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Tomato locus jointless
Locus details | Download GMOD XML | Note to Editors | Annotation guidelines |
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Registry name: | None | [Associate registry name] |
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![]() ![]() | unprocessed genomic sequence region underlying this gene |
>Solyc11g010570.1 SL2.50ch11:3640857..3645766
ATGGCTAGAGAAAAAATTCAGATCAAGAAAATAGATAACTCCACAGCAAGACAAGTTACATTTTCAAAGAGGAGAAGAGGTTTATTCAAGAAAGCTGAAGAACTTTCTGTTCTCTGTGATGCTGATGTTGCTCTCATCATTTTCTCTTCTACTGGAAAATTATTTGACTATTCTAGCTCAAGGTACATATCCATCATTTTTTCTTTCATTTACCTAATTATAACGACAGCAACATACTCAGTGAAATTCCGGGACCCGAAAAGAATAGTAGGTGTATGTAAAATCACCTAATTATCCTTATTTTTTGTTTGTGGTAGCTAGATTAGTTGTTTTCTAGACTAAAAAAAAGAAATTGGGAATAATTTTTGATTAGTTATTAAATAATAACGTATTTAGTAAAATTTTAGAAATGAATTTTGAGTAAAGTGATGTGTATGTGTATTTTATCTATAGGGTAGAGAGGTTTTTTCCGATGAATTTTAGGGCTAATTTAACAAGTGAAAATTAAAGTAATGATTTTTGTTAATTTTTTGTGAGGAATGAAGTTTTTTTTTTTTTTTTGGGTATTTTCTAAATGGGTGACTTTAGTTAGTCATGATTGAGGAGAATGATTAGAATTATTGAGTTTTGGATTTTTGTAAATATAGTTTATTAATTAATTATTATATTAAATGGATTTTTAGGTATAAATTTAGGGTTTGATTTTAAGTTATTGAGTTTTGTTGAATTCTTAGGAAAAGTTCTTCGCTGTTGTTTACAAATGGGTGTCTTTAAGCTAGTCATGATTGACAAGAATTATATCGAGTTATTTAAATTCTGAAAGAAGATTTTGATAAATTGTTTATATATGTAAAAAGTGAGATTTTATAATATAAATTTAAAAATTTGATCAAAAGCTATTAGATTTCATCGTGCCCGCATACAAATCTCTTCTCTATTATTTAACAAGTTATGTGCACTGATAATATTACTAATATACTTTAATTTGTTATAATACCAATTAAGTTACATAGTTTAATTTGTGTAGAAGTTAAGTTACTACTTTTGTCAAGTAATTTACTTATTAATTACTACATGGTTTTCACATAACATAAACACTTGCTATATTTAGCAACTATTGAGAAACCCACCTCAAGAAACTTTCTATTTTGTGTCATTTATTGACTCTTTTTTTTAGGTAAATAATTAATGAAAAAAACTTGAATTTTGTATTAGAAAACAAAGCTTCTAAAGACTCAATTTTTATTTAAAAAGGAATCAGAAAAAATGGAGAATAAACAATAATACCAACACAAAATGAGTGGTGTAGGAAGTAGTTAGTAGTTACCAGGTTATAAGAATTTTATGTTGTTTAAATTCTTCAAAAATATTATTACATTATATTAGATCATTTTATAACATGTAGTAATTTTTGATGATTTGATGTGTCAATGTAAATTTTATTCTTTTGGATTGAAAATATATATTTTCGCACACAATGACATTATTAAAGGATTCACAGAATATATATGTCAATTTCATTTATGAAATTCAAAAATTTTGTTACATTATTAATTAAATTGACTTGTAATAACAAATAATATTTTAAAGCTTAGATAGAACAATAAAAAAATAAAAGGGAATAAATTTAGCTGGATAATGTTATCGAAAGGGCCACCATATCTTATCTGTTTCACAGAAAGGCAATAATATTATATCTTATAATATAAAAATAAATATTATCATGGGAACTATATATTTATGGTGAATAGGACAAACTCCTTTTAATGGGGAAAAAAAGAAGCATATTTTAGGAATTTTATGTTTTTTTTTTGTATGGTATAAGTAAAAAGTAACAAATTTGATGAGCTATTTTTTTGAGGTGGTTGTGTGTGGTATATAAAATAATTGTTTTCCCCCTCTACAAGTAAATGTTTTAAGAAAGCTATAATGAACTCTCTTCATTCGGTATTGTTTGTCATAATTTTTATTTTTAGAGTTAAATTATGAAAATTTTGACTTACATTTTAAGATGTATTTTTTAATCATATTAATATGTAAAAAATTGTAATTTATAGTATTTTCCATATAATTTTAGGATATCTAATTTTTTTGTTTAAAATATCGAATTAATCTGATCTAATTTACCTTTGAAAATTAATCAAGTGACTTTAGATAAGTGCATCATGATAAACAATTCCGGACGAAGGGTGTATAATTAATCTACATTTTAATAATTTGATTTTTTTTTTATAATTCACTTATTTATCATCCTCGATATTTAAGCTTATTGAGTGTGTCATATATCAAAGATTAATAGATCGTCTTTTTATAGTCTTGAATAATCTTATACTTCATAGGTTTATTACTTTTGAAGTTGAGTCAGACTTATCCTTAGCTATTAGTATTATGTCGTTAAGTTGATAGGCCTGCTCGAATGGGGAAGAGGTGTTATCTATCCCACATTAGTTGACGGATGAGTTGTTTATGTCGGTGTTAAGCAATATTTTTCATTTGAGATTGAGTTAGATCTAAAGTCAATTTTCTCGACAGAAATTACAAATTTGTCTTTTACTTTCTTTGATGTTGTGTTCATGTGTCCCTAATATATTGGATACATGACACATACATACATTCTTCAAAGGAATTTAATATTTATGTATGTATCGACATCATAATTGATCACATAAAAGATAACTATATATAATTCTACCGTTCATCAATGATTTACGTACGATCTTAATATTTTTAATTTCTCATGAAGCATGAAACAAATTCTTGAGAGGCGTGATTTGCATTCCAAAAATCTGGAAAAATTGGATCAACCATCACTTGAACTTCAGGTAATTAATTCATTTATTTAATCCTTAATTACATTTTAATTAGTTTTTAAACAAATATTTTGTTTATTTTGTTTGCAGCTTGTAGAAAATAGCAACTACTCCAGATTAAGCAAGGAAATTTCCGAAAAAAGTCATCGATTAAGGTATATTTATAGTTACATTTGAAATCGACTATATGTATTCTCACTGTTCTTTTTAGTTCAATTCATAATATCCATCATCACATACGTCAAACAAAAGTAAAAGAGAGACAAGTTAATTTATATATATATATATATATATATAAAAAATTACGATAATAATAATAATATTAGAAGTTCTCTAACAAGTAGCATCGATTAACAGGCAAATGAGGGGAGAAGAACTTCAAGGACTAAATATTGAAGAGTTGCAACAATTGGAGAGATCTCTTGAAACTGGATTGAGCCGCGTCATAGAGAGAAAGGTCGGGATTTAACTTATATATATTGACATTATAAAATATATTTTATGTTATTAGTGTAATTTAATATGTCGTAACAAGTTATAATCGATTTTTCCCCTTTTTAATATCTTACACAACTTACGTTATCCATGTATCAGGGTGATAAAATAATGAGAGAGATCAACCAACTCCAACAAAAGGTTAGGAACAATATCGTTTAAGTGATCTGGTAGTGTATAATTTTTGTATCGCAATTTTACTTGGTTTTCATCGACGCTGATAATTGTTATTGTGAAAAATCAACAGGGTATGCATCTAATGGAAGAAAATGAAAAATTAAGGCAACAGGTATGCAAATTTTTTAACGAATGAGATAAAAATTGATTATTTTACTATAATTTTAGATAGCCGGTGATTACTGAAATCTCCGAGACATCAGGTTGAAATTTCAATAAAATCTATGAATTTGTAGATGATTTTTTCCTATTTCCGAAATCTCCGAAAAACTTAAGCTTTTTAAAATTAACTTTTTTATGGATACACTTGGAGTATCTAAATTATTCAAGACTTCAATAATTATGTTATTAAATGTTATCGTTGATATATATTTTTAATTTTTTTTAGGTGATGGAGATATCTAATAATAATAATAATAATAATAATGGATATAGAGAGGCAGGAGTAGTAATATTTGAACCAGAAAATGGATTTAATAATAATAATAATGAAGATGGCCAATCATCTGAATCAGTAACAAATCCATGTAACTCAATTGATCCTCCTCCTCAAGATGATGATAGTTCTGATACTTCTCTCAAATTGGGGTTAGTACTTTAATTCTTTCTTCTTCTTTTTTCCGGTCTCGTTTCGATCTCGTTTCGTATGAAAGATAAAAGAAATTATTAATTTCAATTTTAATTTTGTGAAGAAATAATCTATTTTGAATTGTTGTGTTGTTTGTTTTTAATACTGAAGGCGGAATAATGATTTTTAGAGAACTTATCCTAGAATTATTTTGAGATAACTTATTTTCCGTTCAAACGAATTGTGGTCGTGAAAAAATATTCGTTTATCAATACACTATTGGTAAATTGTATATCAAGTATCTACCTTCTGAAGGTGTTGCATACATATTACCCTTTTTAAACTTTACTTCGGTATCATGTTATTGTATATTGTTTATGTAAAGGGACAACAAAAGTTAGGGGCTAATCGAGTTCAGTAATTTTGACTCAAATATGATATTTGTGGGTTAAATTTTTTTATGAATATTTTATTATCGAAAGTAGAAGTCTTTGTACGGATTTGAATGAACCAAATATCTTTAGTTCATATCTTTGTATTGGTATTTAGAATACTCATAAATATGTACATTTTTTTTTTAATTCAAAACCTCGTTACTAACCCTTGATGTTGTTATCTTAAAATTTAGAACGTATACGTAATATTTAAATTTCAACTCTGTTCTATAGGTTCACCTTCATGTTCTAAATTTATAACCCATAATACATAAATTTAAAATTCTGAGTCCGTTTCTGATATTATATTTTTTTTCATCTTATTTGTTTTTTAAATGTCAGGCTACCTTACTCAGGCTGAAGAGATCAAAAGCAAGGTGTGGCTATTTTTGTATGTTATTAGAAGAAGGAGAAAAAAAAAAGTAA
ATGGCTAGAGAAAAAATTCAGATCAAGAAAATAGATAACTCCACAGCAAGACAAGTTACATTTTCAAAGAGGAGAAGAGGTTTATTCAAGAAAGCTGAAGAACTTTCTGTTCTCTGTGATGCTGATGTTGCTCTCATCATTTTCTCTTCTACTGGAAAATTATTTGACTATTCTAGCTCAAGGTACATATCCATCATTTTTTCTTTCATTTACCTAATTATAACGACAGCAACATACTCAGTGAAATTCCGGGACCCGAAAAGAATAGTAGGTGTATGTAAAATCACCTAATTATCCTTATTTTTTGTTTGTGGTAGCTAGATTAGTTGTTTTCTAGACTAAAAAAAAGAAATTGGGAATAATTTTTGATTAGTTATTAAATAATAACGTATTTAGTAAAATTTTAGAAATGAATTTTGAGTAAAGTGATGTGTATGTGTATTTTATCTATAGGGTAGAGAGGTTTTTTCCGATGAATTTTAGGGCTAATTTAACAAGTGAAAATTAAAGTAATGATTTTTGTTAATTTTTTGTGAGGAATGAAGTTTTTTTTTTTTTTTTGGGTATTTTCTAAATGGGTGACTTTAGTTAGTCATGATTGAGGAGAATGATTAGAATTATTGAGTTTTGGATTTTTGTAAATATAGTTTATTAATTAATTATTATATTAAATGGATTTTTAGGTATAAATTTAGGGTTTGATTTTAAGTTATTGAGTTTTGTTGAATTCTTAGGAAAAGTTCTTCGCTGTTGTTTACAAATGGGTGTCTTTAAGCTAGTCATGATTGACAAGAATTATATCGAGTTATTTAAATTCTGAAAGAAGATTTTGATAAATTGTTTATATATGTAAAAAGTGAGATTTTATAATATAAATTTAAAAATTTGATCAAAAGCTATTAGATTTCATCGTGCCCGCATACAAATCTCTTCTCTATTATTTAACAAGTTATGTGCACTGATAATATTACTAATATACTTTAATTTGTTATAATACCAATTAAGTTACATAGTTTAATTTGTGTAGAAGTTAAGTTACTACTTTTGTCAAGTAATTTACTTATTAATTACTACATGGTTTTCACATAACATAAACACTTGCTATATTTAGCAACTATTGAGAAACCCACCTCAAGAAACTTTCTATTTTGTGTCATTTATTGACTCTTTTTTTTAGGTAAATAATTAATGAAAAAAACTTGAATTTTGTATTAGAAAACAAAGCTTCTAAAGACTCAATTTTTATTTAAAAAGGAATCAGAAAAAATGGAGAATAAACAATAATACCAACACAAAATGAGTGGTGTAGGAAGTAGTTAGTAGTTACCAGGTTATAAGAATTTTATGTTGTTTAAATTCTTCAAAAATATTATTACATTATATTAGATCATTTTATAACATGTAGTAATTTTTGATGATTTGATGTGTCAATGTAAATTTTATTCTTTTGGATTGAAAATATATATTTTCGCACACAATGACATTATTAAAGGATTCACAGAATATATATGTCAATTTCATTTATGAAATTCAAAAATTTTGTTACATTATTAATTAAATTGACTTGTAATAACAAATAATATTTTAAAGCTTAGATAGAACAATAAAAAAATAAAAGGGAATAAATTTAGCTGGATAATGTTATCGAAAGGGCCACCATATCTTATCTGTTTCACAGAAAGGCAATAATATTATATCTTATAATATAAAAATAAATATTATCATGGGAACTATATATTTATGGTGAATAGGACAAACTCCTTTTAATGGGGAAAAAAAGAAGCATATTTTAGGAATTTTATGTTTTTTTTTTGTATGGTATAAGTAAAAAGTAACAAATTTGATGAGCTATTTTTTTGAGGTGGTTGTGTGTGGTATATAAAATAATTGTTTTCCCCCTCTACAAGTAAATGTTTTAAGAAAGCTATAATGAACTCTCTTCATTCGGTATTGTTTGTCATAATTTTTATTTTTAGAGTTAAATTATGAAAATTTTGACTTACATTTTAAGATGTATTTTTTAATCATATTAATATGTAAAAAATTGTAATTTATAGTATTTTCCATATAATTTTAGGATATCTAATTTTTTTGTTTAAAATATCGAATTAATCTGATCTAATTTACCTTTGAAAATTAATCAAGTGACTTTAGATAAGTGCATCATGATAAACAATTCCGGACGAAGGGTGTATAATTAATCTACATTTTAATAATTTGATTTTTTTTTTATAATTCACTTATTTATCATCCTCGATATTTAAGCTTATTGAGTGTGTCATATATCAAAGATTAATAGATCGTCTTTTTATAGTCTTGAATAATCTTATACTTCATAGGTTTATTACTTTTGAAGTTGAGTCAGACTTATCCTTAGCTATTAGTATTATGTCGTTAAGTTGATAGGCCTGCTCGAATGGGGAAGAGGTGTTATCTATCCCACATTAGTTGACGGATGAGTTGTTTATGTCGGTGTTAAGCAATATTTTTCATTTGAGATTGAGTTAGATCTAAAGTCAATTTTCTCGACAGAAATTACAAATTTGTCTTTTACTTTCTTTGATGTTGTGTTCATGTGTCCCTAATATATTGGATACATGACACATACATACATTCTTCAAAGGAATTTAATATTTATGTATGTATCGACATCATAATTGATCACATAAAAGATAACTATATATAATTCTACCGTTCATCAATGATTTACGTACGATCTTAATATTTTTAATTTCTCATGAAGCATGAAACAAATTCTTGAGAGGCGTGATTTGCATTCCAAAAATCTGGAAAAATTGGATCAACCATCACTTGAACTTCAGGTAATTAATTCATTTATTTAATCCTTAATTACATTTTAATTAGTTTTTAAACAAATATTTTGTTTATTTTGTTTGCAGCTTGTAGAAAATAGCAACTACTCCAGATTAAGCAAGGAAATTTCCGAAAAAAGTCATCGATTAAGGTATATTTATAGTTACATTTGAAATCGACTATATGTATTCTCACTGTTCTTTTTAGTTCAATTCATAATATCCATCATCACATACGTCAAACAAAAGTAAAAGAGAGACAAGTTAATTTATATATATATATATATATATATAAAAAATTACGATAATAATAATAATATTAGAAGTTCTCTAACAAGTAGCATCGATTAACAGGCAAATGAGGGGAGAAGAACTTCAAGGACTAAATATTGAAGAGTTGCAACAATTGGAGAGATCTCTTGAAACTGGATTGAGCCGCGTCATAGAGAGAAAGGTCGGGATTTAACTTATATATATTGACATTATAAAATATATTTTATGTTATTAGTGTAATTTAATATGTCGTAACAAGTTATAATCGATTTTTCCCCTTTTTAATATCTTACACAACTTACGTTATCCATGTATCAGGGTGATAAAATAATGAGAGAGATCAACCAACTCCAACAAAAGGTTAGGAACAATATCGTTTAAGTGATCTGGTAGTGTATAATTTTTGTATCGCAATTTTACTTGGTTTTCATCGACGCTGATAATTGTTATTGTGAAAAATCAACAGGGTATGCATCTAATGGAAGAAAATGAAAAATTAAGGCAACAGGTATGCAAATTTTTTAACGAATGAGATAAAAATTGATTATTTTACTATAATTTTAGATAGCCGGTGATTACTGAAATCTCCGAGACATCAGGTTGAAATTTCAATAAAATCTATGAATTTGTAGATGATTTTTTCCTATTTCCGAAATCTCCGAAAAACTTAAGCTTTTTAAAATTAACTTTTTTATGGATACACTTGGAGTATCTAAATTATTCAAGACTTCAATAATTATGTTATTAAATGTTATCGTTGATATATATTTTTAATTTTTTTTAGGTGATGGAGATATCTAATAATAATAATAATAATAATAATGGATATAGAGAGGCAGGAGTAGTAATATTTGAACCAGAAAATGGATTTAATAATAATAATAATGAAGATGGCCAATCATCTGAATCAGTAACAAATCCATGTAACTCAATTGATCCTCCTCCTCAAGATGATGATAGTTCTGATACTTCTCTCAAATTGGGGTTAGTACTTTAATTCTTTCTTCTTCTTTTTTCCGGTCTCGTTTCGATCTCGTTTCGTATGAAAGATAAAAGAAATTATTAATTTCAATTTTAATTTTGTGAAGAAATAATCTATTTTGAATTGTTGTGTTGTTTGTTTTTAATACTGAAGGCGGAATAATGATTTTTAGAGAACTTATCCTAGAATTATTTTGAGATAACTTATTTTCCGTTCAAACGAATTGTGGTCGTGAAAAAATATTCGTTTATCAATACACTATTGGTAAATTGTATATCAAGTATCTACCTTCTGAAGGTGTTGCATACATATTACCCTTTTTAAACTTTACTTCGGTATCATGTTATTGTATATTGTTTATGTAAAGGGACAACAAAAGTTAGGGGCTAATCGAGTTCAGTAATTTTGACTCAAATATGATATTTGTGGGTTAAATTTTTTTATGAATATTTTATTATCGAAAGTAGAAGTCTTTGTACGGATTTGAATGAACCAAATATCTTTAGTTCATATCTTTGTATTGGTATTTAGAATACTCATAAATATGTACATTTTTTTTTTAATTCAAAACCTCGTTACTAACCCTTGATGTTGTTATCTTAAAATTTAGAACGTATACGTAATATTTAAATTTCAACTCTGTTCTATAGGTTCACCTTCATGTTCTAAATTTATAACCCATAATACATAAATTTAAAATTCTGAGTCCGTTTCTGATATTATATTTTTTTTCATCTTATTTGTTTTTTAAATGTCAGGCTACCTTACTCAGGCTGAAGAGATCAAAAGCAAGGTGTGGCTATTTTTGTATGTTATTAGAAGAAGGAGAAAAAAAAAAGTAA
