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Tomato locus RNA-dependent RNA polymerase6a
Locus details | Download GMOD XML | Note to Editors | Annotation guidelines |
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Registry name: | None | [Associate registry name] |
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Image | Description | Type |
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![]() ![]() | [Associate accession] |
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Allele symbol | Allele name | Synonyms | Phenotype | Accessions | |
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1 | w-5 w-6 w-7 w-8 | 0 | [Edit] |
![]() ![]() | [Associate new locus] |
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![]() ![]() | View RNA-dependent RNA polymerase6a relationships in the stand-alone network browser |
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![]() ![]() | unprocessed genomic sequence region underlying this gene |
>Solyc04g014870.2 SL2.50ch04:5125889..5130330
AAGATGGGATCAGAGGGTTCTGAAAAGAATCTCGTAGTGACTCAAATTAGTGTTGGTGGGTTCAGCAATGATGTCAATGCGAAAATGCTTTCAGAATATCTGGAAGAACAAGTTGGACAAGTGTGGAGGTGTAGATTAAAGACTTCATCCACTCCTCCTGACTCTTACCCGACTTATGACATTGATGTAGAGAAAGTGCGAAGAATGAACAATTACATAAAAGTGGAACCTCATGCATTCGTTCATTTTGCATCTTCAGAGTCCGCACAGAATGCTCTTGCTGCTGCTAGGCGTGATGAACTCTTCTTAGAAGAGAAGCCTTTGAAGGTTAGTTTGGGTCCTGAGAATACCTTTAATATGAATGAGAGGAGAAGAACTTTCATGCCTTATAAGTTTTCGGACGTTGGTGTAGAAATTGGAGTACTGGTTAGTAATGATGACTTTGTGGTTGGTTGGAGGGGACCTCATTCTGGTGTTAACTTTCTTGTGGATCCATTCAATGGGAAATGCAAAATACTTTTCACAAGGGATACTGCTTTCTGTTTCAAGGGTGAAGGAAAGCATGCAGTTATAAAGTGCAATTTCAAGATTGAGTTTTTGCTGAGGGAAATCAATGAGATAAACGAATGCAAAGACTTTTCATCTTTGGTATTATTGTTGCAGCTGGCGTCATCTCCATTGGTTTTCTATAGAACTGCTGATGATGACATTGAAGAATCAGTTGCTTTTGACTTATTAGATGACGATGATCAGTGGATCCGAACCACAGATATTACATTTAGTGGAGCCATTGGTAGGTTTAATACCTACCGTGTTTCAATTCGACCTCGCAATGGTCCTAGCTTTAAGAAGGCCATGAACTATTTCAGAGAAAGTAGGGTGCCTGTGGTAGAACAGGGTGAGCAGATGCTCCGGGTGAGAAATGAGCCGGATTTTGGGGAGTCCGTCTCAGAACCTTTCTTCTGCTTTCAAAACCATGAAGGTATAAGCTTTAAGGTCTTGTTTCTGGTAAATGCGGTTTTGCACAAAGGCATAGTTAATCAGCATCAGATGACTGCTGAATTCTTTTCTTTGCTTAGAAAGCATCAGGAGGGAGTAAATTTAGCTGCACTGAAGCACATCTTTTCTTACAAAAGGCCTGTCAATGATGCTATTCGGAAGTTAGCAAGTGTACAGAAATGGCTATTTAATAATCCTAACCTTCTCGAGAGAACTGGACAGTTGGATGATGTTGTAGAGGTTAGAAGGTTGGTTATTACCCCAACCAAAGCATACTGTCTTCCGCCAACTGTGGAGCTATCCAATAGAGTCCTCAGGAAGTATAAGCATATTTCAGATCGATTTTTGCGAGTTACTTTTATGGATGAGGGCATGCGTAACCTGAACAGGAATGCTCTGACATACTATGCAGCTAATATTGTGAGAGAAATTACATCAAGTTCTAATCCCCAGAGAACTGGAATCTTCCAAAGGGTGAAAATTATTGTGAATAAAGGATTTTATCTGTGTGGTCGAAGGTATTCTTTTTTGGCTTTTTCAGCTAACCAGCTGAGGGATCGTTCTGCCTGGTTTTTTGCTGAAACCCCGGAAATTAGGGTGACCAGCATCATAAACTGGATGGGTAAGTTCGGTAACAGGAATGTTGCAAAATGTGCTGCTAGGATGGGACAGTGCTTTTCATCAACCTATGCAACAGTGGAAGTCCTTCCAAGCGAGGTTAACTCCGAGCTTCCAGATATAGAAAGAAATGGGTATGTTTTCTCTGATGGAATCGGCATGATGACAGCAGATCTATCTATAGAAGTTGCAGCGAAGTTGCAATTAAGTGTCAATCCTCCTTGTGCTTATCAGATAAGGTATGCTGGTTGTAAAGGTGTTGTTGCATGTTGGCCGGCGGAGAAAGATGGTATCCGCCTTTCTCTGAGACCAAGTATGAAGAAATTTGACTCAAATCACACTATCCTTGAAATCTGCTCTTGGACGAGATTACAGCCTGGTTTTCTGAACCGGCAAATAATAACCTTGCTCTCATCCTTGGAAGTTAAAGATGAAATGTTTTGGGAAATGCAGAAAGAAATGTTATCAAAGTTGGATAAGATACTTGTGGATTCGGACGTGGCTTTTGATGTGATTACAGCTTCATGTGCCGAGGCAGGAAATACAGCGGCTATAATGTTGAGTGCAGGGTTTAAACCTCAAAGTGAACCTCATTTGAGAGGGATGTTGGCTAGCATTAGAGCTGCTCAGCTTGGCGACCTCAGGAATAAGACAAGGATGTTTGTTACTTCAGGAAGGTGGTTGATGGGCTGTTTGGATGAATTAGGTGAACTTGAGCAAGGCCAATGCTTTATTCAAGTGTCAAGCCCTTCTTTGGAGACCTGTTTTGTTAAGCATGGTCCAGAGTTTTCTGAAATCAAGAAAAATCTTCAAGTAGTAAAGGGCCTTGTTGTAATTGCAAAGAACCCGTGTCTTCATCCCGGGGATGTGAGGATTCTGGAGGCTGTAGATGTTCCTGGTTTACACCATCTCTATGATTGTCTGGTCTTCCCTCAGAAAGGGGATAGGCCACATTCAAATGAAGCATCAGGGAGTGACCTTGATGGTGATCTCTACTTTGTGACTTGGGATGAAAATCTCATTCCACCCAGTAAGAAAAGCTGGATGCCAATGGCCTATGCACCTGCAGAAGCCAAACAGTTGGGTCGTCAAGTTCAACATACGGTAACTATCCAACTATGATGATATTTCTTGCAGCTTTGTTCACATCTTCCTATATTTGGTTAGCTTTTCCAGATCTGTATAAGTTTGTTTTACCGCGTAATGCTCATTTGGTTAGAATGCTGATGAGATTATTATAAGCCTTCTTGAAAAGCTAGCATTAATTGTTCTTTAGCTAATATTTACTATCATTGAACAACTGTATTGGGTTTTGTTGCATGTATTGCTCACTTTTCTTGTATAATGCATCCCAGTGGTATTCAACCATATTTAAGTTGTATGGTTTTTCCATACTGTAGTTGGTTGTAATAGAAGAGGGAGACTCTTTTTCTGTAGGCACACTCACTATGATAAAAAGAAAAATTTAAAGACACTCACCAATGATCTTGTGCTCTTCTTGCACTTGATTAGGAATTTCAGTCTTCTTTATGTCACTTATTATTTGTTGGATCATTTAACTGATTGCATAATATTCTTTTGTATTTATTTTTCTGATGTACTGTTCATTTGTTCAGTTTTTTAACTATCGTCTTCTTTTTTTACAGGACATAATAGATTTTTTCTTAAAGAACATGGTCCAAGAGAGTCTAGGAGAAATCTGCAACGCACATGTGGTTCATGCTGACCTCAGTGAATTTGGAGCTATGGATGAGAAGTGCCTTAAATTGGCAGAACTTGCTGCTCTAGCCGTTGATTTCCCCAAAACTGGAAAACTTGTCACCATGCCATTTGACCTCAAACCAAAAATGTATCCCGACTTCATGGGGAAAGAGCCGTTTCAATCATACGAGTCAAAGAAAATTTTGGGTAAATTATATAGGCAAGTGATAGATGTATATGATGCAGAGGGTGGAGAATCTTCTGGACTTGAGTATGTCCCTAAAGACATCCCATATGACACTAATCTTGAGATTCCGGGATACGAAGATTTCATAGATGATGCATGGAACCACAAATGTTCTTATGATGGTCAGTTGAATGGTCTTCTAGGACAATACAAAGTAAACGGGGAGGAAGAGGTGGTTACTGGACATATATGGTCCATGCCAAAGTACAGTGCTAAGAAGCAAGGGGAATTAAAAGAGAGGCTGAAACACGCATATAATATGTTGAGGAAGGAGTTCAGGAATGTTTTCGAGCAAATGGAGCCTGATTTTGATCTGCTTCCCATTGATGAGAAGAATGATATGTATGAAAGAAAGGCATTTGCGTGGTATCGGGTCACCTACCATCCTCATTGGGTGACTAGATCACTAGAGCTGCAATTGCCAGATGCTGTTTCAAATGGTGTTATGTTAAGTTTTGCTTGGATTGCAGCAGATTACATTGCTCGAATTAAAATTAGACAACGGGGAATGCAAAATTTTGACTCTACCAAGCCTATCGATTCTCTTGGAAGGTACCTTGTTAACAAGATATAACAGCCAAAACTGTCATGCGGTTAAATGCAAATCTATTGGCTTCTTATCAGCTATTTGGCTGTAAGGCCACTCTGCCATTATCAATACCTGGTTTGATGTCCTTCCGAACCTCCTTAATCCTACTATTGGATTGTTTCCTTGTGTGATCAGTTATTATATGAAATGTCGTCCAGGAGTTTGCCTGCTGATCGATGAAAATCTTCTCTTTTCATCATTGCTGTTTTCTGGTTTGTAGTATATGTCATATCCTCGCTACTAGTTTGTATCTGTTGTTGTTGCTGCTGTAGAGGATGTTATGGTTAC
AAGATGGGATCAGAGGGTTCTGAAAAGAATCTCGTAGTGACTCAAATTAGTGTTGGTGGGTTCAGCAATGATGTCAATGCGAAAATGCTTTCAGAATATCTGGAAGAACAAGTTGGACAAGTGTGGAGGTGTAGATTAAAGACTTCATCCACTCCTCCTGACTCTTACCCGACTTATGACATTGATGTAGAGAAAGTGCGAAGAATGAACAATTACATAAAAGTGGAACCTCATGCATTCGTTCATTTTGCATCTTCAGAGTCCGCACAGAATGCTCTTGCTGCTGCTAGGCGTGATGAACTCTTCTTAGAAGAGAAGCCTTTGAAGGTTAGTTTGGGTCCTGAGAATACCTTTAATATGAATGAGAGGAGAAGAACTTTCATGCCTTATAAGTTTTCGGACGTTGGTGTAGAAATTGGAGTACTGGTTAGTAATGATGACTTTGTGGTTGGTTGGAGGGGACCTCATTCTGGTGTTAACTTTCTTGTGGATCCATTCAATGGGAAATGCAAAATACTTTTCACAAGGGATACTGCTTTCTGTTTCAAGGGTGAAGGAAAGCATGCAGTTATAAAGTGCAATTTCAAGATTGAGTTTTTGCTGAGGGAAATCAATGAGATAAACGAATGCAAAGACTTTTCATCTTTGGTATTATTGTTGCAGCTGGCGTCATCTCCATTGGTTTTCTATAGAACTGCTGATGATGACATTGAAGAATCAGTTGCTTTTGACTTATTAGATGACGATGATCAGTGGATCCGAACCACAGATATTACATTTAGTGGAGCCATTGGTAGGTTTAATACCTACCGTGTTTCAATTCGACCTCGCAATGGTCCTAGCTTTAAGAAGGCCATGAACTATTTCAGAGAAAGTAGGGTGCCTGTGGTAGAACAGGGTGAGCAGATGCTCCGGGTGAGAAATGAGCCGGATTTTGGGGAGTCCGTCTCAGAACCTTTCTTCTGCTTTCAAAACCATGAAGGTATAAGCTTTAAGGTCTTGTTTCTGGTAAATGCGGTTTTGCACAAAGGCATAGTTAATCAGCATCAGATGACTGCTGAATTCTTTTCTTTGCTTAGAAAGCATCAGGAGGGAGTAAATTTAGCTGCACTGAAGCACATCTTTTCTTACAAAAGGCCTGTCAATGATGCTATTCGGAAGTTAGCAAGTGTACAGAAATGGCTATTTAATAATCCTAACCTTCTCGAGAGAACTGGACAGTTGGATGATGTTGTAGAGGTTAGAAGGTTGGTTATTACCCCAACCAAAGCATACTGTCTTCCGCCAACTGTGGAGCTATCCAATAGAGTCCTCAGGAAGTATAAGCATATTTCAGATCGATTTTTGCGAGTTACTTTTATGGATGAGGGCATGCGTAACCTGAACAGGAATGCTCTGACATACTATGCAGCTAATATTGTGAGAGAAATTACATCAAGTTCTAATCCCCAGAGAACTGGAATCTTCCAAAGGGTGAAAATTATTGTGAATAAAGGATTTTATCTGTGTGGTCGAAGGTATTCTTTTTTGGCTTTTTCAGCTAACCAGCTGAGGGATCGTTCTGCCTGGTTTTTTGCTGAAACCCCGGAAATTAGGGTGACCAGCATCATAAACTGGATGGGTAAGTTCGGTAACAGGAATGTTGCAAAATGTGCTGCTAGGATGGGACAGTGCTTTTCATCAACCTATGCAACAGTGGAAGTCCTTCCAAGCGAGGTTAACTCCGAGCTTCCAGATATAGAAAGAAATGGGTATGTTTTCTCTGATGGAATCGGCATGATGACAGCAGATCTATCTATAGAAGTTGCAGCGAAGTTGCAATTAAGTGTCAATCCTCCTTGTGCTTATCAGATAAGGTATGCTGGTTGTAAAGGTGTTGTTGCATGTTGGCCGGCGGAGAAAGATGGTATCCGCCTTTCTCTGAGACCAAGTATGAAGAAATTTGACTCAAATCACACTATCCTTGAAATCTGCTCTTGGACGAGATTACAGCCTGGTTTTCTGAACCGGCAAATAATAACCTTGCTCTCATCCTTGGAAGTTAAAGATGAAATGTTTTGGGAAATGCAGAAAGAAATGTTATCAAAGTTGGATAAGATACTTGTGGATTCGGACGTGGCTTTTGATGTGATTACAGCTTCATGTGCCGAGGCAGGAAATACAGCGGCTATAATGTTGAGTGCAGGGTTTAAACCTCAAAGTGAACCTCATTTGAGAGGGATGTTGGCTAGCATTAGAGCTGCTCAGCTTGGCGACCTCAGGAATAAGACAAGGATGTTTGTTACTTCAGGAAGGTGGTTGATGGGCTGTTTGGATGAATTAGGTGAACTTGAGCAAGGCCAATGCTTTATTCAAGTGTCAAGCCCTTCTTTGGAGACCTGTTTTGTTAAGCATGGTCCAGAGTTTTCTGAAATCAAGAAAAATCTTCAAGTAGTAAAGGGCCTTGTTGTAATTGCAAAGAACCCGTGTCTTCATCCCGGGGATGTGAGGATTCTGGAGGCTGTAGATGTTCCTGGTTTACACCATCTCTATGATTGTCTGGTCTTCCCTCAGAAAGGGGATAGGCCACATTCAAATGAAGCATCAGGGAGTGACCTTGATGGTGATCTCTACTTTGTGACTTGGGATGAAAATCTCATTCCACCCAGTAAGAAAAGCTGGATGCCAATGGCCTATGCACCTGCAGAAGCCAAACAGTTGGGTCGTCAAGTTCAACATACGGTAACTATCCAACTATGATGATATTTCTTGCAGCTTTGTTCACATCTTCCTATATTTGGTTAGCTTTTCCAGATCTGTATAAGTTTGTTTTACCGCGTAATGCTCATTTGGTTAGAATGCTGATGAGATTATTATAAGCCTTCTTGAAAAGCTAGCATTAATTGTTCTTTAGCTAATATTTACTATCATTGAACAACTGTATTGGGTTTTGTTGCATGTATTGCTCACTTTTCTTGTATAATGCATCCCAGTGGTATTCAACCATATTTAAGTTGTATGGTTTTTCCATACTGTAGTTGGTTGTAATAGAAGAGGGAGACTCTTTTTCTGTAGGCACACTCACTATGATAAAAAGAAAAATTTAAAGACACTCACCAATGATCTTGTGCTCTTCTTGCACTTGATTAGGAATTTCAGTCTTCTTTATGTCACTTATTATTTGTTGGATCATTTAACTGATTGCATAATATTCTTTTGTATTTATTTTTCTGATGTACTGTTCATTTGTTCAGTTTTTTAACTATCGTCTTCTTTTTTTACAGGACATAATAGATTTTTTCTTAAAGAACATGGTCCAAGAGAGTCTAGGAGAAATCTGCAACGCACATGTGGTTCATGCTGACCTCAGTGAATTTGGAGCTATGGATGAGAAGTGCCTTAAATTGGCAGAACTTGCTGCTCTAGCCGTTGATTTCCCCAAAACTGGAAAACTTGTCACCATGCCATTTGACCTCAAACCAAAAATGTATCCCGACTTCATGGGGAAAGAGCCGTTTCAATCATACGAGTCAAAGAAAATTTTGGGTAAATTATATAGGCAAGTGATAGATGTATATGATGCAGAGGGTGGAGAATCTTCTGGACTTGAGTATGTCCCTAAAGACATCCCATATGACACTAATCTTGAGATTCCGGGATACGAAGATTTCATAGATGATGCATGGAACCACAAATGTTCTTATGATGGTCAGTTGAATGGTCTTCTAGGACAATACAAAGTAAACGGGGAGGAAGAGGTGGTTACTGGACATATATGGTCCATGCCAAAGTACAGTGCTAAGAAGCAAGGGGAATTAAAAGAGAGGCTGAAACACGCATATAATATGTTGAGGAAGGAGTTCAGGAATGTTTTCGAGCAAATGGAGCCTGATTTTGATCTGCTTCCCATTGATGAGAAGAATGATATGTATGAAAGAAAGGCATTTGCGTGGTATCGGGTCACCTACCATCCTCATTGGGTGACTAGATCACTAGAGCTGCAATTGCCAGATGCTGTTTCAAATGGTGTTATGTTAAGTTTTGCTTGGATTGCAGCAGATTACATTGCTCGAATTAAAATTAGACAACGGGGAATGCAAAATTTTGACTCTACCAAGCCTATCGATTCTCTTGGAAGGTACCTTGTTAACAAGATATAACAGCCAAAACTGTCATGCGGTTAAATGCAAATCTATTGGCTTCTTATCAGCTATTTGGCTGTAAGGCCACTCTGCCATTATCAATACCTGGTTTGATGTCCTTCCGAACCTCCTTAATCCTACTATTGGATTGTTTCCTTGTGTGATCAGTTATTATATGAAATGTCGTCCAGGAGTTTGCCTGCTGATCGATGAAAATCTTCTCTTTTCATCATTGCTGTTTTCTGGTTTGTAGTATATGTCATATCCTCGCTACTAGTTTGTATCTGTTGTTGTTGCTGCTGTAGAGGATGTTATGGTTAC
Download sequence region |
Get flanking sequences on SL2.50ch04
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![]() ![]() | terms associated with this mRNA |
![]() ![]() | spliced cDNA sequence, including UTRs |
>Solyc04g014870.2.1 RNA-dependent RNA polymerase (AHRD V1 ***- B3TNC1_9SOLA); contains Interpro domain(s) IPR007855 RNA-dependent RNA polymerase, eukaryotic-type
AAGATGGGATCAGAGGGTTCTGAAAAGAATCTCGTAGTGACTCAAATTAGTGTTGGTGGGTTCAGCAATGATGTCAATGCGAAAATGCTTTCAGAATATCTGGAAGAACAAGTTGGACAAGTGTGGAGGTGTAGATTAAAGACTTCATCCACTCCTCCTGACTCTTACCCGACTTATGACATTGATGTAGAGAAAGTGCGAAGAATGAACAATTACATAAAAGTGGAACCTCATGCATTCGTTCATTTTGCATCTTCAGAGTCCGCACAGAATGCTCTTGCTGCTGCTAGGCGTGATGAACTCTTCTTAGAAGAGAAGCCTTTGAAGGTTAGTTTGGGTCCTGAGAATACCTTTAATATGAATGAGAGGAGAAGAACTTTCATGCCTTATAAGTTTTCGGACGTTGGTGTAGAAATTGGAGTACTGGTTAGTAATGATGACTTTGTGGTTGGTTGGAGGGGACCTCATTCTGGTGTTAACTTTCTTGTGGATCCATTCAATGGGAAATGCAAAATACTTTTCACAAGGGATACTGCTTTCTGTTTCAAGGGTGAAGGAAAGCATGCAGTTATAAAGTGCAATTTCAAGATTGAGTTTTTGCTGAGGGAAATCAATGAGATAAACGAATGCAAAGACTTTTCATCTTTGGTATTATTGTTGCAGCTGGCGTCATCTCCATTGGTTTTCTATAGAACTGCTGATGATGACATTGAAGAATCAGTTGCTTTTGACTTATTAGATGACGATGATCAGTGGATCCGAACCACAGATATTACATTTAGTGGAGCCATTGGTAGGTTTAATACCTACCGTGTTTCAATTCGACCTCGCAATGGTCCTAGCTTTAAGAAGGCCATGAACTATTTCAGAGAAAGTAGGGTGCCTGTGGTAGAACAGGGTGAGCAGATGCTCCGGGTGAGAAATGAGCCGGATTTTGGGGAGTCCGTCTCAGAACCTTTCTTCTGCTTTCAAAACCATGAAGGTATAAGCTTTAAGGTCTTGTTTCTGGTAAATGCGGTTTTGCACAAAGGCATAGTTAATCAGCATCAGATGACTGCTGAATTCTTTTCTTTGCTTAGAAAGCATCAGGAGGGAGTAAATTTAGCTGCACTGAAGCACATCTTTTCTTACAAAAGGCCTGTCAATGATGCTATTCGGAAGTTAGCAAGTGTACAGAAATGGCTATTTAATAATCCTAACCTTCTCGAGAGAACTGGACAGTTGGATGATGTTGTAGAGGTTAGAAGGTTGGTTATTACCCCAACCAAAGCATACTGTCTTCCGCCAACTGTGGAGCTATCCAATAGAGTCCTCAGGAAGTATAAGCATATTTCAGATCGATTTTTGCGAGTTACTTTTATGGATGAGGGCATGCGTAACCTGAACAGGAATGCTCTGACATACTATGCAGCTAATATTGTGAGAGAAATTACATCAAGTTCTAATCCCCAGAGAACTGGAATCTTCCAAAGGGTGAAAATTATTGTGAATAAAGGATTTTATCTGTGTGGTCGAAGGTATTCTTTTTTGGCTTTTTCAGCTAACCAGCTGAGGGATCGTTCTGCCTGGTTTTTTGCTGAAACCCCGGAAATTAGGGTGACCAGCATCATAAACTGGATGGGTAAGTTCGGTAACAGGAATGTTGCAAAATGTGCTGCTAGGATGGGACAGTGCTTTTCATCAACCTATGCAACAGTGGAAGTCCTTCCAAGCGAGGTTAACTCCGAGCTTCCAGATATAGAAAGAAATGGGTATGTTTTCTCTGATGGAATCGGCATGATGACAGCAGATCTATCTATAGAAGTTGCAGCGAAGTTGCAATTAAGTGTCAATCCTCCTTGTGCTTATCAGATAAGGTATGCTGGTTGTAAAGGTGTTGTTGCATGTTGGCCGGCGGAGAAAGATGGTATCCGCCTTTCTCTGAGACCAAGTATGAAGAAATTTGACTCAAATCACACTATCCTTGAAATCTGCTCTTGGACGAGATTACAGCCTGGTTTTCTGAACCGGCAAATAATAACCTTGCTCTCATCCTTGGAAGTTAAAGATGAAATGTTTTGGGAAATGCAGAAAGAAATGTTATCAAAGTTGGATAAGATACTTGTGGATTCGGACGTGGCTTTTGATGTGATTACAGCTTCATGTGCCGAGGCAGGAAATACAGCGGCTATAATGTTGAGTGCAGGGTTTAAACCTCAAAGTGAACCTCATTTGAGAGGGATGTTGGCTAGCATTAGAGCTGCTCAGCTTGGCGACCTCAGGAATAAGACAAGGATGTTTGTTACTTCAGGAAGGTGGTTGATGGGCTGTTTGGATGAATTAGGTGAACTTGAGCAAGGCCAATGCTTTATTCAAGTGTCAAGCCCTTCTTTGGAGACCTGTTTTGTTAAGCATGGTCCAGAGTTTTCTGAAATCAAGAAAAATCTTCAAGTAGTAAAGGGCCTTGTTGTAATTGCAAAGAACCCGTGTCTTCATCCCGGGGATGTGAGGATTCTGGAGGCTGTAGATGTTCCTGGTTTACACCATCTCTATGATTGTCTGGTCTTCCCTCAGAAAGGGGATAGGCCACATTCAAATGAAGCATCAGGGAGTGACCTTGATGGTGATCTCTACTTTGTGACTTGGGATGAAAATCTCATTCCACCCAGTAAGAAAAGCTGGATGCCAATGGCCTATGCACCTGCAGAAGCCAAACAGTTGGGTCGTCAAGTTCAACATACGGACATAATAGATTTTTTCTTAAAGAACATGGTCCAAGAGAGTCTAGGAGAAATCTGCAACGCACATGTGGTTCATGCTGACCTCAGTGAATTTGGAGCTATGGATGAGAAGTGCCTTAAATTGGCAGAACTTGCTGCTCTAGCCGTTGATTTCCCCAAAACTGGAAAACTTGTCACCATGCCATTTGACCTCAAACCAAAAATGTATCCCGACTTCATGGGGAAAGAGCCGTTTCAATCATACGAGTCAAAGAAAATTTTGGGTAAATTATATAGGCAAGTGATAGATGTATATGATGCAGAGGGTGGAGAATCTTCTGGACTTGAGTATGTCCCTAAAGACATCCCATATGACACTAATCTTGAGATTCCGGGATACGAAGATTTCATAGATGATGCATGGAACCACAAATGTTCTTATGATGGTCAGTTGAATGGTCTTCTAGGACAATACAAAGTAAACGGGGAGGAAGAGGTGGTTACTGGACATATATGGTCCATGCCAAAGTACAGTGCTAAGAAGCAAGGGGAATTAAAAGAGAGGCTGAAACACGCATATAATATGTTGAGGAAGGAGTTCAGGAATGTTTTCGAGCAAATGGAGCCTGATTTTGATCTGCTTCCCATTGATGAGAAGAATGATATGTATGAAAGAAAGGCATTTGCGTGGTATCGGGTCACCTACCATCCTCATTGGGTGACTAGATCACTAGAGCTGCAATTGCCAGATGCTGTTTCAAATGGTGTTATGTTAAGTTTTGCTTGGATTGCAGCAGATTACATTGCTCGAATTAAAATTAGACAACGGGGAATGCAAAATTTTGACTCTACCAAGCCTATCGATTCTCTTGGAAGGTACCTTGTTAACAAGATATAACAGCCAAAACTGTCATGCGGTTAAATGCAAATCTATTGGCTTCTTATCAGCTATTTGGCTGTAAGGCCACTCTGCCATTATCAATACCTGGTTTGATGTCCTTCCGAACCTCCTTAATCCTACTATTGGATTGTTTCCTTGTGTGATCAGTTATTATATGAAATGTCGTCCAGGAGTTTGCCTGCTGATCGATGAAAATCTTCTCTTTTCATCATTGCTGTTTTCTGGTTTGTAGTATATGTCATATCCTCGCTACTAGTTTGTATCTGTTGTTGTTGCTGCTGTAGAGGATGTTATGGTTAC
AAGATGGGATCAGAGGGTTCTGAAAAGAATCTCGTAGTGACTCAAATTAGTGTTGGTGGGTTCAGCAATGATGTCAATGCGAAAATGCTTTCAGAATATCTGGAAGAACAAGTTGGACAAGTGTGGAGGTGTAGATTAAAGACTTCATCCACTCCTCCTGACTCTTACCCGACTTATGACATTGATGTAGAGAAAGTGCGAAGAATGAACAATTACATAAAAGTGGAACCTCATGCATTCGTTCATTTTGCATCTTCAGAGTCCGCACAGAATGCTCTTGCTGCTGCTAGGCGTGATGAACTCTTCTTAGAAGAGAAGCCTTTGAAGGTTAGTTTGGGTCCTGAGAATACCTTTAATATGAATGAGAGGAGAAGAACTTTCATGCCTTATAAGTTTTCGGACGTTGGTGTAGAAATTGGAGTACTGGTTAGTAATGATGACTTTGTGGTTGGTTGGAGGGGACCTCATTCTGGTGTTAACTTTCTTGTGGATCCATTCAATGGGAAATGCAAAATACTTTTCACAAGGGATACTGCTTTCTGTTTCAAGGGTGAAGGAAAGCATGCAGTTATAAAGTGCAATTTCAAGATTGAGTTTTTGCTGAGGGAAATCAATGAGATAAACGAATGCAAAGACTTTTCATCTTTGGTATTATTGTTGCAGCTGGCGTCATCTCCATTGGTTTTCTATAGAACTGCTGATGATGACATTGAAGAATCAGTTGCTTTTGACTTATTAGATGACGATGATCAGTGGATCCGAACCACAGATATTACATTTAGTGGAGCCATTGGTAGGTTTAATACCTACCGTGTTTCAATTCGACCTCGCAATGGTCCTAGCTTTAAGAAGGCCATGAACTATTTCAGAGAAAGTAGGGTGCCTGTGGTAGAACAGGGTGAGCAGATGCTCCGGGTGAGAAATGAGCCGGATTTTGGGGAGTCCGTCTCAGAACCTTTCTTCTGCTTTCAAAACCATGAAGGTATAAGCTTTAAGGTCTTGTTTCTGGTAAATGCGGTTTTGCACAAAGGCATAGTTAATCAGCATCAGATGACTGCTGAATTCTTTTCTTTGCTTAGAAAGCATCAGGAGGGAGTAAATTTAGCTGCACTGAAGCACATCTTTTCTTACAAAAGGCCTGTCAATGATGCTATTCGGAAGTTAGCAAGTGTACAGAAATGGCTATTTAATAATCCTAACCTTCTCGAGAGAACTGGACAGTTGGATGATGTTGTAGAGGTTAGAAGGTTGGTTATTACCCCAACCAAAGCATACTGTCTTCCGCCAACTGTGGAGCTATCCAATAGAGTCCTCAGGAAGTATAAGCATATTTCAGATCGATTTTTGCGAGTTACTTTTATGGATGAGGGCATGCGTAACCTGAACAGGAATGCTCTGACATACTATGCAGCTAATATTGTGAGAGAAATTACATCAAGTTCTAATCCCCAGAGAACTGGAATCTTCCAAAGGGTGAAAATTATTGTGAATAAAGGATTTTATCTGTGTGGTCGAAGGTATTCTTTTTTGGCTTTTTCAGCTAACCAGCTGAGGGATCGTTCTGCCTGGTTTTTTGCTGAAACCCCGGAAATTAGGGTGACCAGCATCATAAACTGGATGGGTAAGTTCGGTAACAGGAATGTTGCAAAATGTGCTGCTAGGATGGGACAGTGCTTTTCATCAACCTATGCAACAGTGGAAGTCCTTCCAAGCGAGGTTAACTCCGAGCTTCCAGATATAGAAAGAAATGGGTATGTTTTCTCTGATGGAATCGGCATGATGACAGCAGATCTATCTATAGAAGTTGCAGCGAAGTTGCAATTAAGTGTCAATCCTCCTTGTGCTTATCAGATAAGGTATGCTGGTTGTAAAGGTGTTGTTGCATGTTGGCCGGCGGAGAAAGATGGTATCCGCCTTTCTCTGAGACCAAGTATGAAGAAATTTGACTCAAATCACACTATCCTTGAAATCTGCTCTTGGACGAGATTACAGCCTGGTTTTCTGAACCGGCAAATAATAACCTTGCTCTCATCCTTGGAAGTTAAAGATGAAATGTTTTGGGAAATGCAGAAAGAAATGTTATCAAAGTTGGATAAGATACTTGTGGATTCGGACGTGGCTTTTGATGTGATTACAGCTTCATGTGCCGAGGCAGGAAATACAGCGGCTATAATGTTGAGTGCAGGGTTTAAACCTCAAAGTGAACCTCATTTGAGAGGGATGTTGGCTAGCATTAGAGCTGCTCAGCTTGGCGACCTCAGGAATAAGACAAGGATGTTTGTTACTTCAGGAAGGTGGTTGATGGGCTGTTTGGATGAATTAGGTGAACTTGAGCAAGGCCAATGCTTTATTCAAGTGTCAAGCCCTTCTTTGGAGACCTGTTTTGTTAAGCATGGTCCAGAGTTTTCTGAAATCAAGAAAAATCTTCAAGTAGTAAAGGGCCTTGTTGTAATTGCAAAGAACCCGTGTCTTCATCCCGGGGATGTGAGGATTCTGGAGGCTGTAGATGTTCCTGGTTTACACCATCTCTATGATTGTCTGGTCTTCCCTCAGAAAGGGGATAGGCCACATTCAAATGAAGCATCAGGGAGTGACCTTGATGGTGATCTCTACTTTGTGACTTGGGATGAAAATCTCATTCCACCCAGTAAGAAAAGCTGGATGCCAATGGCCTATGCACCTGCAGAAGCCAAACAGTTGGGTCGTCAAGTTCAACATACGGACATAATAGATTTTTTCTTAAAGAACATGGTCCAAGAGAGTCTAGGAGAAATCTGCAACGCACATGTGGTTCATGCTGACCTCAGTGAATTTGGAGCTATGGATGAGAAGTGCCTTAAATTGGCAGAACTTGCTGCTCTAGCCGTTGATTTCCCCAAAACTGGAAAACTTGTCACCATGCCATTTGACCTCAAACCAAAAATGTATCCCGACTTCATGGGGAAAGAGCCGTTTCAATCATACGAGTCAAAGAAAATTTTGGGTAAATTATATAGGCAAGTGATAGATGTATATGATGCAGAGGGTGGAGAATCTTCTGGACTTGAGTATGTCCCTAAAGACATCCCATATGACACTAATCTTGAGATTCCGGGATACGAAGATTTCATAGATGATGCATGGAACCACAAATGTTCTTATGATGGTCAGTTGAATGGTCTTCTAGGACAATACAAAGTAAACGGGGAGGAAGAGGTGGTTACTGGACATATATGGTCCATGCCAAAGTACAGTGCTAAGAAGCAAGGGGAATTAAAAGAGAGGCTGAAACACGCATATAATATGTTGAGGAAGGAGTTCAGGAATGTTTTCGAGCAAATGGAGCCTGATTTTGATCTGCTTCCCATTGATGAGAAGAATGATATGTATGAAAGAAAGGCATTTGCGTGGTATCGGGTCACCTACCATCCTCATTGGGTGACTAGATCACTAGAGCTGCAATTGCCAGATGCTGTTTCAAATGGTGTTATGTTAAGTTTTGCTTGGATTGCAGCAGATTACATTGCTCGAATTAAAATTAGACAACGGGGAATGCAAAATTTTGACTCTACCAAGCCTATCGATTCTCTTGGAAGGTACCTTGTTAACAAGATATAACAGCCAAAACTGTCATGCGGTTAAATGCAAATCTATTGGCTTCTTATCAGCTATTTGGCTGTAAGGCCACTCTGCCATTATCAATACCTGGTTTGATGTCCTTCCGAACCTCCTTAATCCTACTATTGGATTGTTTCCTTGTGTGATCAGTTATTATATGAAATGTCGTCCAGGAGTTTGCCTGCTGATCGATGAAAATCTTCTCTTTTCATCATTGCTGTTTTCTGGTTTGTAGTATATGTCATATCCTCGCTACTAGTTTGTATCTGTTGTTGTTGCTGCTGTAGAGGATGTTATGGTTAC
