玉米耐胁迫拮抗植物促生长根瘤菌

IF 0.7 Q3 AGRONOMY Journal of Plant Protection Research Pub Date : 2023-03-22 DOI:10.24425/119127
A. Kaur, S. Devi, P. Vyas
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引用次数: 11

摘要

生物防治植物病害正迅速成为化学农药和杀菌剂的有效替代品。抗逆性是微生物接种剂开发中选择细菌的一个重要指标。从玉米根际分离出14株形态特征不同的耐盐菌,对其促生长活性进行了评价。在色氨酸补充培养基中培养48 h后,所有菌株的生长素产量均在5 ~ 24 μg⋅ml-1之间。磷酸盐增溶量为15 ~ 419 μg⋅ml-1。6株菌株具有1-氨基环丙酸-羧酸脱氨酶活性,9株菌株产氨,8株菌株产铁载体,4株菌株产HCN。4株具有促进植物生长特性的分离菌对尖孢镰刀菌、黄萎病镰刀菌、月曲孢菌和互交菌也表现出较强的拮抗活性,并对盐、温度、pH和钙盐具有非生物抗性。两株菌株在温室条件下显著促进了豌豆和玉米试验植株的生长。经表型分析和16S rDNA基因测序,鉴定菌株M1B2为芽孢杆菌。结果表明,芽孢杆菌M1B2是开发胁迫环境下微生物接种剂的潜在候选菌株。
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Stress-tolerant antagonistic plant growth-promoting rhizobacteria from Zea mays
Biological control of plant diseases is strongly emerging as an effective alternative to the use of chemical pesticides and fungicides. Stress tolerance is an important attribute in the selection of bacteria for the development of microbial inoculants. Fourteen salt-tolerant bacteria showing different morphological features isolated from the rhizosphere of maize were evaluated for different plant growth-promoting activities. All isolates showed auxin production ranging from 5 to 24 μg ⋅ ml–1 after 48 h incubation in tryptophan supplemented media. Phosphate solubilization ranged from 15 to 419 μg ⋅ ml–1. 1-aminocycloproprane1-carboxylate (ACC) deaminase activity was shown by 6 isolates, ammonia production by 9 isolates, siderophore production by 8 isolates while HCN production by 4 isolates. Four bacterial isolates with all plant growth-promoting properties also showed strong antagonistic activities against Fusarium oxysporum, F. verticillioides, Curvularia lunata and Alternaria alternata and abiotic stress tolerance against salinity, temperature, pH and calcium salts. Two selected bacterial isolates significantly enhanced the growth of pea and maize test plants under greenhouse conditions. The bacterial isolate M1B2, which showed the highest growth promotion of test plants, was identified as Bacillus sp. based on phenotypic and 16S rDNA gene sequencing. The results indicated that Bacillus sp. M1B2 is a potential candidate for the development of microbial inoculants in stressful environments.
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来源期刊
Journal of Plant Protection Research
Journal of Plant Protection Research Agricultural and Biological Sciences-Agronomy and Crop Science
CiteScore
2.10
自引率
9.10%
发文量
0
审稿时长
30 weeks
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