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Tomato locus phytochrome A
Locus details | Download GMOD XML | Note to Editors | Annotation guidelines |
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Registry name: | None | [Associate registry name] |
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![]() ![]() | [Associate accession] |
Accession name:
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Associated loci - graphical view | None |
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![]() ![]() | unprocessed genomic sequence region underlying this gene |
>Solyc10g044670.1 SL2.50ch10:27379801..27384675
ATGTCGTCTTCAAGACCTAGCCAATCTTCCACCACTTCATCAAGATCAAAGCACAGTGCTAGGATCGTTGCACAGACCTCTATAGATGCAAAGCTGCATGCAGACTTTGAGGAGTCAGGTGATTCCTTTGACTATTCAAGCTCAGTGAGGGTTACAAGTGTCGCTGGAGATGAGGAAAAACCAAAGTCAGACAAAGTTACCACCGCCTACCTTCATCAGATCCAAAAGGGCAAGTTTATCCAGCCATTTGGTTGTCTGTTAGCCCTGGATGAGAAAACATTAAAGGTCATAGCATTCAGTGAGAATGCCCCTGAAATGCTGACCATGGTTAGCCATGCTGTTCCAAGTGTTGGTGAGCATCCAGTTCTTGGCATCGGGACTGATATCAGAACGATCTTCACTGGTCCTAGTGGCGCAGCATTGCAGAAAGCCTTGGGGTTTGGGGAGGTTTCTCTGTTAAATCCTGTCCTTGTTCACTGTAAAAATTCTGGAAAGCCATTTTATGCAATTGTTCATAGGGTTACAGGTAGCTTAATCCTTGATTTTGAGCCTGTGAAGCCCTATGAAGTACCCATGACTGCTGCAGGGGCCCTGCAGTCATATAAACTAGCAGCCAAAGCCATTACTCGCTTGCAGTCCTTGCCCAGTGGCAGTATGGAAAGACTCTGTGACACAATGGTTCAGGAGGTTTTTGAACTCACAGGTTATGACAGGGTGATGGGATATAAGTTTCACGAGGATGATCATGGAGAGGTGGTGTCTGAGATCACAAAGCCTGGCCTCGAGCCTTACCTTGGTTTACATTATCCTGCTACAGATATTCCACAGGCTGCACGGTTTTTGTTTATGAAGAATAAGGTCCGAATGATTTGTGATTGCCGAGCAAAGCATGTGAAGGTAGTCCAAGATGAGAAGCTTCCATTTGATTTAACATTGTGCGGCTCTACTCTTAGGGCCCCTCACTACTGCCATTTACAGTATATGGAGAACATGAATTCAATTGCATCACTTGTAATGGCAGTTGTGGTCAATGACGGGGATGAAGAAGGAGAAAGCTCTGATTCTTCACAATCTCAAAAAAGAAAAAGGCTATGGGGCCTGGTTGTTTGCCACAACACGACCCCAAGGTTCGTTCCCTTTCCACTGAGGTATGCATGTGAGTTTCTTGCACAAGTCTTTGCCATACACGTCAACAAGGAACTGGAATTGGAAAATCAATTCCTTGAGAAAAATATTCTGCGTACTCAGACTCTCTTGTGTGATATGCTGATGCGAGATGCTCCCCTAGGTATCGTGTCACAGAGCCCCAACATTATGGATCTTGTCAAATGTGATGGTGCGGCTTTGCTCTATAAGAATAAGATACATCGATTAGGAATGAACCCAAGTGACTTTCAGCTGCAGGATATAGTATCATGGCTTTGTGAGTATCATACAGATTCCACAGGCTTGAGTACGGATAGCTTGTATGATGCTGGTTTTCCTGGGGCTCTTGCTCTTGGTGATGCAGTCTGTGGTATGGCAGCTGTGAGAATATCTGATAAGGACTGGCTGTTCTGGTTCAGGTCACACACTGCTGCTGAAGTTAGATGGGGTGGTGCAAAGCATGAACCTGGTGAGAAGGATGATGGCAGGAAAATGCATCCTAGGTCATCATTCAAAGCATTCCTGGAAGTTGTCAAGACAAGGAGTATACCCTGGAAGGATTATGAGATGGATGCAATCCACTCTTTGCAGCTCATACTAAGAAATGCTTTCAAGGATGCTGAGGTTGTGAATTCAAATACCAATTCCATCTATAAGAAGCTTAATGATCTAAAGATTGACGGAATGCAGGAACTAGAATCAGTGACTGCTGAAATGGTCCGCTTAATTGAAACAGCTTTAGTTCCTATATTAGCAGTTGATGTTGATGGGCAGGTTAATGGATGGAACACAAAAATAGCTGAATTAACTGGTCTTCCTGTTGATGAAGCAATTGGGAAACATCTTCTCACTCTCGTGGAGGATTCATCAGTTGATACCGTGAATAAGATGTTGGAATTAGCATTGCAGGGTACGTATCTTTGTGCACTCCCCCCTCTGTGTTATGTTGATGTTATGACTCTTTTCGTGAAGATTGATTTTCTACACTATTTTAATTTTTTTGAATATTATTAATGATTTTTGTCTATCCATTCAGTTAAATGAATTATGTAATAAAAACGATTAATTTTCCACACTAATTAATTATTTTGAATGTTATAGTTCACATGATTTTTGTCCATCCATTCAGTTACATAAATTATGTACCGAAGATTTAACTGAATACACCATTCCTTTAACCAGGGAAAGAGGAAAAAAATGTAGAGTTTGAAATAAAAACACATGGGCCGTCAAGAGATTCTAGTCCAATCAGCTTAATCGTGAATGCATGTGCAAGCAAAGATGTTCGGGATAATGTTGTGGGTGTGTGTTTTATGGCTCATGATATAACTGGACAAAAAAGCATCATGGACAAGTTCACCCGAATCGAAGGTGACTATAGAGCGATTATCCAAAATCCTCACCCATTGATCCCACCAATATTTGGCACTGATCAATTTGGCTGGTGTTCTGAGTGGAACACTGCAATGACCAAGTTAACTGGATGGCGGCGTGATGATGTTATGGATAAAATGCTGTTAGGGGAGGTTTTTGGGACACAGGCAGCTTGCTGCCGTCTCAAGAATCAAGAAGCGTTTGTAAATTTCGGAGTTGTACTAAACAATGCTATCACTGGTCAAGAATCTGAGAAGATTCCTTTTGGTTTCTTTGCACGTTACGGGAAATATGTGGAGTGCTTACTCTGTGTGAGCAAAAGGTTAGATAAAGAGGGTGCAGTCACGGGACTCTTTTGTTTCCTGCAACTTGCAAGCCATGAGTTGCAACAAGCTCTTTATGTTCAACGATTATCAGAACAAACTGCGTTGAAAAGATTGAAAGTATTAGCTTACATAAGGAGGCAAATTAGGAATCCTCTTTCTGGGATTATATTCTCTCGGAAGATGCTAGAGGGGACTAGCTTGGGCGAAGAGCAGAAAAATATACTGCATACAAGTGCACAGTGTCAGCGTCAGCTCAACAAAATTCTTGATGATACAGATCTTGATAGCATCATAGATGGGTACGCTACTCTCATTTATCATATCTTATGTGTTTTAGTTTCAATACCCCGAGTTCCTTCCCGTTCATCCCTTTTTAGTTAAAACTTGATCAAGGTATGATGGTTTTGTAGCAACAAGTAAATGCTTGGATTTGATCTGTGCAAGAACATTTTTTGCAGTGGAAGTGTTGTTCTTGGAATATATTTTTGTGCATTTGATATGATATTAAGTTTGCTTTGCTGGTTTATGGTTTTCTTGTCCAATATTTATTGTTTTTAGCTTTATGTTTATCATTTTAAATGATTTTTTACACTGTAATATTTGCTCTTCTTCTAATCTCTTACCAGTTATTTGGATCTGGAGATGCTCGAGTTTAAGCTGCATGAAGTATTGGTAGCATCTATAAGTCAAGTCATGATGAAGAGCAACGGAAAGAATATAATGATCTCGAATGACATGGTTGAAGATCTTCTTAATGAAACTTTATACGGAGATAGTCCGAGGCTTCAACAAGTCCTTGCTAACTTTTTGTTAGTATCTGTGAACGCTACACCAAGTGGCGGCCAGCTTAGTATTTCAGGCAGGCTAACAAAAGATCGTATAGGAGAATCTGTTCAGCTTGCTCTCTTGGAATTCAGGTAAATCCATATGACAGAAAAAATCACCTTGACCAGATATCTACTGTCCAAGTTAGCATCTCCCGCAAAAACATAAAGATTGAGGGGTATCTACACAATCTATTGACATCTAAGCATTTAAAAATCCATCTTTAGGGTTAAAAACTAACCGGTATCTCTCTCAATACCTGTGATTCATATGTTATTTCTGTCCTCAGTAATTTTTGTTTGATAGTGTATCTATTCTCTATCAAATTGGGAACGTAAAAGTTTTTCTTGAACTCAAATGTCTCAATGTGTTTGAAGTCCTTATATTGCCATTGCATTTGATCCTTGGCAGTTCAAACTGCTACTTCTTTGTCTTCTCTCCATTTATTTTGTAAACATTGATTGCAAAATTGCTAGTTTAATTAGAAGATAAATTATAATTCTATATTTTTCACAATTTTTAGTAAAATTGTTCTGTTGGCCTAAACATCCTTCACTCACTATTTTATCAGAGAGTCAAATATCTGAGTAGGAGTTTTCAAATTCAAAGAGAAGTGTAATATGCTCTCTAACTGTTGTAAGGTTATTGCTAATTCATTCTTTGGACAAACGAAAAATCAACCTTCAGCATTGAGGTGTAAATGTTGAGTTTTTCATCTATTACTTGAACATTAAATAACCCCAGATAGCAATTAGAGTCTAGAGATTGATGAGACCAGGCTTAAAAAAATTATTTTAAATTGAGAACGACAAATGAAAATCATACTTCTCTCAGAAAGCTTTGAGTTGGCATATGTGGAATGGTCTTGTCCTCTATTTATTCAATTGTGGTGATTGAGTTTTAAGGCTAGACAGATGAATTTAAATAATGACAAGAATCAGCACCATATGTTACTTGTACAAGGCTGACCAGGAGAAACATTACTTGCTATTTCAGGATAAGACATACAGGGGGTGGAGTGCCAGAAGAATTGCTTGGCCAAATGTTTGGTAGTGAAGCCGATGCATCTGAAGAAGGGATCAGCTTACTTGTCAGCAGAAAACTGGTCAAGCTGATGAATGGGGAAGTTCAGTATCTAAGAGAGGCTGGGCAATCAACTTTCATTATATCCGTTGAACTCGCAGTGGCTACCAACTCAAGCTGA
