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(PDF) Molecular cloning and expression analysis of 12-oxophytodienoate reductase cDNA by wounding in Solanum tuberosum
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A full-length cDNA clon of OPR3 encoding 12oxophytodienoate reductase 3, key enzyme involved in the biosynthesis of JA" /> <title>(PDF) Molecular cloning and expression analysis of 12-oxophytodienoate reductase cDNA by wounding in Solanum tuberosum</title> <link rel="canonical" href="https://www.academia.edu/26493762/Molecular_cloning_and_expression_analysis_of_12_oxophytodienoate_reductase_cDNA_by_wounding_in_Solanum_tuberosum" /> <script async src="https://www.googletagmanager.com/gtag/js?id=G-5VKX33P2DS"></script> <script> window.dataLayer = window.dataLayer || []; function gtag(){dataLayer.push(arguments);} gtag('js', new Date()); gtag('config', 'G-5VKX33P2DS', { cookie_domain: 'academia.edu', send_page_view: false, }); gtag('event', 'page_view', { 'controller': "single_work", 'action': "show", 'controller_action': 'single_work#show', 'logged_in': 'false', 'edge': 'unknown', // Send nil if there is no A/B test bucket, in case some records get logged // with missing data - that way 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window.loswp.previewableAttachments = [{"id":46790210,"identifier":"Attachment_46790210","shouldShowBulkDownload":false}]; window.loswp.shouldDetectTimezone = true; window.loswp.shouldShowBulkDownload = true; window.loswp.showSignupCaptcha = false window.loswp.willEdgeCache = false; window.loswp.work = {"work":{"id":26493762,"created_at":"2016-06-25T15:38:07.438-07:00","from_world_paper_id":154786026,"updated_at":"2024-11-12T15:05:10.681-08:00","_data":{"grobid_abstract":"Jasmonic acid (JA) and 12-oxophytodienoic acid (OPDA) are signal molecules involved in the stress and defense responses in plants. A full-length cDNA clon of OPR3 encoding 12oxophytodienoate reductase 3, key enzyme involved in the biosynthesis of JA from linolenic acid was obtained from a Solanum tuberosum cDNA library. Sequence analysis showed that OPR3 encoded a polypeptide of 400 amino acids with a predicted molecular mass of 43.9 kDa and pI of 7.72. The deduced amino acid sequence of OPR3 showed high similarities to other 12-oxophytodienoate reductases. A peroxisomal signal sequence indicates OPR3 probable location in peroxisome. Levels of OPR3 mRNA accumulated in potato leaves reaching maximum levels within 1 hr of mechanical wounding. Elevated levels of JA were correlated to expression of the OPR3 gene.","publication_date":"2012,,","publication_name":"Electronic Journal of Biotechnology","grobid_abstract_attachment_id":"46790210"},"document_type":"paper","pre_hit_view_count_baseline":null,"quality":"high","language":"en","title":"Molecular cloning and expression analysis of 12-oxophytodienoate reductase cDNA by wounding in Solanum tuberosum","broadcastable":false,"draft":null,"has_indexable_attachment":true,"indexable":true}}["work"]; window.loswp.workCoauthors = [50428405]; window.loswp.locale = "en"; window.loswp.countryCode = "SG"; window.loswp.cwvAbTestBucket = ""; window.loswp.designVariant = "ds_vanilla"; window.loswp.fullPageMobileSutdModalVariant = "control"; window.loswp.useOptimizedScribd4genScript = false; window.loginModal = {}; window.loginModal.appleClientId = 'edu.academia.applesignon'; window.userInChina = "false";</script><script defer="" src="https://accounts.google.com/gsi/client"></script><div class="ds-loswp-container"><div class="ds-work-card--grid-container"><div class="ds-work-card--container js-loswp-work-card"><div class="ds-work-card--cover"><div class="ds-work-cover--wrapper"><div class="ds-work-cover--container"><button class="ds-work-cover--clickable js-swp-download-button" data-signup-modal="{"location":"swp-splash-paper-cover","attachmentId":46790210,"attachmentType":"pdf"}"><img alt="First page of “Molecular cloning and expression analysis of 12-oxophytodienoate reductase cDNA by wounding in Solanum tuberosum”" class="ds-work-cover--cover-thumbnail" src="https://0.academia-photos.com/attachment_thumbnails/46790210/mini_magick20190208-29691-18idfqw.png?1549681898" /><img alt="PDF Icon" class="ds-work-cover--file-icon" src="//a.academia-assets.com/images/single_work_splash/adobe_icon.svg" /><div class="ds-work-cover--hover-container"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">download</span><p>Download Free PDF</p></div><div class="ds-work-cover--ribbon-container">Download Free PDF</div><div class="ds-work-cover--ribbon-triangle"></div></button></div></div></div><div