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![]() ![]() | terms associated with this mRNA |
![]() ![]() | spliced cDNA sequence, including UTRs |
>Solyc11g010570.1.1 MADS box transcription factor (AHRD V1 **-- Q2NNB9_ELAGV); contains Interpro domain(s) IPR002100 Transcription factor, MADS-box IPR002487 Transcription factor, K-box
ATGGCTAGAGAAAAAATTCAGATCAAGAAAATAGATAACTCCACAGCAAGACAAGTTACATTTTCAAAGAGGAGAAGAGGTTTATTCAAGAAAGCTGAAGAACTTTCTGTTCTCTGTGATGCTGATGTTGCTCTCATCATTTTCTCTTCTACTGGAAAATTATTTGACTATTCTAGCTCAAGCATGAAACAAATTCTTGAGAGGCGTGATTTGCATTCCAAAAATCTGGAAAAATTGGATCAACCATCACTTGAACTTCAGCTTGTAGAAAATAGCAACTACTCCAGATTAAGCAAGGAAATTTCCGAAAAAAGTCATCGATTAAGGCAAATGAGGGGAGAAGAACTTCAAGGACTAAATATTGAAGAGTTGCAACAATTGGAGAGATCTCTTGAAACTGGATTGAGCCGCGTCATAGAGAGAAAGGGTGATAAAATAATGAGAGAGATCAACCAACTCCAACAAAAGGGTATGCATCTAATGGAAGAAAATGAAAAATTAAGGCAACAGGTGATGGAGATATCTAATAATAATAATAATAATAATAATGGATATAGAGAGGCAGGAGTAGTAATATTTGAACCAGAAAATGGATTTAATAATAATAATAATGAAGATGGCCAATCATCTGAATCAGTAACAAATCCATGTAACTCAATTGATCCTCCTCCTCAAGATGATGATAGTTCTGATACTTCTCTCAAATTGGGGTTAGCTACCTTACTCAGGCTGAAGAGATCAAAAGCAAGGTGTGGCTATTTTTGTATGTTATTAGAAGAAGGAGAAAAAAAAAAGTAA
ATGGCTAGAGAAAAAATTCAGATCAAGAAAATAGATAACTCCACAGCAAGACAAGTTACATTTTCAAAGAGGAGAAGAGGTTTATTCAAGAAAGCTGAAGAACTTTCTGTTCTCTGTGATGCTGATGTTGCTCTCATCATTTTCTCTTCTACTGGAAAATTATTTGACTATTCTAGCTCAAGCATGAAACAAATTCTTGAGAGGCGTGATTTGCATTCCAAAAATCTGGAAAAATTGGATCAACCATCACTTGAACTTCAGCTTGTAGAAAATAGCAACTACTCCAGATTAAGCAAGGAAATTTCCGAAAAAAGTCATCGATTAAGGCAAATGAGGGGAGAAGAACTTCAAGGACTAAATATTGAAGAGTTGCAACAATTGGAGAGATCTCTTGAAACTGGATTGAGCCGCGTCATAGAGAGAAAGGGTGATAAAATAATGAGAGAGATCAACCAACTCCAACAAAAGGGTATGCATCTAATGGAAGAAAATGAAAAATTAAGGCAACAGGTGATGGAGATATCTAATAATAATAATAATAATAATAATGGATATAGAGAGGCAGGAGTAGTAATATTTGAACCAGAAAATGGATTTAATAATAATAATAATGAAGATGGCCAATCATCTGAATCAGTAACAAATCCATGTAACTCAATTGATCCTCCTCCTCAAGATGATGATAGTTCTGATACTTCTCTCAAATTGGGGTTAGCTACCTTACTCAGGCTGAAGAGATCAAAAGCAAGGTGTGGCTATTTTTGTATGTTATTAGAAGAAGGAGAAAAAAAAAAGTAA
