Please use this identifier to cite or link to this item: http://digitalrepository.fccollege.edu.pk/handle/123456789/1065
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dc.contributor.authorShahid, Izzah-
dc.contributor.authorMalik, Dr. Kauser .A.-
dc.contributor.authorMehnaz, Samina-
dc.date.accessioned2021-03-04T05:50:22Z-
dc.date.available2021-03-04T05:50:22Z-
dc.date.issued2018-05-24-
dc.identifier.citationShahid, I., Malik, K.A. & Mehnaz, S. A decade of understanding secondary metabolism in Pseudomonas spp. for sustainable agriculture and pharmaceutical applications. Environmental Sustainability 1, 3–17 (2018). https://doi.org/10.1007/s42398-018-0006-2en_US
dc.identifier.otherdoi.org/10.1007/s42398-018-0006-2-
dc.identifier.urihttp://localhost:8080/xmlui/handle/123456789/1065-
dc.description.abstractPseudomonas spp. have been widely studied for their plant growth promoting and antimicrobial metabolites. The genus got attention due to the production of array of secondary metabolites involved in the suppression of phytopathogens and ability to stimulate plant growth by means of nitrogen-fxation, production of hydrolytic enzymes, regulatory hormones, and solubilization of inorganic minerals. In recent years, research was focused towards identifcation of biosynthesis pathways and genes involved in the production of secondary metabolites that led to the discovery of novel metabolites including many new phenazine derivatives, quorum-sensing signals, rhizoxin analogues, cyclic lipopeptides, and a new class of alkylsubstituted aromatic acids. Identifcation of these biosynthetic pathways provided insights for their successful application in agriculture and for environmental sustainability. In addition, many genomic and metabolomic databases such as; METLIN, KEGG, GNPS, CFM-ID, MassBank, and MetaboLights, allowed exploring intricate metabolic pathways and signifcant genes involved in the biosynthesis of compounds. Several softwares, genome-mining tools and new techniques, such as MALDI-IMS and MALDI-FTICR MS were developed to facilitate the characterization of new metabolites. Additionally, use of MALDI-imaging techniques facilitated real-time visualization of complex microbial communities and their relationship with pathogens. Secondary metabolites of Pseudomonas spp. were also demonstrated for their apoptotic, anti-mitotic, nematocidal, herbicidal, anthelmintic, insecticidal, and phytotoxic efects. Total biosynthesis of metabolic derivatives and genetic engineering enabled to develop strains with improved yield of targeted bio-products. Availability and access to published genomic sequences and comparative bioinformatics tools helped in identifcation of strain-specifc traits and development of multifunctional inocula. This review highlights signifcant advances in identifcation of Pseudomonas secondary metabolites for their successful agricultural and pharmaceutical applications.en_US
dc.language.isoenen_US
dc.publishercross Marken_US
dc.relation.ispartofseriesEnvironmental Sustainability (2018) 1:3–17;-
dc.subjectOrtho-dialkyl-aromatic acidsen_US
dc.subjectSiderophoresen_US
dc.subject4-Quinolonesen_US
dc.subjectPhenazinesen_US
dc.subjectPseudomonas aurantiacaen_US
dc.subjectantiSMASHen_US
dc.titleA decade of understanding secondary metabolism in Pseudomonas spp. for sustainable agriculture and pharmaceutical applicationsen_US
dc.typeArticleen_US
Appears in Collections:School of Life Sciences

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