In-silico prediction of novel genes responsive to drought and salinity stress tolerance in bread wheat (Triticum aestivum)

cg.contacta.hamwieh@cgiar.orgen_US
cg.contributor.centerInternational Center for Agricultural Research in the Dry Areas - ICARDAen_US
cg.contributor.centerGeneral Commission for Scientific Agricultural Research - GCSARen_US
cg.contributor.centerUniversity of Aleppo, Faculty of Technological Engineeringen_US
cg.contributor.funderInternational Center for Agricultural Research in the Dry Areas - ICARDAen_US
cg.contributor.projectCommunication and Documentation Information Services (CODIS)en_US
cg.contributor.project-lead-instituteInternational Center for Agricultural Research in the Dry Areas - ICARDAen_US
cg.creator.idHamwieh, Aladdin: 0000-0001-6060-5560en_US
cg.isijournalISI Journalen_US
cg.issn1932-6203en_US
cg.issue10en_US
cg.journalPLoS ONEen_US
cg.subject.agrovocbiotechnologyen_US
cg.subject.agrovocdroughten_US
cg.subject.agrovocwheaten_US
cg.subject.agrovoccerealsen_US
cg.volume14en_US
dc.contributorAl-Husein, Naimen_US
dc.contributorLababidi, Ghinwaen_US
dc.contributorHamwieh, Aladdinen_US
dc.creatorNahas, Lailaen_US
dc.date.accessioned2021-08-04T23:22:52Z
dc.date.available2021-08-04T23:22:52Z
dc.description.abstractCommon wheat (Triticum aestivum) is the most widely grown cereal crop and is cultivated extensively in dry regions. Water shortage, resulting from either drought or salinity, leads to slow growth and loss of wheat yield. In order to predict new genes responsive to the drought and salt stresses in wheat, 6,717 expressed sequence tags (ESTs), expressed in drought and salinity stress conditions were collected from the National Center for Biotechnology Information (NCBI). The downloaded ESTs were clustered and assembled into 354 contigs; 14 transcription factor families in 29 contigs were identified. In addition, 119 contigs were organized in five enzyme classes. Biological functions were obtained for only 324 of the 354 contigs using gene ontology. In addition, using Kyoto Encyclopedia of Genes and Genomes database, 191 metabolic pathways were identified. The remaining contigs were used for further analysis and the search for new genes responsive to drought and salt stresses. These contigs were mapped on the International Wheat Genome Sequencing Consortium RefSeq v1.0 assembly, the most complete version of the reference sequence of the bread wheat variety Chinese Spring. They were found to have from one to three locations on the subgenomes A, B, and D. Full-length gene sequences were designed for these contigs, which were further validated using promoter analysis. These predicted genes may have applications in molecular breeding programs and wheat drought and salinity research.en_US
dc.formatPDFen_US
dc.identifierhttps://mel.cgiar.org/reporting/downloadmelspace/hash/e385d24839b2fb6135418b61a7546685/v/b63eac486feec18209e30c43d02ba9aben_US
dc.identifier.citationLaila Nahas, Naim Al-Husein, Ghinwa Lababidi, Aladdin Hamwieh. (31/10/2019). In-silico prediction of novel genes responsive to drought and salinity stress tolerance in bread wheat (Triticum aestivum). PLoS ONE, 14 (10).en_US
dc.identifier.statusOpen accessen_US
dc.identifier.urihttps://hdl.handle.net/20.500.11766/13561
dc.languageenen_US
dc.publisherPUBLIC LIBRARY SCIENCEen_US
dc.rightsCC-BY-4.0en_US
dc.sourcePLoS ONE;14,(2019)en_US
dc.subjectspring bread wheaten_US
dc.titleIn-silico prediction of novel genes responsive to drought and salinity stress tolerance in bread wheat (Triticum aestivum)en_US
dc.typeJournal Articleen_US
dcterms.available2019-10-31en_US
mel.impact-factor3.240en_US

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