ATGTCGTCTTCAAGACCTAGCCAATCTTCCACCACTTCATCAAGATCAAAGCACAGTGCTAGGATCGTTGCACAGACCTCTATAGATGCAAAGCTGCATGCAGACTTTGAGGAGTCAGGTGATTCCTTTGACTATTCAAGCTCAGTGAGGGTTACAAGTGTCGCTGGAGATGAGGAAAAACCAAAGTCAGACAAAGTTACCACCGCCTACCTTCATCAGATCCAAAAGGGCAAGTTTATCCAGCCATTTGGTTGTCTGTTAGCCCTGGATGAGAAAACATTAAAGGTCATAGCATTCAGTGAGAATGCCCCTGAAATGCTGACCATGGTTAGCCATGCTGTTCCAAGTGTTGGTGAGCATCCAGTTCTTGGCATCGGGACTGATATCAGAACGATCTTCACTGGTCCTAGTGGCGCAGCATTGCAGAAAGCCTTGGGGTTTGGGGAGGTTTCTCTGTTAAATCCTGTCCTTGTTCACTGTAAAAATTCTGGAAAGCCATTTTATGCAATTGTTCATAGGGTTACAGGTAGCTTAATCCTTGATTTTGAGCCTGTGAAGCCCTATGAAGTACCCATGACTGCTGCAGGGGCCCTGCAGTCATATAAACTAGCAGCCAAAGCCATTACTCGCTTGCAGTCCTTGCCCAGTGGCAGTATGGAAAGACTCTGTGACACAATGGTTCAGGAGGTTTTTGAACTCACAGGTTATGACAGGGTGATGGGATATAAGTTTCACGAGGATGATCATGGAGAGGTGGTGTCTGAGATCACAAAGCCTGGCCTCGAGCCTTACCTTGGTTTACATTATCCTGCTACAGATATTCCACAGGCTGCACGGTTTTTGTTTATGAAGAATAAGGTCCGAATGATTTGTGATTGCCGAGCAAAGCATGTGAAGGTAGTCCAAGATGAGAAGCTTCCATTTGATTTAACATTGTGCGGCTCTACTCTTAGGGCCCCTCACTACTGCCATTTACAGTATATGGAGAACATGAATTCAATTGCATCACTTGTAATGGCAGTTGTGGTCAATGACGGGGATGAAGAAGGAGAAAGCTCTGATTCTTCACAATCTCAAAAAAGAAAAAGGCTATGGGGCCTGGTTGTTTGCCACAACACGACCCCAAGGTTCGTTCCCTTTCCACTGAGGTATGCATGTGAGTTTCTTGCACAAGTCTTTGCCATACACGTCAACAAGGAACTGGAATTGGAAAATCAATTCCTTGAGAAAAATATTCTGCGTACTCAGACTCTCTTGTGTGATATGCTGATGCGAGATGCTCCCCTAGGTATCGTGTCACAGAGCCCCAACATTATGGATCTTGTCAAATGTGATGGTGCGGCTTTGCTCTATAAGAATAAGATACATCGATTAGGAATGAACCCAAGTGACTTTCAGCTGCAGGATATAGTATCATGGCTTTGTGAGTATCATACAGATTCCACAGGCTTGAGTACGGATAGCTTGTATGATGCTGGTTTTCCTGGGGCTCTTGCTCTTGGTGATGCAGTCTGTGGTATGGCAGCTGTGAGAATATCTGATAAGGACTGGCTGTTCTGGTTCAGGTCACACACTGCTGCTGAAGTTAGATGGGGTGGTGCAAAGCATGAACCTGGTGAGAAGGATGATGGCAGGAAAATGCATCCTAGGTCATCATTCAAAGCATTCCTGGAAGTTGTCAAGACAAGGAGTATACCCTGGAAGGATTATGAGATGGATGCAATCCACTCTTTGCAGCTCATACTAAGAAATGCTTTCAAGGATGCTGAGGTTGTGAATTCAAATACCAATTCCATCTATAAGAAGCTTAATGATCTAAAGATTGACGGAATGCAGGAACTAGAATCAGTGACTGCTGAAATGGTCCGCTTAATTGAAACAGCTTTAGTTCCTATATTAGCAGTTGATGTTGATGGGCAGGTTAATGGATGGAACACAAAAATAGCTGAATTAACTGGTCTTCCTGTTGATGAAGCAATTGGGAAACATCTTCTCACTCTCGTGGAGGATTCATCAGTTGATACCGTGAATAAGATGTTGGAATTAGCATTGCAGGGTACGTATCTTTGTGCACTCCCCCCTCTGTGTTATGTTGATGTTATGACTCTTTTCGTGAAGATTGATTTTCTACACTATTTTAATTTTTTTGAATATTATTAATGATTTTTGTCTATCCATTCAGTTAAATGAATTATGTAATAAAAACGATTAATTTTCCACACTAATTAATTATTTTGAATGTTATAGTTCACATGATTTTTGTCCATCCATTCAGTTACATAAATTATGTACCGAAGATTTAACTGAATACACCATTCCTTTAACCAGGGAAAGAGGAAAAAAATGTAGAGTTTGAAATAAAAACACATGGGCCGTCAAGAGATTCTAGTCCAATCAGCTTAATCGTGAATGCATGTGCAAGCAAAGATGTTCGGGATAATGTTGTGGGTGTGTGTTTTATGGCTCATGATATAACTGGACAAAAAAGCATCATGGACAAGTTCACCCGAATCGAAGGTGACTATAGAGCGATTATCCAAAATCCTCACCCATTGATCCCACCAATATTTGGCACTGATCAATTTGGCTGGTGTTCTGAGTGGAACACTGCAATGACCAAGTTAACTGGATGGCGGCGTGATGATGTTATGGATAAAATGCTGTTAGGGGAGGTTTTTGGGACACAGGCAGCTTGCTGCCGTCTCAAGAATCAAGAAGCGTTTGTAAATTTCGGAGTTGTACTAAACAATGCTATCACTGGTCAAGAATCTGAGAAGATTCCTTTTGGTTTCTTTGCACGTTACGGGAAATATGTGGAGTGCTTACTCTGTGTGAGCAAAAGGTTAGATAAAGAGGGTGCAGTCACGGGACTCTTTTGTTTCCTGCAACTTGCAAGCCATGAGTTGCAACAAGCTCTTTATGTTCAACGATTATCAGAACAAACTGCGTTGAAAAGATTGAAAGTATTAGCTTACATAAGGAGGCAAATTAGGAATCCTCTTTCTGGGATTATATTCTCTCGGAAGATGCTAGAGGGGACTAGCTTGGGCGAAGAGCAGAAAAATATACTGCATACAAGTGCACAGTGTCAGCGTCAGCTCAACAAAATTCTTGATGATACAGATCTTGATAGCATCATAGATGGGTACGCTACTCTCATTTATCATATCTTATGTGTTTTAGTTTCAATACCCCGAGTTCCTTCCCGTTCATCCCTTTTTAGTTAAAACTTGATCAAGGTATGATGGTTTTGTAGCAACAAGTAAATGCTTGGATTTGATCTGTGCAAGAACATTTTTTGCAGTGGAAGTGTTGTTCTTGGAATATATTTTTGTGCATTTGATATGATATTAAGTTTGCTTTGCTGGTTTATGGTTTTCTTGTCCAATATTTATTGTTTTTAGCTTTATGTTTATCATTTTAAATGATTTTTTACACTGTAATATTTGCTCTTCTTCTAATCTCTTACCAGTTATTTGGATCTGGAGATGCTCGAGTTTAAGCTGCATGAAGTATTGGTAGCATCTATAAGTCAAGTCATGATGAAGAGCAACGGAAAGAATATAATGATCTCGAATGACATGGTTGAAGATCTTCTTAATGAAACTTTATACGGAGATAGTCCGAGGCTTCAACAAGTCCTTGCTAACTTTTTGTTAGTATCTGTGAACGCTACACCAAGTGGCGGCCAGCTTAGTATTTCAGGCAGGCTAACAAAAGATCGTATAGGAGAATCTGTTCAGCTTGCTCTCTTGGAATTCAGGTAAATCCATATGACAGAAAAAATCACCTTGACCAGATATCTACTGTCCAAGTTAGCATCTCCCGCAAAAACATAAAGATTGAGGGGTATCTACACAATCTATTGACATCTAAGCATTTAAAAATCCATCTTTAGGGTTAAAAACTAACCGGTATCTCTCTCAATACCTGTGATTCATATGTTATTTCTGTCCTCAGTAATTTTTGTTTGATAGTGTATCTATTCTCTATCAAATTGGGAACGTAAAAGTTTTTCTTGAACTCAAATGTCTCAATGTGTTTGAAGTCCTTATATTGCCATTGCATTTGATCCTTGGCAGTTCAAACTGCTACTTCTTTGTCTTCTCTCCATTTATTTTGTAAACATTGATTGCAAAATTGCTAGTTTAATTAGAAGATAAATTATAATTCTATATTTTTCACAATTTTTAGTAAAATTGTTCTGTTGGCCTAAACATCCTTCACTCACTATTTTATCAGAGAGTCAAATATCTGAGTAGGAGTTTTCAAATTCAAAGAGAAGTGTAATATGCTCTCTAACTGTTGTAAGGTTATTGCTAATTCATTCTTTGGACAAACGAAAAATCAACCTTCAGCATTGAGGTGTAAATGTTGAGTTTTTCATCTATTACTTGAACATTAAATAACCCCAGATAGCAATTAGAGTCTAGAGATTGATGAGACCAGGCTTAAAAAAATTATTTTAAATTGAGAACGACAAATGAAAATCATACTTCTCTCAGAAAGCTTTGAGTTGGCATATGTGGAATGGTCTTGTCCTCTATTTATTCAATTGTGGTGATTGAGTTTTAAGGCTAGACAGATGAATTTAAATAATGACAAGAATCAGCACCATATGTTACTTGTACAAGGCTGACCAGGAGAAACATTACTTGCTATTTCAGGATAAGACATACAGGGGGTGGAGTGCCAGAAGAATTGCTTGGCCAAATGTTTGGTAGTGAAGCCGATGCATCTGAAGAAGGGATCAGCTTACTTGTCAGCAGAAAACTGGTCAAGCTGATGAATGGGGAAGTTCAGTATCTAAGAGAGGCTGGGCAATCAACTTTCATTATATCCGTTGAACTCGCAGTGGCTACCAACTCAAGCTGA
Download sequence region |
Get flanking sequences on SL2.50ch10
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![]() ![]() | terms associated with this mRNA |
![]() ![]() | spliced cDNA sequence, including UTRs |
>Solyc10g044670.1.1 Phytochrome A
ATGTCGTCTTCAAGACCTAGCCAATCTTCCACCACTTCATCAAGATCAAAGCACAGTGCTAGGATCGTTGCACAGACCTCTATAGATGCAAAGCTGCATGCAGACTTTGAGGAGTCAGGTGATTCCTTTGACTATTCAAGCTCAGTGAGGGTTACAAGTGTCGCTGGAGATGAGGAAAAACCAAAGTCAGACAAAGTTACCACCGCCTACCTTCATCAGATCCAAAAGGGCAAGTTTATCCAGCCATTTGGTTGTCTGTTAGCCCTGGATGAGAAAACATTAAAGGTCATAGCATTCAGTGAGAATGCCCCTGAAATGCTGACCATGGTTAGCCATGCTGTTCCAAGTGTTGGTGAGCATCCAGTTCTTGGCATCGGGACTGATATCAGAACGATCTTCACTGGTCCTAGTGGCGCAGCATTGCAGAAAGCCTTGGGGTTTGGGGAGGTTTCTCTGTTAAATCCTGTCCTTGTTCACTGTAAAAATTCTGGAAAGCCATTTTATGCAATTGTTCATAGGGTTACAGGTAGCTTAATCCTTGATTTTGAGCCTGTGAAGCCCTATGAAGTACCCATGACTGCTGCAGGGGCCCTGCAGTCATATAAACTAGCAGCCAAAGCCATTACTCGCTTGCAGTCCTTGCCCAGTGGCAGTATGGAAAGACTCTGTGACACAATGGTTCAGGAGGTTTTTGAACTCACAGGTTATGACAGGGTGATGGGATATAAGTTTCACGAGGATGATCATGGAGAGGTGGTGTCTGAGATCACAAAGCCTGGCCTCGAGCCTTACCTTGGTTTACATTATCCTGCTACAGATATTCCACAGGCTGCACGGTTTTTGTTTATGAAGAATAAGGTCCGAATGATTTGTGATTGCCGAGCAAAGCATGTGAAGGTAGTCCAAGATGAGAAGCTTCCATTTGATTTAACATTGTGCGGCTCTACTCTTAGGGCCCCTCACTACTGCCATTTACAGTATATGGAGAACATGAATTCAATTGCATCACTTGTAATGGCAGTTGTGGTCAATGACGGGGATGAAGAAGGAGAAAGCTCTGATTCTTCACAATCTCAAAAAAGAAAAAGGCTATGGGGCCTGGTTGTTTGCCACAACACGACCCCAAGGTTCGTTCCCTTTCCACTGAGGTATGCATGTGAGTTTCTTGCACAAGTCTTTGCCATACACGTCAACAAGGAACTGGAATTGGAAAATCAATTCCTTGAGAAAAATATTCTGCGTACTCAGACTCTCTTGTGTGATATGCTGATGCGAGATGCTCCCCTAGGTATCGTGTCACAGAGCCCCAACATTATGGATCTTGTCAAATGTGATGGTGCGGCTTTGCTCTATAAGAATAAGATACATCGATTAGGAATGAACCCAAGTGACTTTCAGCTGCAGGATATAGTATCATGGCTTTGTGAGTATCATACAGATTCCACAGGCTTGAGTACGGATAGCTTGTATGATGCTGGTTTTCCTGGGGCTCTTGCTCTTGGTGATGCAGTCTGTGGTATGGCAGCTGTGAGAATATCTGATAAGGACTGGCTGTTCTGGTTCAGGTCACACACTGCTGCTGAAGTTAGATGGGGTGGTGCAAAGCATGAACCTGGTGAGAAGGATGATGGCAGGAAAATGCATCCTAGGTCATCATTCAAAGCATTCCTGGAAGTTGTCAAGACAAGGAGTATACCCTGGAAGGATTATGAGATGGATGCAATCCACTCTTTGCAGCTCATACTAAGAAATGCTTTCAAGGATGCTGAGGTTGTGAATTCAAATACCAATTCCATCTATAAGAAGCTTAATGATCTAAAGATTGACGGAATGCAGGAACTAGAATCAGTGACTGCTGAAATGGTCCGCTTAATTGAAACAGCTTTAGTTCCTATATTAGCAGTTGATGTTGATGGGCAGGTTAATGGATGGAACACAAAAATAGCTGAATTAACTGGTCTTCCTGTTGATGAAGCAATTGGGAAACATCTTCTCACTCTCGTGGAGGATTCATCAGTTGATACCGTGAATAAGATGTTGGAATTAGCATTGCAGGGGAAAGAGGAAAAAAATGTAGAGTTTGAAATAAAAACACATGGGCCGTCAAGAGATTCTAGTCCAATCAGCTTAATCGTGAATGCATGTGCAAGCAAAGATGTTCGGGATAATGTTGTGGGTGTGTGTTTTATGGCTCATGATATAACTGGACAAAAAAGCATCATGGACAAGTTCACCCGAATCGAAGGTGACTATAGAGCGATTATCCAAAATCCTCACCCATTGATCCCACCAATATTTGGCACTGATCAATTTGGCTGGTGTTCTGAGTGGAACACTGCAATGACCAAGTTAACTGGATGGCGGCGTGATGATGTTATGGATAAAATGCTGTTAGGGGAGGTTTTTGGGACACAGGCAGCTTGCTGCCGTCTCAAGAATCAAGAAGCGTTTGTAAATTTCGGAGTTGTACTAAACAATGCTATCACTGGTCAAGAATCTGAGAAGATTCCTTTTGGTTTCTTTGCACGTTACGGGAAATATGTGGAGTGCTTACTCTGTGTGAGCAAAAGGTTAGATAAAGAGGGTGCAGTCACGGGACTCTTTTGTTTCCTGCAACTTGCAAGCCATGAGTTGCAACAAGCTCTTTATGTTCAACGATTATCAGAACAAACTGCGTTGAAAAGATTGAAAGTATTAGCTTACATAAGGAGGCAAATTAGGAATCCTCTTTCTGGGATTATATTCTCTCGGAAGATGCTAGAGGGGACTAGCTTGGGCGAAGAGCAGAAAAATATACTGCATACAAGTGCACAGTGTCAGCGTCAGCTCAACAAAATTCTTGATGATACAGATCTTGATAGCATCATAGATGGTTATTTGGATCTGGAGATGCTCGAGTTTAAGCTGCATGAAGTATTGGTAGCATCTATAAGTCAAGTCATGATGAAGAGCAACGGAAAGAATATAATGATCTCGAATGACATGGTTGAAGATCTTCTTAATGAAACTTTATACGGAGATAGTCCGAGGCTTCAACAAGTCCTTGCTAACTTTTTGTTAGTATCTGTGAACGCTACACCAAGTGGCGGCCAGCTTAGTATTTCAGGCAGGCTAACAAAAGATCGTATAGGAGAATCTGTTCAGCTTGCTCTCTTGGAATTCAGGATAAGACATACAGGGGGTGGAGTGCCAGAAGAATTGCTTGGCCAAATGTTTGGTAGTGAAGCCGATGCATCTGAAGAAGGGATCAGCTTACTTGTCAGCAGAAAACTGGTCAAGCTGATGAATGGGGAAGTTCAGTATCTAAGAGAGGCTGGGCAATCAACTTTCATTATATCCGTTGAACTCGCAGTGGCTACCAACTCAAGCTGA
