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Tomato locus invertase 7
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 |
>Solyc09g010090.2 SL2.50ch09:3480545..3484159
CATTCCCATGTTTCTTTTCTCCTTATCCAAAAAAAAAAAAATTAAAAAAAATTATTTAGATTAAATATCACTATCTGTCAAAGCCCAATCATTAAAATAAAATAAAAATTATGGATTATTCATCTAATAAAAGTTCTCGTTGGGCTTTGCCAGTTATCTTAGTTTGCTTTTTTGTAATTTTATTATCCAATAATGTTGTTTTTGCTTCTCATAAAGTTTTTATTCACTTGCAATCTCAAAATGCTGTAAATGTTCATACTGTTCATCGAACTGGTTATCATTTTCAGCCCGAAAAACATTGGATCAATGGTATGTTTATTCCTTTTTTTCGTCTTTTTTTTATATATATATATAATAAAACGAACATGTTGTGTTTAGTCTAGATTTAATACTAGTGATTTTTTTGACGCTAACAAATAATCGAGTACTCACCATTTGTCAATAGATACATTGACATGTATTAGTATGATTTTCGTCTTTTTTCGTTGTTTCTAATATTATTTAATCTTCACTAATTTTTTTTATTTTTCTTTGAATGATGTCTCTTGGTCAAAACATACAATAGATCCCAATGGTAAGTTAACTATATTTTTGTATATTTTTTAAATTTATTTTATTCTTATTATATAATATAGGGAAAAAAGGATAAATATATCCCCGAACTATTATAAATAGTATGCACCAGTATCCTCTGTTATACTTTAGAGACATTTTTGCCGTCAAAAAACTAGAACACATATATCCTTTATTTATCCCGATATCGAATCGATTGTACCACGAGTGAAGGGTATAGCTCTAGTTTTTGGACGGTAGGGCACCTAAAGTATGACGAAGAATATCTGCAAACCATTTACAATAGTTTTGGATATATTTGTGAACTAATGATGTTTGAATTCTTTTTTCATAGCACCAATGTATTTCAATGGAGTGTATCATCTATTCTACCAGTACAACCCAAATGGTTCAGTATGGGGTAACATTGTTTGGGCTCATTCCGTTTCAAAAGACTTGATCAATTGGATCAATTTAGAACCTGCAATTTACCCATCAAAGCCATTTGATCAATTCGGTACCTGGTCTGGATCAGCAACCATCCTACCTGGTAACAAGCCAGTCATCTTGTACACCGGAATCATAGATGCCAACCAAACCCAAGTCCAAAACTACGCAATCCCAGCTAACTTATCCGATCCATATCTCCGCGAATGGATCAAGCCAGACAACAACCCATTAATTATAGCCGATGAAAGTATCAACAAGACCAAGTTTCGTGACCCAACAACAGCATGGATGGGTAAAGACGGGCATTGGAGAATCGTCATGGGAAGTTTGAGGAAACACAGCAGGGGCTTAGCTATAATGTATAGGAGCAAAGACTTTATGAAATGGGTCAAGGCTAAACACCCACTTCACTCAACTAACGGCACTGGAAACTGGGAATGCCCTGATTTTTACCCAGTTTCATCGAAAGGTACTGATGGGTTGGATCAATACGGTGAGGAACACAAGTACGTGCTGAAGAACAGTATGGATCTTACTCGATTTGAGTATTATACACTTGGAAAATACGATACGAAAAAAGATAGGTACGTTCCAGATCCAGATTCTGTCGATAGTTTGAAGGGATTGAGACTCGATTACGGTAACTTCTACGCATCGAAGTCATTCTACGATCCAAGCAAAAATCGAAGGGTTATCTGGGGTTGGTCTAATGAATCAGATATATTCCCAGAGGATGATAATGCGAAGGGATGGGCTGGGATTCAATTGATTCCTCGTAAAGTATGGCTTGATCCAAGTGGTAAGCAGTTGGTTCAATGGCCTGTGGAGGAACTAGAAACCCTAAGAACTCAAAAGGTTCAATTGAGCAACAAGAAGATGAACAATGGGGAGAAGATTGAAGTTACAGGAATCACACCAGCACAGGTATATATATAGACTTTTTTATTTTTAATTTATTATTATTATTATTATTACTCTCTCCGTTTTCAAAAAAAAAATATCCCTATTTTCTTTTATAGTCTCTTTAATTTAAAAAGAATGATCTATTTTCTTTTTGGATAACCTTTTAACTTTGATTTTTCACGTGAAATGTTTAAAATCACGAGATTAAAGAGCATTTTGGTTACATTTGACATAACTGAAATTTAGAAACACAAGATTAAAGGACATTTTGGTACATTTGACATAACTTGAATTTAAAACCACATAATTAAAGGGCATTTTGGTACATTTGAATTAGAACATTTTGATACATTTGACATAACATGAATTTAGAACCACAAGATTAAAAAATCTTCTTTCTTTTTTCTTAAATTTCGTTCCAAGTCAAATTAGGTCATTCTTTTTTAATTACTCCCTCCGTCTAATTTTATGTAACAACATTTGACCGGACGGAGAGTTTTAAGAAATAAATAAAACACTTTGAGATGTGTACCAAATTGCTCTCCAAAAATACTCACTTTTCTCTCTCCTCATAAATGTATTTGAGTACTATTTTTAAAATTAAGCGAGTCCAACAAGAATAAAATAGAAACTGTACTTTTAAATATTTACCATATAAAAAAATGTGATTTTTTTTTTTTGAAAACTGATCAAAAAGAAAATGATATCACTCGACGATGAAAGTGTTTAATAATGAAAAAACATGACAGGCTGATGTTGAAGTGACATTCTCATTTGCAAGTTTGGATAAGGCAGAGTCATTTGATCCTAAATGGAATGATATGTATGCACAAGATGTTTGTGGACTCAAGGGTGCAGATGTTCAAGGTGGGCTTGGGCCATTTGGTCTTGCTACATTAGCTACTGAAAACTTGGAAGAAAACACACCGGTTTTCTTCCGAGTTTTCAAAGCACAGCAAAACTACAAGGTTCTCTTGTGTTCTGACGCTAAAAGGTACTACTTATTGAATTTTTAACTTGTTGGTAACGTTTTCGACGGTATAATATCGAGAAGTTGAGAAATTGACAAATCTTTTGTTTTATGTCTGATAGGTCAACTCTTAAGTTCAATGAAACAATGTACAAAGCTTCATTTGCTGGATTTGTTGATGTTGATTTGGCTGACAAGAAATTGTCACTCAGAAGCTTGGTAACTTCTCTTTCTATCGTTAATCAAAAATCTAAACGAACATTTGAATCTAAACTATTGAAATTCTTTTTGTAGATTGATAATTCAGTTATAGAAACTTTTGGTGCTGGTGGAAAGACATGTATAACATCGAGGGTTTATCCAACATTGGCAATTAACGACGAGGCACATTTATTCGCGTTTAACAACGGAACGGAGCCAATCACAATTGAGAGTTTGGATGCATGGAGTATGGGCAAAGCTAAGATACAATATTGAAGAAAAAAAAAAGAATAAGGAGAAAGGAACTATGGTAAAAGGGGGAAATATGAGATTTTGATGGACATATAAGAGTTTGTTATTTTGATATTTCAACTCTATTTTTTTTGTTTATCAAATTAGATATCCCTCGAGTCAAAAAAAATGTATATAGATTTATCCTCTATTTTCAATTTATGACAATAATGCTATGTTTTTGCTTTCAAAATTGTTGTTTTCGTTATATTATTTGTTCAATCGTGTATTTATTTTATTGATATATC
CATTCCCATGTTTCTTTTCTCCTTATCCAAAAAAAAAAAAATTAAAAAAAATTATTTAGATTAAATATCACTATCTGTCAAAGCCCAATCATTAAAATAAAATAAAAATTATGGATTATTCATCTAATAAAAGTTCTCGTTGGGCTTTGCCAGTTATCTTAGTTTGCTTTTTTGTAATTTTATTATCCAATAATGTTGTTTTTGCTTCTCATAAAGTTTTTATTCACTTGCAATCTCAAAATGCTGTAAATGTTCATACTGTTCATCGAACTGGTTATCATTTTCAGCCCGAAAAACATTGGATCAATGGTATGTTTATTCCTTTTTTTCGTCTTTTTTTTATATATATATATAATAAAACGAACATGTTGTGTTTAGTCTAGATTTAATACTAGTGATTTTTTTGACGCTAACAAATAATCGAGTACTCACCATTTGTCAATAGATACATTGACATGTATTAGTATGATTTTCGTCTTTTTTCGTTGTTTCTAATATTATTTAATCTTCACTAATTTTTTTTATTTTTCTTTGAATGATGTCTCTTGGTCAAAACATACAATAGATCCCAATGGTAAGTTAACTATATTTTTGTATATTTTTTAAATTTATTTTATTCTTATTATATAATATAGGGAAAAAAGGATAAATATATCCCCGAACTATTATAAATAGTATGCACCAGTATCCTCTGTTATACTTTAGAGACATTTTTGCCGTCAAAAAACTAGAACACATATATCCTTTATTTATCCCGATATCGAATCGATTGTACCACGAGTGAAGGGTATAGCTCTAGTTTTTGGACGGTAGGGCACCTAAAGTATGACGAAGAATATCTGCAAACCATTTACAATAGTTTTGGATATATTTGTGAACTAATGATGTTTGAATTCTTTTTTCATAGCACCAATGTATTTCAATGGAGTGTATCATCTATTCTACCAGTACAACCCAAATGGTTCAGTATGGGGTAACATTGTTTGGGCTCATTCCGTTTCAAAAGACTTGATCAATTGGATCAATTTAGAACCTGCAATTTACCCATCAAAGCCATTTGATCAATTCGGTACCTGGTCTGGATCAGCAACCATCCTACCTGGTAACAAGCCAGTCATCTTGTACACCGGAATCATAGATGCCAACCAAACCCAAGTCCAAAACTACGCAATCCCAGCTAACTTATCCGATCCATATCTCCGCGAATGGATCAAGCCAGACAACAACCCATTAATTATAGCCGATGAAAGTATCAACAAGACCAAGTTTCGTGACCCAACAACAGCATGGATGGGTAAAGACGGGCATTGGAGAATCGTCATGGGAAGTTTGAGGAAACACAGCAGGGGCTTAGCTATAATGTATAGGAGCAAAGACTTTATGAAATGGGTCAAGGCTAAACACCCACTTCACTCAACTAACGGCACTGGAAACTGGGAATGCCCTGATTTTTACCCAGTTTCATCGAAAGGTACTGATGGGTTGGATCAATACGGTGAGGAACACAAGTACGTGCTGAAGAACAGTATGGATCTTACTCGATTTGAGTATTATACACTTGGAAAATACGATACGAAAAAAGATAGGTACGTTCCAGATCCAGATTCTGTCGATAGTTTGAAGGGATTGAGACTCGATTACGGTAACTTCTACGCATCGAAGTCATTCTACGATCCAAGCAAAAATCGAAGGGTTATCTGGGGTTGGTCTAATGAATCAGATATATTCCCAGAGGATGATAATGCGAAGGGATGGGCTGGGATTCAATTGATTCCTCGTAAAGTATGGCTTGATCCAAGTGGTAAGCAGTTGGTTCAATGGCCTGTGGAGGAACTAGAAACCCTAAGAACTCAAAAGGTTCAATTGAGCAACAAGAAGATGAACAATGGGGAGAAGATTGAAGTTACAGGAATCACACCAGCACAGGTATATATATAGACTTTTTTATTTTTAATTTATTATTATTATTATTATTACTCTCTCCGTTTTCAAAAAAAAAATATCCCTATTTTCTTTTATAGTCTCTTTAATTTAAAAAGAATGATCTATTTTCTTTTTGGATAACCTTTTAACTTTGATTTTTCACGTGAAATGTTTAAAATCACGAGATTAAAGAGCATTTTGGTTACATTTGACATAACTGAAATTTAGAAACACAAGATTAAAGGACATTTTGGTACATTTGACATAACTTGAATTTAAAACCACATAATTAAAGGGCATTTTGGTACATTTGAATTAGAACATTTTGATACATTTGACATAACATGAATTTAGAACCACAAGATTAAAAAATCTTCTTTCTTTTTTCTTAAATTTCGTTCCAAGTCAAATTAGGTCATTCTTTTTTAATTACTCCCTCCGTCTAATTTTATGTAACAACATTTGACCGGACGGAGAGTTTTAAGAAATAAATAAAACACTTTGAGATGTGTACCAAATTGCTCTCCAAAAATACTCACTTTTCTCTCTCCTCATAAATGTATTTGAGTACTATTTTTAAAATTAAGCGAGTCCAACAAGAATAAAATAGAAACTGTACTTTTAAATATTTACCATATAAAAAAATGTGATTTTTTTTTTTTGAAAACTGATCAAAAAGAAAATGATATCACTCGACGATGAAAGTGTTTAATAATGAAAAAACATGACAGGCTGATGTTGAAGTGACATTCTCATTTGCAAGTTTGGATAAGGCAGAGTCATTTGATCCTAAATGGAATGATATGTATGCACAAGATGTTTGTGGACTCAAGGGTGCAGATGTTCAAGGTGGGCTTGGGCCATTTGGTCTTGCTACATTAGCTACTGAAAACTTGGAAGAAAACACACCGGTTTTCTTCCGAGTTTTCAAAGCACAGCAAAACTACAAGGTTCTCTTGTGTTCTGACGCTAAAAGGTACTACTTATTGAATTTTTAACTTGTTGGTAACGTTTTCGACGGTATAATATCGAGAAGTTGAGAAATTGACAAATCTTTTGTTTTATGTCTGATAGGTCAACTCTTAAGTTCAATGAAACAATGTACAAAGCTTCATTTGCTGGATTTGTTGATGTTGATTTGGCTGACAAGAAATTGTCACTCAGAAGCTTGGTAACTTCTCTTTCTATCGTTAATCAAAAATCTAAACGAACATTTGAATCTAAACTATTGAAATTCTTTTTGTAGATTGATAATTCAGTTATAGAAACTTTTGGTGCTGGTGGAAAGACATGTATAACATCGAGGGTTTATCCAACATTGGCAATTAACGACGAGGCACATTTATTCGCGTTTAACAACGGAACGGAGCCAATCACAATTGAGAGTTTGGATGCATGGAGTATGGGCAAAGCTAAGATACAATATTGAAGAAAAAAAAAAGAATAAGGAGAAAGGAACTATGGTAAAAGGGGGAAATATGAGATTTTGATGGACATATAAGAGTTTGTTATTTTGATATTTCAACTCTATTTTTTTTGTTTATCAAATTAGATATCCCTCGAGTCAAAAAAAATGTATATAGATTTATCCTCTATTTTCAATTTATGACAATAATGCTATGTTTTTGCTTTCAAAATTGTTGTTTTCGTTATATTATTTGTTCAATCGTGTATTTATTTTATTGATATATC
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![]() ![]() | terms associated with this mRNA |
![]() ![]() | spliced cDNA sequence, including UTRs |
>Solyc09g010090.2.1 Beta-fructofuranosidase insoluble isoenzyme 2 (AHRD V1 **-- B6U1H5_MAIZE); contains Interpro domain(s) IPR018053 Glycoside hydrolase, family 32, active site IPR013148 Glycosyl hydrolases family 32, N-terminal IPR001362 Glycoside hydrolase, family 32
CATTCCCATGTTTCTTTTCTCCTTATCCAAAAAAAAAAAAATTAAAAAAAATTATTTAGATTAAATATCACTATCTGTCAAAGCCCAATCATTAAAATAAAATAAAAATTATGGATTATTCATCTAATAAAAGTTCTCGTTGGGCTTTGCCAGTTATCTTAGTTTGCTTTTTTGTAATTTTATTATCCAATAATGTTGTTTTTGCTTCTCATAAAGTTTTTATTCACTTGCAATCTCAAAATGCTGTAAATGTTCATACTGTTCATCGAACTGGTTATCATTTTCAGCCCGAAAAACATTGGATCAATGATCCCAATGCACCAATGTATTTCAATGGAGTGTATCATCTATTCTACCAGTACAACCCAAATGGTTCAGTATGGGGTAACATTGTTTGGGCTCATTCCGTTTCAAAAGACTTGATCAATTGGATCAATTTAGAACCTGCAATTTACCCATCAAAGCCATTTGATCAATTCGGTACCTGGTCTGGATCAGCAACCATCCTACCTGGTAACAAGCCAGTCATCTTGTACACCGGAATCATAGATGCCAACCAAACCCAAGTCCAAAACTACGCAATCCCAGCTAACTTATCCGATCCATATCTCCGCGAATGGATCAAGCCAGACAACAACCCATTAATTATAGCCGATGAAAGTATCAACAAGACCAAGTTTCGTGACCCAACAACAGCATGGATGGGTAAAGACGGGCATTGGAGAATCGTCATGGGAAGTTTGAGGAAACACAGCAGGGGCTTAGCTATAATGTATAGGAGCAAAGACTTTATGAAATGGGTCAAGGCTAAACACCCACTTCACTCAACTAACGGCACTGGAAACTGGGAATGCCCTGATTTTTACCCAGTTTCATCGAAAGGTACTGATGGGTTGGATCAATACGGTGAGGAACACAAGTACGTGCTGAAGAACAGTATGGATCTTACTCGATTTGAGTATTATACACTTGGAAAATACGATACGAAAAAAGATAGGTACGTTCCAGATCCAGATTCTGTCGATAGTTTGAAGGGATTGAGACTCGATTACGGTAACTTCTACGCATCGAAGTCATTCTACGATCCAAGCAAAAATCGAAGGGTTATCTGGGGTTGGTCTAATGAATCAGATATATTCCCAGAGGATGATAATGCGAAGGGATGGGCTGGGATTCAATTGATTCCTCGTAAAGTATGGCTTGATCCAAGTGGTAAGCAGTTGGTTCAATGGCCTGTGGAGGAACTAGAAACCCTAAGAACTCAAAAGGTTCAATTGAGCAACAAGAAGATGAACAATGGGGAGAAGATTGAAGTTACAGGAATCACACCAGCACAGGCTGATGTTGAAGTGACATTCTCATTTGCAAGTTTGGATAAGGCAGAGTCATTTGATCCTAAATGGAATGATATGTATGCACAAGATGTTTGTGGACTCAAGGGTGCAGATGTTCAAGGTGGGCTTGGGCCATTTGGTCTTGCTACATTAGCTACTGAAAACTTGGAAGAAAACACACCGGTTTTCTTCCGAGTTTTCAAAGCACAGCAAAACTACAAGGTTCTCTTGTGTTCTGACGCTAAAAGGTCAACTCTTAAGTTCAATGAAACAATGTACAAAGCTTCATTTGCTGGATTTGTTGATGTTGATTTGGCTGACAAGAAATTGTCACTCAGAAGCTTGATTGATAATTCAGTTATAGAAACTTTTGGTGCTGGTGGAAAGACATGTATAACATCGAGGGTTTATCCAACATTGGCAATTAACGACGAGGCACATTTATTCGCGTTTAACAACGGAACGGAGCCAATCACAATTGAGAGTTTGGATGCATGGAGTATGGGCAAAGCTAAGATACAATATTGAAGAAAAAAAAAAGAATAAGGAGAAAGGAACTATGGTAAAAGGGGGAAATATGAGATTTTGATGGACATATAAGAGTTTGTTATTTTGATATTTCAACTCTATTTTTTTTGTTTATCAAATTAGATATCCCTCGAGTCAAAAAAAATGTATATAGATTTATCCTCTATTTTCAATTTATGACAATAATGCTATGTTTTTGCTTTCAAAATTGTTGTTTTCGTTATATTATTTGTTCAATCGTGTATTTATTTTATTGATATATC
