迫的潜力。将ACCD基因导入到非pgpr大肠杆菌中,成功构建了BL-EF,获得了具有催化活性的ACCD。结果表明,菌株BL-EF在正常胁迫和盐胁迫条件下均能显著提高番茄株高30.94%和44.63%。菌株BL-EF还能调节植株光合色素沉着过程,促进植株生长,提高番茄对盐胁迫的耐受性。与未接种BL-EF的植株相比,接种BL-EF的植株的渗透调节系统得到改善,抗氧化酶活性提高,以抵消活性氧诱导的活性。此外,接种BL-EF菌株提高了土壤酶活性,提高了土壤中供植物吸收的养分有效性。综上所述,接种ACC脱氨酶产生菌株BL-EF具有缓解番茄盐胁迫的巨大潜力,为农业部门提供了显着的效益。
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来源期刊
Plant Physiology and Biochemistry
Plant Physiology and Biochemistry 生物-植物科学
CiteScore
11.10
自引率
3.10%
发文量
410
审稿时长
33 days
期刊介绍: Plant Physiology and Biochemistry publishes original theoretical, experimental and technical contributions in the various fields of plant physiology (biochemistry, physiology, structure, genetics, plant-microbe interactions, etc.) at diverse levels of integration (molecular, subcellular, cellular, organ, whole plant, environmental). Opinions expressed in the journal are the sole responsibility of the authors and publication does not imply the editors'' agreement. Manuscripts describing molecular-genetic and/or gene expression data that are not integrated with biochemical analysis and/or actual measurements of plant physiological processes are not suitable for PPB. Also "Omics" studies (transcriptomics, proteomics, metabolomics, etc.) reporting descriptive analysis without an element of functional validation assays, will not be considered. Similarly, applied agronomic or phytochemical studies that generate no new, fundamental insights in plant physiological and/or biochemical processes are not suitable for publication in PPB. Plant Physiology and Biochemistry publishes several types of articles: Reviews, Papers and Short Papers. Articles for Reviews are either invited by the editor or proposed by the authors for the editor''s prior agreement. Reviews should not exceed 40 typewritten pages and Short Papers no more than approximately 8 typewritten pages. The fundamental character of Plant Physiology and Biochemistry remains that of a journal for original results.
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