class="ds-work-card--work-information"><h1 class="ds-work-card--work-title">Molecular cloning and expression analysis of 12-oxophytodienoate reductase cDNA by wounding in Solanum tuberosum</h1><div class="ds-work-card--work-authors ds-work-card--detail"><a class="ds-work-card--author js-wsj-grid-card-author ds2-5-body-md ds2-5-body-link" data-author-id="50428405" href="https://independent.academia.edu/MauricioDiaz62"><img alt="Profile image of Mauricio Diaz" class="ds-work-card--author-avatar" src="https://0.academia-photos.com/50428405/13281900/14544872/s65_mauricio.diaz.jpg" />Mauricio Diaz</a></div><div class="ds-work-card--detail"><p class="ds-work-card--detail ds2-5-body-sm">2012, Electronic Journal of Biotechnology</p><div class="ds-work-card--work-metadata"><div class="ds-work-card--work-metadata__stat"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">visibility</span><p class="ds2-5-body-sm" id="work-metadata-view-count">…</p></div><div class="ds-work-card--work-metadata__stat"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">description</span><p class="ds2-5-body-sm">7 pages</p></div><div class="ds-work-card--work-metadata__stat"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">link</span><p class="ds2-5-body-sm">1 file</p></div></div><script>(async () => { const workId = 26493762; 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A full-length cDNA clon of OPR3 encoding 12oxophytodienoate reductase 3, key enzyme involved in the biosynthesis of JA from linolenic acid was obtained from a Solanum tuberosum cDNA library. Sequence analysis showed that OPR3 encoded a polypeptide of 400 amino acids with a predicted molecular mass of 43.9 kDa and pI of 7.72. The deduced amino acid sequence of OPR3 showed high similarities to other 12-oxophytodienoate reductases. A peroxisomal signal sequence indicates OPR3 probable location in peroxisome. Levels of OPR3 mRNA accumulated in potato leaves reaching maximum levels within 1 hr of mechanical wounding. Elevated levels of JA were correlated to expression of the OPR3 gene.</p><div class="ds-work-card--button-container"><button class="ds2-5-button js-swp-download-button" data-signup-modal="{"location":"continue-reading-button--work-card","attachmentId":46790210,"attachmentType":"pdf","workUrl":"https://www.academia.edu/26493762/Molecular_cloning_and_expression_analysis_of_12_oxophytodienoate_reductase_cDNA_by_wounding_in_Solanum_tuberosum"}">See full PDF</button><button class="ds2-5-button ds2-5-button--secondary js-swp-download-button" data-signup-modal="{"location":"download-pdf-button--work-card","attachmentId":46790210,"attachmentType":"pdf","workUrl":"https://www.academia.edu/26493762/Molecular_cloning_and_expression_analysis_of_12_oxophytodienoate_reductase_cDNA_by_wounding_in_Solanum_tuberosum"}"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">download</span>Download PDF</button></div><div class="ds-signup-banner-trigger-container"><div class="ds-signup-banner-trigger ds-signup-banner-trigger-control"></div></div><div class="ds-signup-banner ds-signup-banner-control"><div id="ds-signup-banner-close-button"><button class="ds2-5-button ds2-5-button--secondary ds2-5-button--inverse"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">close</span></button></div><div class="ds-signup-banner-ctas"><img src="//a.academia-assets.com/images/academia-logo-capital-white.svg" /><h4 class="ds2-5-heading-serif-sm">Sign up for access to the world's latest research</h4><button class="ds2-5-button ds2-5-button--inverse ds2-5-button--full-width js-swp-download-button" data-signup-modal="{"location":"signup-banner"}">Sign up for free<span class="material-symbols-outlined" style="font-size: 20px" translate="no">arrow_forward</span></button></div><div class="ds-signup-banner-divider"></div><div class="ds-signup-banner-reasons"><div class="ds-signup-banner-reasons-item"><span class="material-symbols-outlined" style="font-size: 24px" translate="no">check</span><span>Get notified about relevant papers</span></div><div class="ds-signup-banner-reasons-item"><span class="material-symbols-outlined" style="font-size: 24px" translate="no">check</span><span>Save papers to use in your research</span></div><div class="ds-signup-banner-reasons-item"><span class="material-symbols-outlined" style="font-size: 24px" translate="no">check</span><span>Join the discussion with peers</span></div><div class="ds-signup-banner-reasons-item"><span class="material-symbols-outlined" style="font-size: 24px" translate="no">check</span><span>Track your impact</span></div></div></div><script>(() => { // Set up signup banner show/hide behavior: // 1. 