ATGTCGTCTTCAAGACCTAGCCAATCTTCCACCACTTCATCAAGATCAAAGCACAGTGCTAGGATCGTTGCACAGACCTCTATAGATGCAAAGCTGCATGCAGACTTTGAGGAGTCAGGTGATTCCTTTGACTATTCAAGCTCAGTGAGGGTTACAAGTGTCGCTGGAGATGAGGAAAAACCAAAGTCAGACAAAGTTACCACCGCCTACCTTCATCAGATCCAAAAGGGCAAGTTTATCCAGCCATTTGGTTGTCTGTTAGCCCTGGATGAGAAAACATTAAAGGTCATAGCATTCAGTGAGAATGCCCCTGAAATGCTGACCATGGTTAGCCATGCTGTTCCAAGTGTTGGTGAGCATCCAGTTCTTGGCATCGGGACTGATATCAGAACGATCTTCACTGGTCCTAGTGGCGCAGCATTGCAGAAAGCCTTGGGGTTTGGGGAGGTTTCTCTGTTAAATCCTGTCCTTGTTCACTGTAAAAATTCTGGAAAGCCATTTTATGCAATTGTTCATAGGGTTACAGGTAGCTTAATCCTTGATTTTGAGCCTGTGAAGCCCTATGAAGTACCCATGACTGCTGCAGGGGCCCTGCAGTCATATAAACTAGCAGCCAAAGCCATTACTCGCTTGCAGTCCTTGCCCAGTGGCAGTATGGAAAGACTCTGTGACACAATGGTTCAGGAGGTTTTTGAACTCACAGGTTATGACAGGGTGATGGGATATAAGTTTCACGAGGATGATCATGGAGAGGTGGTGTCTGAGATCACAAAGCCTGGCCTCGAGCCTTACCTTGGTTTACATTATCCTGCTACAGATATTCCACAGGCTGCACGGTTTTTGTTTATGAAGAATAAGGTCCGAATGATTTGTGATTGCCGAGCAAAGCATGTGAAGGTAGTCCAAGATGAGAAGCTTCCATTTGATTTAACATTGTGCGGCTCTACTCTTAGGGCCCCTCACTACTGCCATTTACAGTATATGGAGAACATGAATTCAATTGCATCACTTGTAATGGCAGTTGTGGTCAATGACGGGGATGAAGAAGGAGAAAGCTCTGATTCTTCACAATCTCAAAAAAGAAAAAGGCTATGGGGCCTGGTTGTTTGCCACAACACGACCCCAAGGTTCGTTCCCTTTCCACTGAGGTATGCATGTGAGTTTCTTGCACAAGTCTTTGCCATACACGTCAACAAGGAACTGGAATTGGAAAATCAATTCCTTGAGAAAAATATTCTGCGTACTCAGACTCTCTTGTGTGATATGCTGATGCGAGATGCTCCCCTAGGTATCGTGTCACAGAGCCCCAACATTATGGATCTTGTCAAATGTGATGGTGCGGCTTTGCTCTATAAGAATAAGATACATCGATTAGGAATGAACCCAAGTGACTTTCAGCTGCAGGATATAGTATCATGGCTTTGTGAGTATCATACAGATTCCACAGGCTTGAGTACGGATAGCTTGTATGATGCTGGTTTTCCTGGGGCTCTTGCTCTTGGTGATGCAGTCTGTGGTATGGCAGCTGTGAGAATATCTGATAAGGACTGGCTGTTCTGGTTCAGGTCACACACTGCTGCTGAAGTTAGATGGGGTGGTGCAAAGCATGAACCTGGTGAGAAGGATGATGGCAGGAAAATGCATCCTAGGTCATCATTCAAAGCATTCCTGGAAGTTGTCAAGACAAGGAGTATACCCTGGAAGGATTATGAGATGGATGCAATCCACTCTTTGCAGCTCATACTAAGAAATGCTTTCAAGGATGCTGAGGTTGTGAATTCAAATACCAATTCCATCTATAAGAAGCTTAATGATCTAAAGATTGACGGAATGCAGGAACTAGAATCAGTGACTGCTGAAATGGTCCGCTTAATTGAAACAGCTTTAGTTCCTATATTAGCAGTTGATGTTGATGGGCAGGTTAATGGATGGAACACAAAAATAGCTGAATTAACTGGTCTTCCTGTTGATGAAGCAATTGGGAAACATCTTCTCACTCTCGTGGAGGATTCATCAGTTGATACCGTGAATAAGATGTTGGAATTAGCATTGCAGGGGAAAGAGGAAAAAAATGTAGAGTTTGAAATAAAAACACATGGGCCGTCAAGAGATTCTAGTCCAATCAGCTTAATCGTGAATGCATGTGCAAGCAAAGATGTTCGGGATAATGTTGTGGGTGTGTGTTTTATGGCTCATGATATAACTGGACAAAAAAGCATCATGGACAAGTTCACCCGAATCGAAGGTGACTATAGAGCGATTATCCAAAATCCTCACCCATTGATCCCACCAATATTTGGCACTGATCAATTTGGCTGGTGTTCTGAGTGGAACACTGCAATGACCAAGTTAACTGGATGGCGGCGTGATGATGTTATGGATAAAATGCTGTTAGGGGAGGTTTTTGGGACACAGGCAGCTTGCTGCCGTCTCAAGAATCAAGAAGCGTTTGTAAATTTCGGAGTTGTACTAAACAATGCTATCACTGGTCAAGAATCTGAGAAGATTCCTTTTGGTTTCTTTGCACGTTACGGGAAATATGTGGAGTGCTTACTCTGTGTGAGCAAAAGGTTAGATAAAGAGGGTGCAGTCACGGGACTCTTTTGTTTCCTGCAACTTGCAAGCCATGAGTTGCAACAAGCTCTTTATGTTCAACGATTATCAGAACAAACTGCGTTGAAAAGATTGAAAGTATTAGCTTACATAAGGAGGCAAATTAGGAATCCTCTTTCTGGGATTATATTCTCTCGGAAGATGCTAGAGGGGACTAGCTTGGGCGAAGAGCAGAAAAATATACTGCATACAAGTGCACAGTGTCAGCGTCAGCTCAACAAAATTCTTGATGATACAGATCTTGATAGCATCATAGATGGTTATTTGGATCTGGAGATGCTCGAGTTTAAGCTGCATGAAGTATTGGTAGCATCTATAAGTCAAGTCATGATGAAGAGCAACGGAAAGAATATAATGATCTCGAATGACATGGTTGAAGATCTTCTTAATGAAACTTTATACGGAGATAGTCCGAGGCTTCAACAAGTCCTTGCTAACTTTTTGTTAGTATCTGTGAACGCTACACCAAGTGGCGGCCAGCTTAGTATTTCAGGCAGGCTAACAAAAGATCGTATAGGAGAATCTGTTCAGCTTGCTCTCTTGGAATTCAGGATAAGACATACAGGGGGTGGAGTGCCAGAAGAATTGCTTGGCCAAATGTTTGGTAGTGAAGCCGATGCATCTGAAGAAGGGATCAGCTTACTTGTCAGCAGAAAACTGGTCAAGCTGATGAATGGGGAAGTTCAGTATCTAAGAGAGGCTGGGCAATCAACTTTCATTATATCCGTTGAACTCGCAGTGGCTACCAACTCAAGCTGA
