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http://elar.urfu.ru/handle/10995/118175
Title: | Bioaugmentation with copper tolerant endophyte Pseudomonas lurida strain EOO26 for improved plant growth and copper phytoremediation by Helianthus annuus |
Authors: | Kumar, A. Tripti Voropaeva, O. Maleva, M. Panikovskaya, K. Borisova, G. Rajkumar, M. Bruno, L. B. |
Issue Date: | 2021 |
Publisher: | Elsevier Ltd |
Citation: | Bioaugmentation with copper tolerant endophyte Pseudomonas lurida strain EOO26 for improved plant growth and copper phytoremediation by Helianthus annuus / A. Kumar, Tripti, O. Voropaeva et al. // Chemosphere. — 2021. — Vol. 266. — 128983. |
Abstract: | Organic fertilizers became a better alternative to chemical fertilizers in modern agricultural practices however, contamination of copper (Cu) from organic fertilizer is still a major concern for the globe. Plant growth promoting (PGP) microorganisms showed their efficiency to combat with this problem and thus Cu tolerant PGP endophytes from roots of Odontarrhena obovata (Alyssum obovatum) growing on Cu smelter contaminated serpentine soil were explored in present study. Out of twenty-four isolates, Pseudomonas lurida strain EOO26 identified by 16s rRNA gene sequencing was selected to check its efficacy for Cu-remediation. The strain EOO26 showed multi-metal tolerance, drought resistance and exhibited PGP attributes such as 1-aminocyclopropane-1-carboxylic acid (ACC) deaminase, siderophore and ammonia production. Significant production of indole-3-acetic acid and phosphate-solubilization under different Cu concentration (0–100 mg L−1) at varying pH (5.0–8.0) suggests potentiality of this strain to work effectively under wide range of abiotic stress conditions. Plant growth experiment (pH 6.8 ± 0.3) in copper spiked soil suggested a significant increase in length and dry weight of root and shoot of sunflower (Helianthus annuus) after inoculation with strain EOO26. Plants inoculated with strain EOO26 resulted in increase in Cu uptake by 8.6-fold for roots and 1.9-fold for leaves than uninoculated plants. The total plant uptake in inoculated Cu treatment was 2.6-fold higher than uninoculated one, which is much higher than the previously reported Cu accumulating plants. The excellent adaptation abilities and promising metal removal efficiency strongly indicate superiority of strain EOO26 for phytoremediation of Cu-contamination and may work effectively for Cu removal from contaminated soils. © 2020 Elsevier Ltd |
Keywords: | COPPER UPTAKE DROUGHT TOLERANCE IAA PRODUCTION PH PHOSPHATE SOLUBILIZATION PLANT GROWTH PROMOTING BACTERIA AGRICULTURAL ROBOTS AMMONIA BACTERIA BIOREMEDIATION CONTAMINATION EFFICIENCY FERTILIZERS PLANTS (BOTANY) RNA SERPENTINE SMELTING SOIL POLLUTION SOILS 1-AMINO-CYCLOPROPANE- 1-CARBOXYLIC ACIDS 16S RRNA GENE SEQUENCING AGRICULTURAL PRACTICES CHEMICAL FERTILIZERS INDOLE-3-ACETIC ACID ORGANIC FERTILIZERS PHOSPHATE SOLUBILIZATION PLANT GROWTH PROMOTING SOIL POLLUTION CONTROL 1 AMINOCYCLOPROPANECARBOXYLIC ACID AMMONIA AMPICILLIN CHLORAMPHENICOL COPPER DEAMINASE INDOLEACETIC ACID KANAMYCIN PENICILLIN DERIVATIVE PHOSPHATE RNA 16S SERPENTINE SIDEROPHORE STREPTOMYCIN TETRACYCLINE COPPER RNA 16S AMMONIA ANGIOSPERM BACTERIUM BIOREMEDIATION COPPER DROUGHT RESISTANCE ENDOPHYTE EXPERIMENT INOCULATION PHYTOREMEDIATION POLLUTANT REMOVAL SERPENTINE SIDEROPHORE WEIGHT ABIOTIC STRESS AMMONIA FORMATION BACTERIAL STRAIN CONTROLLED STUDY DROUGHT RESISTANCE DROUGHT TOLERANCE ENDOPHYTE GENE SEQUENCE HEAVY METAL REMOVAL HELIANTHUS ANNUUS INOCULATION METAL TOLERANCE MINIMUM INHIBITORY CONCENTRATION NONHUMAN PHYTOREMEDIATION PLANT GROWTH PLANT GROWTH-PROMOTING BACTERIUM PLANT LEAF PLANT ROOT PSEUDOMONAS PSEUDOMONAS LURIDA SHOOT SOIL SOIL POLLUTION SOLUBILIZATION BIOREMEDIATION CHEMISTRY GENETICS MICROBIOLOGY PSEUDOMONAS SOIL POLLUTANT SUNFLOWER ALYSSUM OBOVATUM HELIANTHUS HELIANTHUS ANNUUS PSEUDOMONAS LURIDA BIODEGRADATION, ENVIRONMENTAL COPPER ENDOPHYTES HELIANTHUS PLANT ROOTS PSEUDOMONAS RNA, RIBOSOMAL, 16S SOIL MICROBIOLOGY SOIL POLLUTANTS |
URI: | http://elar.urfu.ru/handle/10995/118175 |
Access: | info:eu-repo/semantics/openAccess |
RSCI ID: | 45104781 |
SCOPUS ID: | 85097092950 |
WOS ID: | 000674624300051 |
PURE ID: | 20451008 |
ISSN: | 456535 |
DOI: | 10.1016/j.chemosphere.2020.128983 |
metadata.dc.description.sponsorship: | Science and Engineering Research Board, SERB; Department of Science and Technology, Government of West Bengal, DST: INT/ RUS / RFBR /363; Ministry of Science and Higher Education of the Russian Federation The authors acknowledge the work support by RFBR , Russia (Project No. 19-516-45006) and DST , India (INT/ RUS / RFBR /363) and the Ministry of Science and Higher Education of the Russian Federation (Agreement No. 02.A03.21.0006). L.B.B thankful to the Science and Engineering Research Board (SERB), India for providing National Post-Doctoral Fellowship (Grant No. PDF/2017/001074 ). |
Appears in Collections: | Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC |
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