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To assess the relative contribution of JA/JA-Ile and OPDA to insect resistance in tomato (Solanum lycopersicum), we silenced the expression of OPDA reductase3 (OPR3) by RNA interference (RNAi). Consistent with a block in the biosynthetic pathway downstream of OPDA, OPR3-RNAi plants contained wild-type levels of OPDA but failed to accumulate JA or JA-Ile after wounding. JA/JA-Ile deficiency in OPR3-RNAi plants resulted in reduced trichome formation and impaired monoterpene and sesquiterpene production. The loss of these JA/JA-Ile-dependent defense traits rendered them more attractive to the specialist herbivore Manduca sexta with respect to feeding and oviposition. Oviposition preference resulted from reduced levels of repellant monoterpenes and sesquiterpenes. Feeding preference, on the other hand, was caused by increased production of cis-3-hexenal acting as a feeding stimulant for M. sexta larvae in OPR3-RNAi plants. Despite impaired constitutive defenses and increased palatability of OPR3-RNAi leaves, larval development was indistinguishable on OPR3-RNAi and wild-type plants, and was much delayed compared with development on the jasmonic acid-insensitive1 (jai1) mutant. Apparently, signaling through JAI1, the tomato ortholog of the ubiquitin ligase CORONATINE INSENSITIVE1 in Arabidopsis (Arabidopsis thaliana), is required for defense, whereas the conversion of OPDA to JA/JA-Ile is not. Comparing the signaling activities of OPDA and JA/JA-Ile, we found that OPDA can substitute for JA/JA-Ile in the local induction of defense gene expression, but the production of JA/JA-Ile is required for a systemic response.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Jasmonic acid and its precursor 12-oxophytodienoic acid control different aspects of constitutive and induced herbivore defenses in tomato","attachmentId":68770416,"attachmentType":"pdf","work_url":"https://www.academia.edu/50895989/Jasmonic_acid_and_its_precursor_12_oxophytodienoic_acid_control_different_aspects_of_constitutive_and_induced_herbivore_defenses_in_tomato","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/50895989/Jasmonic_acid_and_its_precursor_12_oxophytodienoic_acid_control_different_aspects_of_constitutive_and_induced_herbivore_defenses_in_tomato"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="1" data-entity-id="58250442" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/58250442/Molecular_cloning_and_expression_of_12_oxophytodienoic_acid_reductase_gene_from_barley">Molecular cloning and expression of 12-oxophytodienoic acid reductase gene from barley</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="422585" href="https://al-balqa.academia.edu/SaeidAbuRomman">Saeid Abu-Romman</a></div><p class="ds-related-work--abstract ds2-5-body-sm">The 12-oxophytodienoic acid reductases (OPRs) are flavin mononucleotide-dependent oxidoreductases that catalyse the reduction of double bonds in �,�-unsaturated aldehyde and ketones and some of them are part of the octadecanoid pathway leading to jasmonic acid biosynthesis. In this paper, a member of the OPR gene family (HvOPR1) was isolated from barley, the full length cDNA of HvOPR1 was 1298 bp containing a 1089 bp ORF encoding 362 amino acids. Bioinformatic analyses revealed that the deduced HvOPR1 has considerable homology with other plant OPRs. Phylogenetic analysis showed that HvOPR1 codes for OPR of subgroup I, containing enzymes which are not required for jasmonic acid biosynthesis. Expression of HvOPR1 during development and in response to abiotic stresses and hormonal treatments was analyzed by semi-quantitative reverse-transcription PCR. HvOPR1 expression was differentially regulated during primary leaf development and up-regulated in response to drought, hydrogen peroxid...</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Molecular cloning and expression of 12-oxophytodienoic acid reductase gene from barley","attachmentId":72753674,"attachmentType":"pdf","work_url":"https://www.academia.edu/58250442/Molecular_cloning_and_expression_of_12_oxophytodienoic_acid_reductase_gene_from_barley","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/58250442/Molecular_cloning_and_expression_of_12_oxophytodienoic_acid_reductase_gene_from_barley"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="2" data-entity-id="12450702" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/12450702/Genomic_Analysis_of_the_12_oxo_phytodienoic_Acid_Reductase_Gene_Family_of_Zea_mays">Genomic Analysis of the 