![]() ![]() | translated polypeptide sequence |
>Solyc04g014870.2.1 RNA-dependent RNA polymerase (AHRD V1 ***- B3TNC1_9SOLA); contains Interpro domain(s) IPR007855 RNA-dependent RNA polymerase, eukaryotic-type
MGSEGSEKNLVVTQISVGGFSNDVNAKMLSEYLEEQVGQVWRCRLKTSSTPPDSYPTYDIDVEKVRRMNNYIKVEPHAFVHFASSESAQNALAAARRDELFLEEKPLKVSLGPENTFNMNERRRTFMPYKFSDVGVEIGVLVSNDDFVVGWRGPHSGVNFLVDPFNGKCKILFTRDTAFCFKGEGKHAVIKCNFKIEFLLREINEINECKDFSSLVLLLQLASSPLVFYRTADDDIEESVAFDLLDDDDQWIRTTDITFSGAIGRFNTYRVSIRPRNGPSFKKAMNYFRESRVPVVEQGEQMLRVRNEPDFGESVSEPFFCFQNHEGISFKVLFLVNAVLHKGIVNQHQMTAEFFSLLRKHQEGVNLAALKHIFSYKRPVNDAIRKLASVQKWLFNNPNLLERTGQLDDVVEVRRLVITPTKAYCLPPTVELSNRVLRKYKHISDRFLRVTFMDEGMRNLNRNALTYYAANIVREITSSSNPQRTGIFQRVKIIVNKGFYLCGRRYSFLAFSANQLRDRSAWFFAETPEIRVTSIINWMGKFGNRNVAKCAARMGQCFSSTYATVEVLPSEVNSELPDIERNGYVFSDGIGMMTADLSIEVAAKLQLSVNPPCAYQIRYAGCKGVVACWPAEKDGIRLSLRPSMKKFDSNHTILEICSWTRLQPGFLNRQIITLLSSLEVKDEMFWEMQKEMLSKLDKILVDSDVAFDVITASCAEAGNTAAIMLSAGFKPQSEPHLRGMLASIRAAQLGDLRNKTRMFVTSGRWLMGCLDELGELEQGQCFIQVSSPSLETCFVKHGPEFSEIKKNLQVVKGLVVIAKNPCLHPGDVRILEAVDVPGLHHLYDCLVFPQKGDRPHSNEASGSDLDGDLYFVTWDENLIPPSKKSWMPMAYAPAEAKQLGRQVQHTDIIDFFLKNMVQESLGEICNAHVVHADLSEFGAMDEKCLKLAELAALAVDFPKTGKLVTMPFDLKPKMYPDFMGKEPFQSYESKKILGKLYRQVIDVYDAEGGESSGLEYVPKDIPYDTNLEIPGYEDFIDDAWNHKCSYDGQLNGLLGQYKVNGEEEVVTGHIWSMPKYSAKKQGELKERLKHAYNMLRKEFRNVFEQMEPDFDLLPIDEKNDMYERKAFAWYRVTYHPHWVTRSLELQLPDAVSNGVMLSFAWIAADYIARIKIRQRGMQNFDSTKPIDSLGRYLVNKI*
MGSEGSEKNLVVTQISVGGFSNDVNAKMLSEYLEEQVGQVWRCRLKTSSTPPDSYPTYDIDVEKVRRMNNYIKVEPHAFVHFASSESAQNALAAARRDELFLEEKPLKVSLGPENTFNMNERRRTFMPYKFSDVGVEIGVLVSNDDFVVGWRGPHSGVNFLVDPFNGKCKILFTRDTAFCFKGEGKHAVIKCNFKIEFLLREINEINECKDFSSLVLLLQLASSPLVFYRTADDDIEESVAFDLLDDDDQWIRTTDITFSGAIGRFNTYRVSIRPRNGPSFKKAMNYFRESRVPVVEQGEQMLRVRNEPDFGESVSEPFFCFQNHEGISFKVLFLVNAVLHKGIVNQHQMTAEFFSLLRKHQEGVNLAALKHIFSYKRPVNDAIRKLASVQKWLFNNPNLLERTGQLDDVVEVRRLVITPTKAYCLPPTVELSNRVLRKYKHISDRFLRVTFMDEGMRNLNRNALTYYAANIVREITSSSNPQRTGIFQRVKIIVNKGFYLCGRRYSFLAFSANQLRDRSAWFFAETPEIRVTSIINWMGKFGNRNVAKCAARMGQCFSSTYATVEVLPSEVNSELPDIERNGYVFSDGIGMMTADLSIEVAAKLQLSVNPPCAYQIRYAGCKGVVACWPAEKDGIRLSLRPSMKKFDSNHTILEICSWTRLQPGFLNRQIITLLSSLEVKDEMFWEMQKEMLSKLDKILVDSDVAFDVITASCAEAGNTAAIMLSAGFKPQSEPHLRGMLASIRAAQLGDLRNKTRMFVTSGRWLMGCLDELGELEQGQCFIQVSSPSLETCFVKHGPEFSEIKKNLQVVKGLVVIAKNPCLHPGDVRILEAVDVPGLHHLYDCLVFPQKGDRPHSNEASGSDLDGDLYFVTWDENLIPPSKKSWMPMAYAPAEAKQLGRQVQHTDIIDFFLKNMVQESLGEICNAHVVHADLSEFGAMDEKCLKLAELAALAVDFPKTGKLVTMPFDLKPKMYPDFMGKEPFQSYESKKILGKLYRQVIDVYDAEGGESSGLEYVPKDIPYDTNLEIPGYEDFIDDAWNHKCSYDGQLNGLLGQYKVNGEEEVVTGHIWSMPKYSAKKQGELKERLKHAYNMLRKEFRNVFEQMEPDFDLLPIDEKNDMYERKAFAWYRVTYHPHWVTRSLELQLPDAVSNGVMLSFAWIAADYIARIKIRQRGMQNFDSTKPIDSLGRYLVNKI*
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![]() ![]() | [Associate new unigene] |
Unigene ID:
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GenBank accessions | None | [Associate new genbank sequence] |
Other genome matches | None |
![]() ![]() | [Associate publication] [Matching publications] |
Reduced leaf complexity in tomato wiry mutants suggests a role for PHAN and KNOX genes in generating compound leaves.