![]() ![]() | translated polypeptide sequence |
>Solyc10g044670.1.1 Phytochrome A
MSSSRPSQSSTTSSRSKHSARIVAQTSIDAKLHADFEESGDSFDYSSSVRVTSVAGDEEKPKSDKVTTAYLHQIQKGKFIQPFGCLLALDEKTLKVIAFSENAPEMLTMVSHAVPSVGEHPVLGIGTDIRTIFTGPSGAALQKALGFGEVSLLNPVLVHCKNSGKPFYAIVHRVTGSLILDFEPVKPYEVPMTAAGALQSYKLAAKAITRLQSLPSGSMERLCDTMVQEVFELTGYDRVMGYKFHEDDHGEVVSEITKPGLEPYLGLHYPATDIPQAARFLFMKNKVRMICDCRAKHVKVVQDEKLPFDLTLCGSTLRAPHYCHLQYMENMNSIASLVMAVVVNDGDEEGESSDSSQSQKRKRLWGLVVCHNTTPRFVPFPLRYACEFLAQVFAIHVNKELELENQFLEKNILRTQTLLCDMLMRDAPLGIVSQSPNIMDLVKCDGAALLYKNKIHRLGMNPSDFQLQDIVSWLCEYHTDSTGLSTDSLYDAGFPGALALGDAVCGMAAVRISDKDWLFWFRSHTAAEVRWGGAKHEPGEKDDGRKMHPRSSFKAFLEVVKTRSIPWKDYEMDAIHSLQLILRNAFKDAEVVNSNTNSIYKKLNDLKIDGMQELESVTAEMVRLIETALVPILAVDVDGQVNGWNTKIAELTGLPVDEAIGKHLLTLVEDSSVDTVNKMLELALQGKEEKNVEFEIKTHGPSRDSSPISLIVNACASKDVRDNVVGVCFMAHDITGQKSIMDKFTRIEGDYRAIIQNPHPLIPPIFGTDQFGWCSEWNTAMTKLTGWRRDDVMDKMLLGEVFGTQAACCRLKNQEAFVNFGVVLNNAITGQESEKIPFGFFARYGKYVECLLCVSKRLDKEGAVTGLFCFLQLASHELQQALYVQRLSEQTALKRLKVLAYIRRQIRNPLSGIIFSRKMLEGTSLGEEQKNILHTSAQCQRQLNKILDDTDLDSIIDGYLDLEMLEFKLHEVLVASISQVMMKSNGKNIMISNDMVEDLLNETLYGDSPRLQQVLANFLLVSVNATPSGGQLSISGRLTKDRIGESVQLALLEFRIRHTGGGVPEELLGQMFGSEADASEEGISLLVSRKLVKLMNGEVQYLREAGQSTFIISVELAVATNSS*
MSSSRPSQSSTTSSRSKHSARIVAQTSIDAKLHADFEESGDSFDYSSSVRVTSVAGDEEKPKSDKVTTAYLHQIQKGKFIQPFGCLLALDEKTLKVIAFSENAPEMLTMVSHAVPSVGEHPVLGIGTDIRTIFTGPSGAALQKALGFGEVSLLNPVLVHCKNSGKPFYAIVHRVTGSLILDFEPVKPYEVPMTAAGALQSYKLAAKAITRLQSLPSGSMERLCDTMVQEVFELTGYDRVMGYKFHEDDHGEVVSEITKPGLEPYLGLHYPATDIPQAARFLFMKNKVRMICDCRAKHVKVVQDEKLPFDLTLCGSTLRAPHYCHLQYMENMNSIASLVMAVVVNDGDEEGESSDSSQSQKRKRLWGLVVCHNTTPRFVPFPLRYACEFLAQVFAIHVNKELELENQFLEKNILRTQTLLCDMLMRDAPLGIVSQSPNIMDLVKCDGAALLYKNKIHRLGMNPSDFQLQDIVSWLCEYHTDSTGLSTDSLYDAGFPGALALGDAVCGMAAVRISDKDWLFWFRSHTAAEVRWGGAKHEPGEKDDGRKMHPRSSFKAFLEVVKTRSIPWKDYEMDAIHSLQLILRNAFKDAEVVNSNTNSIYKKLNDLKIDGMQELESVTAEMVRLIETALVPILAVDVDGQVNGWNTKIAELTGLPVDEAIGKHLLTLVEDSSVDTVNKMLELALQGKEEKNVEFEIKTHGPSRDSSPISLIVNACASKDVRDNVVGVCFMAHDITGQKSIMDKFTRIEGDYRAIIQNPHPLIPPIFGTDQFGWCSEWNTAMTKLTGWRRDDVMDKMLLGEVFGTQAACCRLKNQEAFVNFGVVLNNAITGQESEKIPFGFFARYGKYVECLLCVSKRLDKEGAVTGLFCFLQLASHELQQALYVQRLSEQTALKRLKVLAYIRRQIRNPLSGIIFSRKMLEGTSLGEEQKNILHTSAQCQRQLNKILDDTDLDSIIDGYLDLEMLEFKLHEVLVASISQVMMKSNGKNIMISNDMVEDLLNETLYGDSPRLQQVLANFLLVSVNATPSGGQLSISGRLTKDRIGESVQLALLEFRIRHTGGGVPEELLGQMFGSEADASEEGISLLVSRKLVKLMNGEVQYLREAGQSTFIISVELAVATNSS*
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![]() ![]() | [Associate new unigene] |
Unigene ID:
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Other genome matches | None |
![]() ![]() | [Associate publication] [Matching publications] |
Biosynthetic threonine deaminase gene of tomato: isolation, structure, and upregulation in floral organs.