12-oxo-phytodienoic Acid Reductase Gene Family of Zea mays</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="31265090" href="https://independent.academia.edu/WilkinsonHeather">Heather Wilkinson</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Plant Molecular Biology, 2005</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Genomic Analysis of the 12-oxo-phytodienoic Acid Reductase Gene Family of Zea mays","attachmentId":46175870,"attachmentType":"pdf","work_url":"https://www.academia.edu/12450702/Genomic_Analysis_of_the_12_oxo_phytodienoic_Acid_Reductase_Gene_Family_of_Zea_mays","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/12450702/Genomic_Analysis_of_the_12_oxo_phytodienoic_Acid_Reductase_Gene_Family_of_Zea_mays"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="3" data-entity-id="15502061" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/15502061/12_Oxo_Phytodienoic_Acid_Triggers_Expression_of_a_Distinct_Set_of_Genes_and_Plays_a_Role_in_Wound_Induced_Gene_Expression_in_Arabidopsis">12-Oxo-Phytodienoic Acid Triggers Expression of a Distinct Set of Genes and Plays a Role in Wound-Induced Gene Expression in Arabidopsis</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="34753447" href="https://independent.academia.edu/TakeshiObayashi" rel="nofollow">Takeshi Obayashi</a><span>, </span><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="34652174" href="https://independent.academia.edu/SuzukiHideyuki">Hideyuki Suzuki</a></div><p class="ds-related-work--metadata ds2-5-body-xs">PLANT PHYSIOLOGY, 2005</p><p class="ds-related-work--abstract ds2-5-body-sm">Jasmonic acid (JA) and methyl jasmonate (MeJA), collectively known as JAs, regulate diverse physiological processes in plants, including the response to wounding. Recent reports suggest that a cyclopentenone precursor of JA, 12-oxo-phytodienoic acid (OPDA), can also induce gene expression. However, little is known about the physiological significance of OPDA-dependent gene expression. We used microarray analysis of approximately 21,500 Arabidopsis (Arabidopsis thaliana) genes to compare responses to JA, MeJA, and OPDA treatment. Although many genes responded identically to both OPDA and JAs, we identified a set of genes (OPDA-specific response genes [ORGs]) that specifically responded to OPDA but not to JAs. ORGs primarily encoded signaling components, transcription factors, and stress response-related genes. One-half of the ORGs were induced by wounding. Analysis using mutants deficient in the biosynthesis of JAs revealed that OPDA functions as a signaling molecule in the wounding response. Unlike signaling via JAs, OPDA signaling was CORONATINE INSENSITIVE 1 independent. These results indicate that an OPDA signaling pathway functions independently of JA/MeJA signaling and is required for the wounding response in Arabidopsis.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"12-Oxo-Phytodienoic Acid Triggers Expression of a Distinct Set of Genes and Plays a Role in Wound-Induced Gene Expression in Arabidopsis","attachmentId":43142191,"attachmentType":"pdf","work_url":"https://www.academia.edu/15502061/12_Oxo_Phytodienoic_Acid_Triggers_Expression_of_a_Distinct_Set_of_Genes_and_Plays_a_Role_in_Wound_Induced_Gene_Expression_in_Arabidopsis","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/15502061/12_Oxo_Phytodienoic_Acid_Triggers_Expression_of_a_Distinct_Set_of_Genes_and_Plays_a_Role_in_Wound_Induced_Gene_Expression_in_Arabidopsis"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="4" data-entity-id="83666558" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/83666558/Disruption_of_OPR7_and_OPR8_Reveals_the_Versatile_Functions_of_Jasmonic_Acid_in_Maize_Development_and_Defense">Disruption of OPR7 and OPR8 Reveals the Versatile Functions of Jasmonic Acid in Maize Development and Defense</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="172472337" href="https://independent.academia.edu/HaywardAllison">Allison Hayward</a></div><p class="ds-related-work--metadata ds2-5-body-xs">The Plant Cell, 2012</p><p class="ds-related-work--abstract ds2-5-body-sm">Here, multiple functions of jasmonic acid (JA) in maize (Zea mays) are revealed by comprehensive analyses of JA-deficient mutants of the two oxo-phytodienoate reductase genes, OPR7 and OPR8. Single mutants produce wild-type levels of JA in most tissues, but the double mutant opr7 opr8 has dramatically reduced JA in all organs tested. opr7 opr8 displayed strong developmental defects, including formation of a feminized tassel, initiation of female reproductive buds at each node, and extreme