Investigation of arsenic-resistant, arsenite-oxidizing bacteria for plant growth promoting traits isolated from arsenic contaminated soils

被引:0
作者
Aritri Laha
Somnath Bhattacharyya
Sudip Sengupta
Kallol Bhattacharyya
Sanjoy GuhaRoy
机构
[1] West Bengal State University,Department of Botany
[2] Bidhan Chandra Krishi Viswavidyalaya,Department of Genetics and Plant Breeding, Faculty of Agriculture
[3] Bidhan Chandra Krishi Viswavidyalaya,Department of Agricultural Chemistry and Soil Science, Faculty of Agriculture
来源
Archives of Microbiology | 2021年 / 203卷
关键词
Arsenic (As); Plant-growth promotion; As-oxidase activity; Minimum inhibitory concentration;
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中图分类号
学科分类号
摘要
The problem of arsenic (As) pollution being severe warrants opting for low-cost microbial remediation strategies. The present study of identifying suitable bacterial strains led to the isolation of eleven As-tolerant strains from the As-contaminated rhizosphere soils of West Bengal, India. They were found to oxidize/reduce 55–31.6% of 5 mM As(III) and 73–37.6% of 5 mM As(V) within 12 h. The four isolates (BcAl-1, JN 73, LAR-2, and AR-30) had a high level of As(III) oxidase activity along with a higher level of As(V) and As(III) resistance. The agar diffusion assay of the isolates further confirmed their ability to endure As stress. The presence of aoxB gene was observed in these four As(III) oxidizing isolates. Evaluation of plant growth-promoting characteristics revealed that BcAl-1 (Burkholderia cepacia), JN 73 (Burkholderia metallica), AR-30 (Burkholderia cenocepacia), and LAR-2 (Burkholderia sp.) had significant plant growth-promoting characteristics (PGP), including the ability to solubilize phosphate, siderophore production, indole acetic acid-like molecules production, ACC deaminase production, and nodule formation under As stressed condition. BcAl-1 and JN 73 emerged as the most promising traits in As removal as well as plant growth promotion.
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页码:4677 / 4692
页数:15
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