Screening for drought-tolerant mungbean root nodule bacteria with multiple plant growth promoting traits in Aridisol

IF 4.8 2区 农林科学 Q1 SOIL SCIENCE Applied Soil Ecology Pub Date : 2024-06-29 DOI:10.1016/j.apsoil.2024.105510
Hemanta Kumar Mondal, Rajesh Gera
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Abstract

Mungbean (Vigna radiata L. Wilczek) is an economically important legume crop grown across India. The growth and yield of the crop have been declining over the recent years due to climate change which leads to decrease in soil moisture. Applications of drought-tolerant plant growth-promoting (PGP) rhizobial strains have been found to enhance crop productivity under water deficiency. Therefore, the objective of this study was to screen the bacterial strains from the mungbean root nodule that may help in improving the plant growth under drought condition. Bacteria were isolated from mungbean root nodules and screened for in vitro drought-tolerance using different concentrations of PEG 6000 at 10, 20, 30 and 40 %, and temperature-tolerance at 30, 35, 40 and 45 °C. In primary screening, out of 98 root nodule bacterial isolates tested, only 25 % showed drought-tolerance at 40 % polyethylene glycol (PEG)-6000 while 22 % of bacteria survived at 45 °C. During secondary screening on combined stress-tolerance, only 8 % of isolates showed tolerance of 40 % PEG-6000 at 45 °C. The in vitro drought-tolerance of bacteria varied significantly according to their sampling region/district. Various PGP traits, i.e., nitrogen fixation, phosphate solubilization, and production of indole acetic acid, ammonia, and 1-aminocyclopropane-1-carboxylate (ACC) deaminase, were analyzed in isolated stress-tolerant bacteria, which may contribute towards stress-tolerance and crop productivity in mungbean. The most promising drought-tolerant nodule bacterial isolates were identified as Rhizobium sp. and Pseudomonas indica, respectively by 16S rRNA sequencing. Moreover, bacterial isolates MuJs52b, MuJs53b, MuJs72a and MuBk32b, which exhibited drought-tolerance of 40 % PEG-6000 and different PGP activities, were used as bioinoculant on mungbean plants grown under moderate to severe drought at 50 and 25 % of field capacity (FC) in pot experiment. Bacteria inoculated plants showed maximum increase in nodule dry weight (56.5 %) and shoot dry weight (87.5 %) per plant even under severe drought at 25 % FC. The results indicated that application of four potential nodule bacterial isolates, which were able to tolerate drought stress of 40 % PEG-6000, and having multiple PGP traits, showed stimulation of the mungbean growth even up to 25 % FC. These plant growth-promoting nodule bacterial strains may be used for the enhancement of mungbean crop productivity under drought stress and could be used as biofertilizer.

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在干旱土壤中筛选具有多种植物生长促进性状的耐旱绿豆根瘤菌
绿豆(Vigna radiata L. Wilczek)是印度各地种植的一种具有重要经济价值的豆科作物。近年来,由于气候变化导致土壤水分减少,该作物的生长和产量一直在下降。研究发现,在缺水情况下,应用耐旱的植物生长促进(PGP)根瘤菌株可提高作物产量。因此,本研究的目的是从绿豆根瘤中筛选出有助于改善干旱条件下植物生长的细菌菌株。研究人员从绿豆根瘤中分离出细菌,并使用不同浓度的 PEG 6000(10%、20%、30% 和 40%)和耐温性(30%、35%、40% 和 45%)进行体外耐旱性筛选。在初筛中,98 个根瘤细菌分离物中,只有 25% 在 40% 聚乙二醇 (PEG)-6000 浓度下表现出耐旱性,22% 的细菌在 45 °C 下存活。在对综合抗逆性进行二次筛选时,只有 8% 的分离菌在 45 °C 下对 40% 的 PEG-6000 有耐受性。不同采样区域/地区的细菌体外耐旱性差异显著。分析了分离出的抗逆细菌的各种 PGP 性状,即固氮、磷酸盐溶解、产生吲哚乙酸、氨和 1-aminocyclopropane-1-carboxylate (ACC) deaminase,这些性状可能有助于绿豆的抗逆性和作物产量。通过 16S rRNA 测序,发现最有希望的耐旱结核细菌分离物分别是根瘤菌属(Rhizobium sp.)和吲哚假单胞菌属(Pseudomonas indica)。此外,细菌分离物 MuJs52b、MuJs53b、MuJs72a 和 MuBk32b 表现出 40 % PEG-6000 的耐旱性和不同的 PGP 活性。即使在 25% FC 的严重干旱条件下,接种了细菌的植株的单株结核干重(56.5%)和芽干重(87.5%)增幅最大。结果表明,四种潜在的结核细菌分离物能够耐受 40% PEG-6000 的干旱胁迫,并具有多种 PGP 性状,即使在 25% FC 的条件下也能刺激绿豆的生长。这些促进植物生长的结核细菌菌株可用于提高干旱胁迫下绿豆作物的产量,并可用作生物肥料。
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来源期刊
Applied Soil Ecology
Applied Soil Ecology 农林科学-土壤科学
CiteScore
9.70
自引率
4.20%
发文量
363
审稿时长
5.3 months
期刊介绍: Applied Soil Ecology addresses the role of soil organisms and their interactions in relation to: sustainability and productivity, nutrient cycling and other soil processes, the maintenance of soil functions, the impact of human activities on soil ecosystems and bio(techno)logical control of soil-inhabiting pests, diseases and weeds.
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