elongation of ear shanks; these defects were rescued by exogenous JA. These data provide evidence that JA is required for male sex determination and suppression of female reproductive organ biogenesis. Moreover, opr7 opr8 exhibited delayed leaf senescence accompanied by reduced ethylene and abscisic acid levels and lack of anthocyanin pigmentation of brace roots. Remarkably, opr7 opr8 is nonviable in nonsterile soil and under field conditions due to extreme susceptibility to a root-rotting oomycete (Pythium spp), demonstrating that these genes are necessary for maize survival in nature. Supporting the importance of JA in insect defense, opr7 opr8 is susceptible to beet armyworm. Overall, this study provides strong genetic evidence for the global roles of JA in maize development and immunity to pathogens and insects.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Disruption of OPR7 and OPR8 Reveals the Versatile Functions of Jasmonic Acid in Maize Development and Defense","attachmentId":88936191,"attachmentType":"pdf","work_url":"https://www.academia.edu/83666558/Disruption_of_OPR7_and_OPR8_Reveals_the_Versatile_Functions_of_Jasmonic_Acid_in_Maize_Development_and_Defense","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/83666558/Disruption_of_OPR7_and_OPR8_Reveals_the_Versatile_Functions_of_Jasmonic_Acid_in_Maize_Development_and_Defense"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="5" data-entity-id="6846830" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/6846830/An_Arabidopsis_gene_induced_by_wounding_functionally_homologous_to_flavoprotein_oxidoreductases">An Arabidopsis gene induced by wounding functionally homologous to flavoprotein oxidoreductases</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="11430209" href="https://independent.academia.edu/CinthiaRojo">Cinthia Rojo</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Plant Molecular Biology, 2000</p><p class="ds-related-work--abstract ds2-5-body-sm">The regulation of genes in response to wounding is mediated in part by the octadecanoids 12-oxo-phytodienoic acid (OPDA), jasmonic acid (JA) and its methyl ester methyl jasmonate (MeJA). We identified, by differential display, an Arabidopsis gene (OPR3) induced after wounding. OPR3 is homologous to members of the flavin mononucleotide (FMN) binding proteins, including the old yellow enzyme (OYE) from yeast and 12-oxophytodienoate-10,11-reductase (OPR) from Arabidopsis. Transcripts of OPR3 rapidly accumulated in leaves after wounding and MeJA treatment, but they were detected in various tissues of unwounded plants at relatively low levels. Expression of the OPR3 gene was significantly reduced in wounded leaves of the coi1 mutant, indicating partial dependence on jasmonate perception for full induction of the gene. The recombinant protein of OPR3 cross-reacted with an antiserum raised against the OYE protein, and showed oxidation of β-NADPH when OPDA or 15-deoxy-Δ12,14-prostaglandin J2 (PGJ2), an analogue of OPDA, was used as substrate. β-NADPH oxidation was not observed when MeJA, which lacks the double bond in the ketone ring, was used as substrate. The recombinant OPR3 protein also showed β-NADPH oxidation activity in the presence of cyclohexenone, but not cyclohexanone, suggesting that the enzyme has specificity to cleavage of olefinic bonds in cyclic enones. The results show that the OPR3 gene product represents a new OPR of Arabidopsis induced after wounding.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"An Arabidopsis gene induced by wounding functionally homologous to flavoprotein oxidoreductases","attachmentId":48699638,"attachmentType":"pdf","work_url":"https://www.academia.edu/6846830/An_Arabidopsis_gene_induced_by_wounding_functionally_homologous_to_flavoprotein_oxidoreductases","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/6846830/An_Arabidopsis_gene_induced_by_wounding_functionally_homologous_to_flavoprotein_oxidoreductases"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="6" data-entity-id="70802611" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/70802611/The_Recently_Identified_Isoleucine_Conjugate_of_cis_12_Oxo_Phytodienoic_Acid_Is_Partially_Active_in_cis_12_Oxo_Phytodienoic_Acid_Specific_Gene_Expression_of_Arabidopsis_thaliana">The Recently Identified Isoleucine Conjugate of cis-12-Oxo-Phytodienoic Acid Is Partially Active in cis-12-Oxo-Phytodienoic Acid-Specific Gene Expression of Arabidopsis thaliana</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="38239374" href="https://independent.academia.edu/ClausWasternack">Claus Wasternack</a></div><p