![]() ![]() | translated polypeptide sequence |
>Solyc11g010570.1.1 MADS box transcription factor (AHRD V1 **-- Q2NNB9_ELAGV); contains Interpro domain(s) IPR002100 Transcription factor, MADS-box IPR002487 Transcription factor, K-box
MAREKIQIKKIDNSTARQVTFSKRRRGLFKKAEELSVLCDADVALIIFSSTGKLFDYSSSSMKQILERRDLHSKNLEKLDQPSLELQLVENSNYSRLSKEISEKSHRLRQMRGEELQGLNIEELQQLERSLETGLSRVIERKGDKIMREINQLQQKGMHLMEENEKLRQQVMEISNNNNNNNNGYREAGVVIFEPENGFNNNNNEDGQSSESVTNPCNSIDPPPQDDDSSDTSLKLGLATLLRLKRSKARCGYFCMLLEEGEKKK*
MAREKIQIKKIDNSTARQVTFSKRRRGLFKKAEELSVLCDADVALIIFSSTGKLFDYSSSSMKQILERRDLHSKNLEKLDQPSLELQLVENSNYSRLSKEISEKSHRLRQMRGEELQGLNIEELQQLERSLETGLSRVIERKGDKIMREINQLQQKGMHLMEENEKLRQQVMEISNNNNNNNNGYREAGVVIFEPENGFNNNNNEDGQSSESVTNPCNSIDPPPQDDDSSDTSLKLGLATLLRLKRSKARCGYFCMLLEEGEKKK*
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![]() ![]() | [Associate new unigene] |
Unigene ID:
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![]() ![]() | [Associate new genbank sequence] |
AF275345 Lycopersicon esculentum putative permease gene, partial cds; suppressor-like protein, putative centromere protein, putative auxin growth promotor protein, and putative protein phosphatase genes, complete cds; LTR-A long terminal repeat, complete sequence; putative copia-like polyprotein gene, complete cds; LTR-B long terminal repeat, complete sequence; MADS-box transcription factor JOINTLESS gene, complete cds; TH65-like protein gene, partial cds; and unknown genes.
AAG09811 MADS-box transcription factor JOINTLESS [Solanum lycopersicum]
AAG09811 MADS-box transcription factor JOINTLESS [Solanum lycopersicum]
Other genome matches | None |
![]() ![]() | [Associate publication] [Matching publications] |
JOINTLESS is a MADS-box gene controlling tomato flower abscission zone development.