Proceedings of the National Academy of Sciences of the United States of America (1991)
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The gene encoding the plant biosynthetic threonine deaminase (Td; EC 4.2.1.16) has been cloned as a result of its unusual upregulation in tomato flowers. The Td gene of tomato encodes a polypeptide of 595 residues, the first 80 of which comprise a putative two-domain transit peptide cleaved at position 51. Comparison of the amino acid sequence with the corresponding enzymes from yeast and bacteria reveals a near identity of the important catalytic regions and greater than 40% overall similarity. The Td gene is unique in the tomato genome and its coding region is interrupted by eight introns. Its expression is greater than 50-fold higher in sepals and greater than 500-fold higher in the rest of the flower than in leaves or roots. Its overexpression, however, is strictly confined to the parenchymal cells of the floral organs. In young tomato leaves, the chloroplast-bound enzyme is found almost exclusively in the subepidermal spongy mesophyll cells.
Samach, A. Hareven, D. Gutfinger, T. Ken, Dror. Lifschitz, E.
Proceedings of the National Academy of Sciences of the United States of America.
1991.
88(7).
2678-82.
Molecular analysis of PHYA in wild-type and phytochrome A-deficient mutants of tomato.
The Plant journal : for cell and molecular biology (1998)
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Tomato (Lycopersicon esculentum Mill., recently redesignated Solanum lycopersicum L.), an agronomically important crop plant, has been adopted as a model species complementary to Arabidopsis in which to characterize the phytochrome family. Here we describe the cloning and molecular characterization of the gene encoding the apoprotein of phytochrome A in wild-type tomato and in the far-red-light-insensitive (fri1 and fri2) tomato mutants. The physical organization of this gene is similar to that of other angiosperm phytochromes with the four exons of the coding region interrupted by three introns. The pool of transcripts is heterogeneous due to multiple transcription start sites and to three modes of alternative splicing of the 5' leader. The leader in each alternative transcript carries multiple upstream open reading frames of considerable length. At the genomic level, both fri mutants share an identical base substitution which changes a consensus AG/ to TG/ at the 3' end of the intron between exons 1 and 2. This mutation leads to aberrant processing of the resultant pre-mRNA. While most mature transcripts retain the mutated intron, both cryptic splicing and exon skipping were also detected. Cryptic splicing occurred both upstream and downstream from the wild-type splice site. These observations are consistent with the hypothesis that exon definition in splicing of plant pre-mRNAs plays a secondary role to that of intron definition. Analysis of the frequency with which potentially functional phytochrome A apoproteins might be produced indicates that both fri1 and fri2 have less than 1% of the wild-type phytochrome A level.
Lazarova, GI. Kerckhoffs, LH. Brandstädter, J. Matsui, M. Kendrick, RE. Cordonnier, Pratt. Pratt, LH.
The Plant journal : for cell and molecular biology.
1998.
14(6).
653-62.
Physiological interactions of phytochromes A, B1 and B2 in the control of development in tomato.
The Plant journal : for cell and molecular biology (2000)
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The role of phytochrome B2 (phyB2) in the control of photomorphogenesis in tomato (Solanum lycopersicum L.) has been investigated using recently isolated mutants carrying lesions in the PHYB2 gene. The physiological interactions of phytochrome A (phyA), phytochrome B1 (phyB1) and phyB2 have also been explored, using an isogenic series of all possible mutant combinations and several different phenotypic characteristics. The loss of phyB2 had a negligible effect on the development of white-light-grown wild-type or phyA-deficient plants, but substantially enhanced the elongated pale phenotype of the phyB1 mutant. This redundancy was also seen in the control of de-etiolation under continuous red light (R), where the loss of phyB2 had no detectable effect in the presence of phyB1. Under continuous R, phyA action was largely independent of phyB1 and phyB2 in terms of the control of hypocotyl elongation, but antagonized the effects of phyB1 in the control of anthocyanin synthesis, indicating that photoreceptors may interact differently to control different traits. Irradiance response curves for anthocyanin synthesis revealed that phyB1 and phyB2 together mediate all the detectable response to high-irradiance R, and, surprisingly, that the phyA-dependent low-irradiance component is also strongly reduced in the phyB1 phyB2 double mutant. This is not associated with a reduction in phyA protein content or responsiveness to continuous far-red light (FR), suggesting that phyB1 and phyB2 specifically influence phyA activity under low-irradiance R. Finally, the phyA phyB1 phyB2 triple mutant showed strong residual responsiveness to supplementary daytime FR, indicating that at least one of the two remaining phytochromes plays a significant role in tomato photomorphogenesis.
Weller, JL. Schreuder, ME. Smith, H. Koornneef, M. Kendrick, RE.
The Plant journal : for cell and molecular biology.
2000.
24(3).
345-56.
Genetic dissection of blue-light sensing in tomato using mutants deficient in cryptochrome 1 and phytochromes A, B1 and B2.
The Plant journal : for cell and molecular biology (2001)
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Several novel allelic groups of tomato (Solanum lycopersicum L.) mutants with impaired photomorphogenesis have been identified after gamma-ray mutagenesis of phyA phyB1 double-mutant seed. Recessive mutants in one allelic group are characterized by retarded hook opening, increased hypocotyl elongation and reduced hypocotyl chlorophyll content under white light (WL). These mutants showed a specific impairment in response to blue light (BL) resulting from lesions in the gene encoding the BL receptor cryptochrome 1 (cry1). Phytochrome A and cry1 are identified as the major photoreceptors mediating BL-induced de-etiolation in tomato, and act under low and high irradiances, respectively. Phytochromes B1 and B2 also contribute to BL sensing, and the relative contribution of each of these four photoreceptors differs according to the light conditions and the specific process examined. Development of the phyA phyB1 phyB2 cry1 quadruple mutant under WL is severely impaired, and seedlings die before flowering. The quadruple mutant is essentially blind to BL, but experiments employing simultaneous irradiation with BL and red light suggest that an additional non-phytochrome photoreceptor may be active under short daily BL exposures. In addition to effects on de-etiolation, cry1 is active in older, WL-grown plants, and influences stem elongation, apical dominance, and the chlorophyll content of leaves and fruit. These results provide the first mutant-based characterization of cry1 in a plant species other than Arabidopsis.
Weller, JL. Perrotta, G. Schreuder, ME. van Tuinen, A. Koornneef, M. Giuliano, G. Kendrick, RE.
The Plant journal : for cell and molecular biology.
2001.
25(4).
427-40.
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