PLANT-GROWTH-PROMOTING AND ANTIFUNGAL ASSET OF INDIGENOUS DROUGHT-TOLERANT RHIZOBACTERIA ISOLATED FROM OLIVE (Olea europaea L.) RHIZOSPHERE

Mohammed Ajdig, T. Chouati, Bahia Rached, Ahlam Mbarki, Lahcen Ouchari, Abdelkarim Filali-Maltouf, C. Talbi, Elmostafa El Fahime, M. Melloul
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Abstract

Faced with global environmental challenges, the quest for sustainable food production has gathered momentum. While abiotic stresses adversely affect plant health and productivity, Verticillium wilt causes considerable yield losses worldwide, particularly in crops such as olive. Recently, drought-tolerant bacteria have been used to alleviate both abiotic stress and pathogen pressure in crops. In this context, our work focuses on the isolation of tolerant indigenous rhizobacteria to mitigate these challenges by investigating their role in biocontrol and abiotic stress tolerance. Thus, a total of 94 rhizobacterial strains were isolated from the rhizospheres of olive trees in southeastern Morocco and characterized to identify tolerant plant growth-promoting rhizobacteria that inhibit Verticillium dahliae. 24 strains demonstrated in vitro suppression of Verticillium dahliae Klebahn, and exhibited tolerance to different abiotic stresses (drought, salinity, and high temperature). In addition, they proved xerotolerant (Aw ≤ 0.91), halotolerant (≥10% NaCl), and thermotolerant (≥ 55°C) capabilities. Beyond, these isolates showcased multifaceted plant growth-promoting traits, such as phosphate solubilization and significant synthesis of essential bioactive compounds like siderophores, indole-3-acetic acid and hydrolytic enzymes. Evaluating outcomes, three standout rhizobacterial isolates emerged due to their exceptional stress tolerance, unique plant growth-promoting qualities, and potent antagonistic potential. Molecular analysis identified them as Bacillus paranthracis (OZ-60) and Bacillus licheniformis (OZ-48 and OZ-77) through 16S rRNA sequencing. Besides enhancing plant abiotic stress resistance, these isolates hold promise in bolstering the sustainability of olive cultivation and fortifying plant defenses against pathogens.
从油橄榄(Olea europaea L.)产地分离的土著抗旱酵母菌对植物生长的诱导作用和抗真菌特征
面对全球环境挑战,人们对可持续粮食生产的追求日益高涨。非生物胁迫会对植物健康和生产力造成不利影响,而轮状病毒枯萎病则会在全球范围内造成相当大的产量损失,尤其是在橄榄等作物上。最近,耐旱细菌已被用于减轻作物的非生物胁迫和病原体压力。在这种情况下,我们的工作重点是分离本地的耐旱根瘤菌,通过研究它们在生物控制和非生物胁迫耐受方面的作用来减轻这些挑战。因此,我们从摩洛哥东南部的橄榄树根瘤中分离出了 94 株根瘤菌,并对其进行了表征,以确定能抑制大丽轮枝菌的耐受性植物生长促进根瘤菌。24 株菌株在体外表现出对大丽轮枝菌(Verticillium dahliae Klebahn)的抑制作用,并表现出对不同非生物胁迫(干旱、盐度和高温)的耐受性。此外,它们还具有耐干旱(Aw ≤ 0.91)、耐盐碱(≥10% NaCl)和耐高温(≥ 55°C)的能力。此外,这些分离物还表现出多方面的植物生长促进特性,如磷酸盐溶解和重要生物活性化合物的合成,如苷酸、吲哚-3-乙酸和水解酶。评估结果显示,有三种根瘤菌分离物因其卓越的抗逆性、独特的植物生长促进特性和强大的拮抗潜力而脱颖而出。通过 16S rRNA 测序,分子分析确定它们是副梭状芽孢杆菌(OZ-60)和地衣芽孢杆菌(OZ-48 和 OZ-77)。除了增强植物的非生物胁迫抗性外,这些分离物还有望提高橄榄种植的可持续性,并增强植物对病原体的防御能力。
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