class="ds-related-work--metadata ds2-5-body-xs">PLOS ONE, 2016</p><p class="ds-related-work--abstract ds2-5-body-sm">Oxylipins of the jasmonate family are active as signals in plant responses to biotic and abiotic stresses as well as in development. Jasmonic acid (JA), its precursor cis-12-oxo-phytodienoic acid (OPDA) and the isoleucine conjugate of JA (JA-Ile) are the most prominent members. OPDA and JA-Ile have individual signalling properties in several processes and differ in their pattern of gene expression. JA-Ile, but not OPDA, is perceived by the SCF COI1-JAZ co-receptor complex. There are, however, numerous processes and genes specifically induced by OPDA. The recently identified OPDA-Ile suggests that OPDA specific responses might be mediated upon formation of OPDA-Ile. Here, we tested OPDA-Ileinduced gene expression in wild type and JA-deficient, JA-insensitive and JA-Ile-deficient mutant background. Tests on putative conversion of OPDA-Ile during treatments revealed only negligible conversion. Expression of two OPDA-inducible genes, GRX480 and ZAT10, by OPDA-Ile could be detected in a JA-independent manner in Arabidopsis seedlings but less in flowering plants. The data suggest a bioactivity in planta of OPDA-Ile.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"The Recently Identified Isoleucine Conjugate of cis-12-Oxo-Phytodienoic Acid Is Partially Active in cis-12-Oxo-Phytodienoic Acid-Specific Gene Expression of Arabidopsis thaliana","attachmentId":80398917,"attachmentType":"pdf","work_url":"https://www.academia.edu/70802611/The_Recently_Identified_Isoleucine_Conjugate_of_cis_12_Oxo_Phytodienoic_Acid_Is_Partially_Active_in_cis_12_Oxo_Phytodienoic_Acid_Specific_Gene_Expression_of_Arabidopsis_thaliana","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/70802611/The_Recently_Identified_Isoleucine_Conjugate_of_cis_12_Oxo_Phytodienoic_Acid_Is_Partially_Active_in_cis_12_Oxo_Phytodienoic_Acid_Specific_Gene_Expression_of_Arabidopsis_thaliana"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="7" data-entity-id="33274561" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/33274561/Characterization_of_an_Arabidopsis_lipoxygenase_gene_responsive_to_methyl_jasmonate_and_wounding">Characterization of an Arabidopsis lipoxygenase gene responsive to methyl jasmonate and wounding</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="64977449" href="https://independent.academia.edu/JohnMullet">John Mullet</a></div><p class="ds-related-work--metadata ds2-5-body-xs">PLANT PHYSIOLOGY, 1993</p><p class="ds-related-work--abstract ds2-5-body-sm">A cDNA corresponding to the gene Atlox2 was isolated from an Arabidopsis thaliana library using a lipoxygenase (LOX) probe from soybean. Atlox2 encodes a 102-kD protein, AtLOX2, which has 42 to 45% amino acid sequence identity with other plant LOX sequences. The AtLOX2 sequence is more than 30 amino acids longer at the amino terminus than other plant LOX sequences, and this extension has features reminiscent of chloroplast transit peptides, suggesting that AtLOX2 may be chloroplast localized. Atlox2 mRNA levels are high in leaves and inflorescences but very low in seeds, roots, and stems. Atlox2 mRNA accumulation is rapidly induced in leaves in response to methyl jasmonate. Leaves that have been wounded and adjacent leaves on the same plant also accumulate Atlox2 mRNA.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Characterization of an Arabidopsis lipoxygenase gene responsive to methyl jasmonate and wounding","attachmentId":53342950,"attachmentType":"pdf","work_url":"https://www.academia.edu/33274561/Characterization_of_an_Arabidopsis_lipoxygenase_gene_responsive_to_methyl_jasmonate_and_wounding","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/33274561/Characterization_of_an_Arabidopsis_lipoxygenase_gene_responsive_to_methyl_jasmonate_and_wounding"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="8" data-entity-id="4639165" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/4639165/Determination_of_Proteins_Induced_in_Response_to_Jasmonic_Acid_and_Salicylic_Acid_in_Resistant_and_Susceptible_Cultivars_of_Tomato">Determination of Proteins Induced in Response to Jasmonic Acid and Salicylic Acid in Resistant and Susceptible Cultivars of Tomato</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="4805098" href="https://universityofgujrat.academia.edu/AmberAfroz">Amber Afroz</a></div><p class="ds-related-work--abstract ds2-5-body-sm">Jasmonic acid (JA) and salicylic acid (SA) are signaling molecules that play key roles in the regulation of metabolic processes, reproduction, and