SaeidReza Poursakhi , Hossein Ali Asadi-Gharneh , Mehdi Nasr-Esfahani , Zahra Abbasi , Hamed Hassanzadeh Khankahdani
{"title":"候选标记基因与抗洋葱-枯萎病基腐病互作病理系统的新关联鉴定","authors":"SaeidReza Poursakhi , Hossein Ali Asadi-Gharneh , Mehdi Nasr-Esfahani , Zahra Abbasi , Hamed Hassanzadeh Khankahdani","doi":"10.1016/j.plgene.2023.100440","DOIUrl":null,"url":null,"abstract":"<div><p>We evaluated the selected populations of eighteen open-pollinated short-day onion genotypes for FBR-Fusarium basal rot (<span><em>Fusarium oxysporum</em></span> f. sp. <em>cepae-FOC</em><span>) susceptibility; population genetic variation<span> via ISSR marker; and transcriptome analysis using qRT-PCR with six novel selected marker genes: </span></span><em>R1</em>, <em>R5</em>, <em>RGA29</em>, <span><em>lectin</em></span>, <em>LOX</em>, and <em>Osmotin</em>, at tree time post inoculation (wpi). Screening for resistance showed the average severity between 4.7 and 88.9%; of which, the lowest one was in ‘Saba’ and ‘Saba – HS (6.7 and 4.7%, respectively). ISSR analysis recorded 226 amplified bands, of which 160 bands showed polymorphism, of which ISSR1 and ISSR10 primers showed the best performance. We also found that following inoculation with <em>FOC</em> could regulate defense-related marker genes; <em>R1</em>, <em>PR5</em>, <em>Lectin</em>, <em>LOX</em>, <em>Osmotin</em>, and <em>RGA29</em> in resistant onion “Saba” and ‘Saba’-HS in comparison to susceptible and controls, non-inoculated ones ranging from 1.23 to 6.99 -fold significantly. Surprisingly, marker genes; <em>Lectin</em>, <em>LOX</em>, and <em>Osmotin</em> were also expressed to <em>FOC</em><span> simultaneous, though basically are resistance to other biotic and abiotic stress: </span><em>Lectin</em> to <span><em>Rhizoctonia solani</em></span>, Aphid, and major sap-sucking pests; <em>LOX</em><span> to root-knot and cyst nematode, </span><span><em>Heterodera glycines</em></span>; <em>Osmotin</em> to drought stredd, and oxidative burst in plants. This indicates the double, and or multiple roles of our selected marker genes covering two or more functions at a time. The findings introduce newly resistant onion genotypes, and also can be used in management programs to reduce damages caused by <em>FOC</em> disease. Cumulatively, the transcriptome-data provide novel-insights into the response of onions for improving onion-breeding to <em>FOC.</em></p></div>","PeriodicalId":38041,"journal":{"name":"Plant Gene","volume":"37 ","pages":"Article 100440"},"PeriodicalIF":2.2000,"publicationDate":"2023-11-19","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Identification of novel associations of candidate marker genes with resistance to onion-fusarium basal rot interaction pathosystem\",\"authors\":\"SaeidReza Poursakhi , Hossein Ali Asadi-Gharneh , Mehdi Nasr-Esfahani , Zahra Abbasi , Hamed Hassanzadeh Khankahdani\",\"doi\":\"10.1016/j.plgene.2023.100440\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>We evaluated the selected populations of eighteen open-pollinated short-day onion genotypes for FBR-Fusarium basal rot (<span><em>Fusarium oxysporum</em></span> f. sp. <em>cepae-FOC</em><span>) susceptibility; population genetic variation<span> via ISSR marker; and transcriptome analysis using qRT-PCR with six novel selected marker genes: </span></span><em>R1</em>, <em>R5</em>, <em>RGA29</em>, <span><em>lectin</em></span>, <em>LOX</em>, and <em>Osmotin</em>, at tree time post inoculation (wpi). Screening for resistance showed the average severity between 4.7 and 88.9%; of which, the lowest one was in ‘Saba’ and ‘Saba – HS (6.7 and 4.7%, respectively). ISSR analysis recorded 226 amplified bands, of which 160 bands showed polymorphism, of which ISSR1 and ISSR10 primers showed the best performance. We also found that following inoculation with <em>FOC</em> could regulate defense-related marker genes; <em>R1</em>, <em>PR5</em>, <em>Lectin</em>, <em>LOX</em>, <em>Osmotin</em>, and <em>RGA29</em> in resistant onion “Saba” and ‘Saba’-HS in comparison to susceptible and controls, non-inoculated ones ranging from 1.23 to 6.99 -fold significantly. Surprisingly, marker genes; <em>Lectin</em>, <em>LOX</em>, and <em>Osmotin</em> were also expressed to <em>FOC</em><span> simultaneous, though basically are resistance to other biotic and abiotic stress: </span><em>Lectin</em> to <span><em>Rhizoctonia solani</em></span>, Aphid, and major sap-sucking pests; <em>LOX</em><span> to root-knot and cyst nematode, </span><span><em>Heterodera glycines</em></span>; <em>Osmotin</em> to drought stredd, and oxidative burst in plants. This indicates the double, and or multiple roles of our selected marker genes covering two or more functions at a time. The findings introduce newly resistant onion genotypes, and also can be used in management programs to reduce damages caused by <em>FOC</em> disease. 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Identification of novel associations of candidate marker genes with resistance to onion-fusarium basal rot interaction pathosystem
We evaluated the selected populations of eighteen open-pollinated short-day onion genotypes for FBR-Fusarium basal rot (Fusarium oxysporum f. sp. cepae-FOC) susceptibility; population genetic variation via ISSR marker; and transcriptome analysis using qRT-PCR with six novel selected marker genes: R1, R5, RGA29, lectin, LOX, and Osmotin, at tree time post inoculation (wpi). Screening for resistance showed the average severity between 4.7 and 88.9%; of which, the lowest one was in ‘Saba’ and ‘Saba – HS (6.7 and 4.7%, respectively). ISSR analysis recorded 226 amplified bands, of which 160 bands showed polymorphism, of which ISSR1 and ISSR10 primers showed the best performance. We also found that following inoculation with FOC could regulate defense-related marker genes; R1, PR5, Lectin, LOX, Osmotin, and RGA29 in resistant onion “Saba” and ‘Saba’-HS in comparison to susceptible and controls, non-inoculated ones ranging from 1.23 to 6.99 -fold significantly. Surprisingly, marker genes; Lectin, LOX, and Osmotin were also expressed to FOC simultaneous, though basically are resistance to other biotic and abiotic stress: Lectin to Rhizoctonia solani, Aphid, and major sap-sucking pests; LOX to root-knot and cyst nematode, Heterodera glycines; Osmotin to drought stredd, and oxidative burst in plants. This indicates the double, and or multiple roles of our selected marker genes covering two or more functions at a time. The findings introduce newly resistant onion genotypes, and also can be used in management programs to reduce damages caused by FOC disease. Cumulatively, the transcriptome-data provide novel-insights into the response of onions for improving onion-breeding to FOC.
Plant GeneAgricultural and Biological Sciences-Plant Science
CiteScore
4.50
自引率
0.00%
发文量
42
审稿时长
51 days
期刊介绍:
Plant Gene publishes papers that focus on the regulation, expression, function and evolution of genes in plants, algae and other photosynthesizing organisms (e.g., cyanobacteria), and plant-associated microorganisms. Plant Gene strives to be a diverse plant journal and topics in multiple fields will be considered for publication. Although not limited to the following, some general topics include: Gene discovery and characterization, Gene regulation in response to environmental stress (e.g., salinity, drought, etc.), Genetic effects of transposable elements, Genetic control of secondary metabolic pathways and metabolic enzymes. Herbal Medicine - regulation and medicinal properties of plant products, Plant hormonal signaling, Plant evolutionary genetics, molecular evolution, population genetics, and phylogenetics, Profiling of plant gene expression and genetic variation, Plant-microbe interactions (e.g., influence of endophytes on gene expression; horizontal gene transfer studies; etc.), Agricultural genetics - biotechnology and crop improvement.