Development (Cambridge, England) (2003)
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Recent work on species with simple leaves suggests that the juxtaposition of abaxial (lower) and adaxial (upper) cell fates (dorsiventrality) in leaf primordia is necessary for lamina outgrowth. However, how leaf dorsiventral symmetry affects leaflet formation in species with compound leaves is largely unknown. In four non-allelic dorsiventrality-defective mutants in tomato, wiry, wiry3, wiry4 and wiry6, partial or complete loss of ab-adaxiality was observed in leaves as well as in lateral organs in the flower, and the number of leaflets in leaves was reduced significantly. Morphological analyses and expression patterns of molecular markers for ab-adaxiality [LePHANTASTICA (LePHAN) and LeYABBY B (LeYAB B)] indicated that ab-adaxial cell fates were altered in mutant leaves. Reduction in expression of both LeT6 (a tomato KNOX gene) and LePHAN during post-primordial leaf development was correlated with a reduction in leaflet formation in the wiry mutants. LePHAN expression in LeT6 overexpression mutants suggests that LeT6 is a negative regulator of LePHAN. KNOX expression is known to be correlated with leaflet formation and we show that LeT6 requires LePHAN activity to form leaflets. These phenotypes and gene expression patterns suggest that the abaxial and adaxial domains of leaf primordia are important for leaflet primordia formation, and thus also important for compound leaf development. Furthermore, the regulatory relationship between LePHAN and KNOX genes is different from that proposed for simple-leafed species. We propose that this change in the regulatory relationship between KNOX genes and LePHAN plays a role in compound leaf development and is an important feature that distinguishes simple leaves from compound leaves.
Kim, M. Pham, T. Hamidi, A. McCormick, S. Kuzoff, RK. Sinha, N.
Development (Cambridge, England).
2003.
130(18).
4405-15.
Genome-wide identification of Dicer-like, Argonaute and RNA-dependent RNA polymerase gene families and their expression analyses in response to viral infection and abiotic stresses in Solanum lycopersicum.
Gene (2012)
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Dicer, Argonaute and RNA-dependent RNA polymerase form the core components to trigger RNA silencing. Although tomato (Solanum lycopersicum) is a dicotyledon model plant, no systematic analysis and expression profiling of these genes in tomato has been undertaken previously. In this study, seven Dicer-like (SlDCLs), 15 Argonaute (SlAGOs) and six RNA-dependent RNA polymerase (SlRDRs) genes were identified in tomato. These genes were categorized into four subgroups based on phylogenetic analyses. Comprehensive analyses of gene structure, genomic localization and similarity among these genes were performed. Their expression patterns were investigated by means of expression models in different tissues and organs using online data and semi-quantitative RT-PCR. Many of the candidate genes were up-regulated in response to Tomato yellow leaf curl virus infection and abiotic stresses. The expression models of tandem gene duplications among SlDCL2s indicated the DCL2 family plays an important role in the evolution of tomato.
Bai, M. Yang, GS. Chen, WT. Mao, ZC. Kang, HX. Chen, GH. Yang, YH. Xie, BY.
Gene.
2012.
().
.
Failure of the Tomato Trans-Acting Short Interfering RNA Program to Regulate AUXIN RESPONSE FACTOR3 and ARF4 Underlies the Wiry Leaf Syndrome.
The Plant cell (2012)
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Interfering with small RNA production is a common strategy of plant viruses. A unique class of small RNAs that require microRNA and short interfering (siRNA) biogenesis for their production is termed trans-acting short interfering RNAs (ta-siRNAs). Tomato (Solanum lycopersicum) wiry mutants represent a class of phenotype that mimics viral infection symptoms, including shoestring leaves that lack leaf blade expansion. Here, we show that four WIRY genes are involved in siRNA biogenesis, and in their corresponding mutants, levels of ta-siRNAs that regulate AUXIN RESPONSE FACTOR3 (ARF3) and ARF4 are reduced, while levels of their target ARFs are elevated. Reducing activity of both ARF3 and ARF4 can rescue the wiry leaf lamina, and increased activity of either can phenocopy wiry leaves. Thus, a failure to negatively regulate these ARFs underlies tomato shoestring leaves. Overexpression of these ARFs in Arabidopsis thaliana, tobacco (Nicotiana tabacum), and potato (Solanum tuberosum) failed to produce wiry leaves, suggesting that the dramatic response in tomato is exceptional. As negative regulation of orthologs of these ARFs by ta-siRNA is common to land plants, we propose that ta-siRNA levels serve as universal sensors for interference with small RNA biogenesis, and changes in their levels direct species-specific responses.
Yifhar, T. Pekker, I. Peled, D. Friedlander, G. Pistunov, A. Sabban, M. Wachsman, G. Alvarez, JP. Amsellem, Z. Eshed, Y.
The Plant cell.
2012.
24(9).
3575-89.
Why Wiry? Tomato Mutants Reveal Connections among Small RNAs, Auxin Response Factors, Virus Infection, and Leaf Morphology.
The Plant cell (2012)
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Mach, J.
The Plant cell.
2012.
24(9).
3486.
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