defense against pathogens. The proteomics approach was used to identify proteins that are induced by JA and SA in the tomato cultivars Roma and Pant Bahr, which are susceptible and resistant to bacterial wilt, respectively. Threonine deaminase and leucine amino peptidase were upregulated, and ribulose-1,5-bisphosphate carboxylase/oxygenase small chain was downregulated by time-course application of JA. Translationally controlled tumor protein was upregulated by time-course application of SA. Protein disulfide isomerase was upregulated by application of either JA or SA. Proteins related to defense, energy, and protein destination/storage are suspected to be responsible for the susceptibility or resistance of the cultivars. Furthermore, in Roma, iron ABC transporter was upregulated by JA and downregulated by SA. Iron ABC transporter plays a part in the signal transduction of both JA and SA in cultivars of tomato that are resistant to bacterial wilt.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Determination of Proteins Induced in Response to Jasmonic Acid and Salicylic Acid in Resistant and Susceptible Cultivars of Tomato","attachmentId":31988851,"attachmentType":"pdf","work_url":"https://www.academia.edu/4639165/Determination_of_Proteins_Induced_in_Response_to_Jasmonic_Acid_and_Salicylic_Acid_in_Resistant_and_Susceptible_Cultivars_of_Tomato","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/4639165/Determination_of_Proteins_Induced_in_Response_to_Jasmonic_Acid_and_Salicylic_Acid_in_Resistant_and_Susceptible_Cultivars_of_Tomato"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="9" data-entity-id="21188370" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/21188370/Identification_of_the_OsOPR7_gene_encoding_12_oxophytodienoate_reductase_involved_in_the_biosynthesis_of_jasmonic_acid_in_rice">Identification of the OsOPR7 gene encoding 12-oxophytodienoate reductase involved in the biosynthesis of jasmonic acid in rice</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="42348281" href="https://independent.academia.edu/NobuhiroTsutsumi">Nobuhiro Tsutsumi</a><span>, </span><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="42568226" href="https://independent.academia.edu/ShinIchiArimura">Shin-Ichi Arimura</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Planta, 2008</p><p class="ds-related-work--abstract ds2-5-body-sm">Enzyme 12-oxophytodienoate (OPDA) reductase (EC1.3.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Identification of the OsOPR7 gene encoding 12-oxophytodienoate reductase involved in the biosynthesis of jasmonic acid in rice","attachmentId":41754099,"attachmentType":"pdf","work_url":"https://www.academia.edu/21188370/Identification_of_the_OsOPR7_gene_encoding_12_oxophytodienoate_reductase_involved_in_the_biosynthesis_of_jasmonic_acid_in_rice","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/21188370/Identification_of_the_OsOPR7_gene_encoding_12_oxophytodienoate_reductase_involved_in_the_biosynthesis_of_jasmonic_acid_in_rice"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div></div></div><div class="ds-sticky-ctas--wrapper js-loswp-sticky-ctas hidden"><div class="ds-sticky-ctas--grid-container"><div class="ds-sticky-ctas--container"><button class="ds2-5-button js-swp-download-button" data-signup-modal="{"location":"continue-reading-button--sticky-ctas","attachmentId":46790210,"attachmentType":"pdf","workUrl":null}">See full PDF</button><button class="ds2-5-button ds2-5-button--secondary js-swp-download-button" data-signup-modal="{"location":"download-pdf-button--sticky-ctas","attachmentId":46790210,"attachmentType":"pdf","workUrl":null}"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">download</span>Download PDF</button></div></div></div><div class="ds-below-fold--grid-container"><div class="ds-work--container js-loswp-embedded-document"><div class="attachment_preview" data-attachment="Attachment_46790210" style="display: none"><div class="js-scribd-document-container"><div class="scribd--document-loading js-scribd-document-loader" style="display: block;"><img alt="Loading..." src="//a.academia-assets.com/images/loaders/paper-load.gif" /><p>Loading Preview</p></div></div><div style="text-align: center;"><div class="scribd--no-preview-alert js-preview-unavailable"><p>Sorry, preview is currently unavailable. You can download the paper by clicking the button above.