Nature (2000)
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Abscission is a universal and dynamic process in plants whereby organs such as leaves, flowers and fruit are shed, both during normal development, and in response to tissue damage and stress. Shedding occurs by separation of cells in anatomically distinct regions of the plant, called abscission zones (AZs). During abscission, the plant hormone ethylene stimulates cells to produce enzymes that degrade the middle lamella between cells in the AZ. The physiology and regulation of abscission at fully developed AZs is well known, but the molecular biology underlying their development is not. Here we report the first isolation of a gene directly involved in the development of a functional plant AZ. Tomato plants with the jointless mutation fail to develop AZs on their pedicels and so abscission of flowers or fruit does not occur normally. We identify JOINTLESS as a new MADS-box gene in a distinct phylogenetic clade separate from those functioning in floral organs. We propose that a deletion in JOINTLESS accounts for the failure of activation of pedicel AZ development in jointless tomato plants.
Mao, L. Begum, D. Chuang, HW. Budiman, MA. Szymkowiak, EJ. Irish, EE. Wing, RA.
Nature.
2000.
406(6798).
910-3.
Sequence and analysis of the tomato JOINTLESS locus.
Plant physiology (2001)
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A 119-kb bacterial artificial chromosome from the JOINTLESS locus on the tomato (Lycopersicon esculentum) chromosome 11 contained 15 putative genes. Repetitive sequences in this region include one copia-like LTR retrotransposon, 13 simple sequence repeats, three copies of a novel type III foldback transposon, and four putative short DNA repeats. Database searches showed that the foldback transposon and the short DNA repeats seemed to be associated preferably with genes. The predicted tomato genes were compared with the complete Arabidopsis genome. Eleven out of 15 tomato open reading frames were found to be colinear with segments on five Arabidopsis bacterial artificial chromosome/P1-derived artificial chromosome clones. The synteny patterns, however, did not reveal duplicated segments in Arabidopsis, where over half of the genome is duplicated. Our analysis indicated that the microsynteny between the tomato and Arabidopsis genomes was still conserved at a very small scale but was complicated by the large number of gene families in the Arabidopsis genome.
Mao, L. Begum, D. Goff, SA. Wing, RA.
Plant physiology.
2001.
126(3).
1331-40.
Interaction study of MADS-domain proteins in tomato.
Journal of experimental botany (2008)
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MADS-domain proteins are important transcription factors involved in many biological processes of plants. Interactions between MADS-domain proteins are essential for their functions. In tomato (Solanum lycopersicum), the number of MIKC(c)-type MADS-domain proteins identified has totalled 36, but a large-scale interaction assay is lacking. In this study, 22 tomato MADS-domain proteins were selected from six functionally important subfamilies of the MADS-box gene family, to create the first large-scale tomato protein interaction network. Compared with Arabidopsis and petunia (Petunia hybrida), protein interaction patterns in tomato displayed both conservation and divergence. The majority of proteins that can be identified as putative orthologues exhibited conserved interaction patterns, and modifications were mostly found in genes underlining traits unique to tomato. JOINTLESS and RIN, characterized for their roles in abscission zone development and fruit ripening, respectively, showed enlarged interaction networks in comparison with their Arabidopsis and petunia counterparts. Novel interactions were also found for members of the expanded subfamilies, such as those represented by AP1/FUL and AP3/PI MADS-domain proteins. In search for higher order complexes, TM5 was found to be the preferred bridge among the five SEP-like proteins. Additionally, 16 proteins with the MADS-domain removed were used to assess the role of the MADS-domain in protein-protein interactions. The current work provides important knowledge for further functional and evolutionary study of the MADS-box genes in tomato.
Leseberg, CH. Eissler, CL. Wang, X. Johns, MA. Duvall, MR. Mao, L.
Journal of experimental botany.
2008.
59(8).
2253-65.
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