</p></div></div></div></div><div class="ds-sidebar--container js-work-sidebar"><div class="ds-related-content--container"><h2 class="ds-related-content--heading">Related papers</h2><div class="ds-related-work--container js-related-work-sidebar-card" data-collection-position="0" data-entity-id="34771377" data-sort-order="default"><a class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/34771377/Isolation_and_characterization_of_a_potato_cDNA_corresponding_to_a_1_aminocyclopropane_1_carboxylate_ACC_oxidase_gene_differentially_activated_by_stress">Isolation and characterization of a potato cDNA corresponding to a 1-aminocyclopropane-1-carboxylate (ACC) oxidase gene differentially activated by stress</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="38734871" href="https://independent.academia.edu/Mar%C3%ADaZanetti">María Zanetti</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Journal of Experimental Botany, 2002</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Isolation and characterization of a potato cDNA corresponding to a 1-aminocyclopropane-1-carboxylate (ACC) oxidase gene differentially activated by stress","attachmentId":54630557,"attachmentType":"pdf","work_url":"https://www.academia.edu/34771377/Isolation_and_characterization_of_a_potato_cDNA_corresponding_to_a_1_aminocyclopropane_1_carboxylate_ACC_oxidase_gene_differentially_activated_by_stress","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/34771377/Isolation_and_characterization_of_a_potato_cDNA_corresponding_to_a_1_aminocyclopropane_1_carboxylate_ACC_oxidase_gene_differentially_activated_by_stress"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-related-work-sidebar-card" data-collection-position="1" data-entity-id="77929353" data-sort-order="default"><a class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/77929353/Expression_of_a_Flax_Allene_Oxide_Synthase_cDNA_Leads_to_Increased_Endogenous_Jasmonic_Acid_JA_Levels_in_Transgenic_Potato_Plants_but_Not_to_a_Corresponding_Activation_of_JA_Responding_Genes">Expression of a Flax Allene Oxide Synthase cDNA Leads to Increased Endogenous Jasmonic Acid (JA) Levels in Transgenic Potato Plants but Not to a Corresponding Activation of JA-Responding Genes</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="222219039" href="https://independent.academia.edu/HugoPenaCortes">Hugo Pena-Cortes</a></div><p class="ds-related-work--metadata ds2-5-body-xs">The Plant Cell, 1995</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Expression of a Flax Allene Oxide Synthase cDNA Leads to Increased Endogenous Jasmonic Acid (JA) Levels in Transgenic Potato Plants but Not to a Corresponding Activation of JA-Responding 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data-collection-position="8" data-entity-id="18242525" data-sort-order="default"><a class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/18242525/Characterization_and_cDNA_microarray_expression_analysis_of_12_oxophytodienoate_reductases_reveals_differential_roles_for_octadecanoid_biosynthesis_in_the_local_versus_the_systemic_wound_response">Characterization and cDNA-microarray expression analysis of 12-oxophytodienoate reductases reveals differential roles for octadecanoid biosynthesis in the local versus the systemic wound response</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="39194020" href="https://uni-hohenheim.academia.edu/AndreasSchaller">Andreas Schaller</a><span>, </span><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="38226156" href="https://independent.academia.edu/GreggHowe">Gregg Howe</a></div><p class="ds-related-work--metadata ds2-5-body-xs">The Plant Journal, 2002</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Characterization and cDNA-microarray expression analysis of 12-oxophytodienoate reductases reveals differential roles for octadecanoid biosynthesis in the local versus the systemic wound response","attachmentId":39951388,"attachmentType":"pdf","work_url":"https://www.academia.edu/18242525/Characterization_and_cDNA_microarray_expression_analysis_of_12_oxophytodienoate_reductases_reveals_differential_roles_for_octadecanoid_biosynthesis_in_the_local_versus_the_systemic_wound_response","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link 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Barley Leaves. Implications for Different Signaling Pathways</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="38239374" href="https://independent.academia.edu/ClausWasternack">Claus Wasternack</a></div><p class="ds-related-work--metadata ds2-5-body-xs">PLANT PHYSIOLOGY, 2000</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Octadecanoid-Derived Alteration of Gene Expression and the \"Oxylipin Signature\" in Stressed Barley Leaves. 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