CATTCCCATGTTTCTTTTCTCCTTATCCAAAAAAAAAAAAATTAAAAAAAATTATTTAGATTAAATATCACTATCTGTCAAAGCCCAATCATTAAAATAAAATAAAAATTATGGATTATTCATCTAATAAAAGTTCTCGTTGGGCTTTGCCAGTTATCTTAGTTTGCTTTTTTGTAATTTTATTATCCAATAATGTTGTTTTTGCTTCTCATAAAGTTTTTATTCACTTGCAATCTCAAAATGCTGTAAATGTTCATACTGTTCATCGAACTGGTTATCATTTTCAGCCCGAAAAACATTGGATCAATGATCCCAATGCACCAATGTATTTCAATGGAGTGTATCATCTATTCTACCAGTACAACCCAAATGGTTCAGTATGGGGTAACATTGTTTGGGCTCATTCCGTTTCAAAAGACTTGATCAATTGGATCAATTTAGAACCTGCAATTTACCCATCAAAGCCATTTGATCAATTCGGTACCTGGTCTGGATCAGCAACCATCCTACCTGGTAACAAGCCAGTCATCTTGTACACCGGAATCATAGATGCCAACCAAACCCAAGTCCAAAACTACGCAATCCCAGCTAACTTATCCGATCCATATCTCCGCGAATGGATCAAGCCAGACAACAACCCATTAATTATAGCCGATGAAAGTATCAACAAGACCAAGTTTCGTGACCCAACAACAGCATGGATGGGTAAAGACGGGCATTGGAGAATCGTCATGGGAAGTTTGAGGAAACACAGCAGGGGCTTAGCTATAATGTATAGGAGCAAAGACTTTATGAAATGGGTCAAGGCTAAACACCCACTTCACTCAACTAACGGCACTGGAAACTGGGAATGCCCTGATTTTTACCCAGTTTCATCGAAAGGTACTGATGGGTTGGATCAATACGGTGAGGAACACAAGTACGTGCTGAAGAACAGTATGGATCTTACTCGATTTGAGTATTATACACTTGGAAAATACGATACGAAAAAAGATAGGTACGTTCCAGATCCAGATTCTGTCGATAGTTTGAAGGGATTGAGACTCGATTACGGTAACTTCTACGCATCGAAGTCATTCTACGATCCAAGCAAAAATCGAAGGGTTATCTGGGGTTGGTCTAATGAATCAGATATATTCCCAGAGGATGATAATGCGAAGGGATGGGCTGGGATTCAATTGATTCCTCGTAAAGTATGGCTTGATCCAAGTGGTAAGCAGTTGGTTCAATGGCCTGTGGAGGAACTAGAAACCCTAAGAACTCAAAAGGTTCAATTGAGCAACAAGAAGATGAACAATGGGGAGAAGATTGAAGTTACAGGAATCACACCAGCACAGGCTGATGTTGAAGTGACATTCTCATTTGCAAGTTTGGATAAGGCAGAGTCATTTGATCCTAAATGGAATGATATGTATGCACAAGATGTTTGTGGACTCAAGGGTGCAGATGTTCAAGGTGGGCTTGGGCCATTTGGTCTTGCTACATTAGCTACTGAAAACTTGGAAGAAAACACACCGGTTTTCTTCCGAGTTTTCAAAGCACAGCAAAACTACAAGGTTCTCTTGTGTTCTGACGCTAAAAGGTCAACTCTTAAGTTCAATGAAACAATGTACAAAGCTTCATTTGCTGGATTTGTTGATGTTGATTTGGCTGACAAGAAATTGTCACTCAGAAGCTTGATTGATAATTCAGTTATAGAAACTTTTGGTGCTGGTGGAAAGACATGTATAACATCGAGGGTTTATCCAACATTGGCAATTAACGACGAGGCACATTTATTCGCGTTTAACAACGGAACGGAGCCAATCACAATTGAGAGTTTGGATGCATGGAGTATGGGCAAAGCTAAGATACAATATTGAAGAAAAAAAAAAGAATAAGGAGAAAGGAACTATGGTAAAAGGGGGAAATATGAGATTTTGATGGACATATAAGAGTTTGTTATTTTGATATTTCAACTCTATTTTTTTTGTTTATCAAATTAGATATCCCTCGAGTCAAAAAAAATGTATATAGATTTATCCTCTATTTTCAATTTATGACAATAATGCTATGTTTTTGCTTTCAAAATTGTTGTTTTCGTTATATTATTTGTTCAATCGTGTATTTATTTTATTGATATATC
![]() ![]() | translated polypeptide sequence |
>Solyc09g010090.2.1 Beta-fructofuranosidase insoluble isoenzyme 2 (AHRD V1 **-- B6U1H5_MAIZE); contains Interpro domain(s) IPR018053 Glycoside hydrolase, family 32, active site IPR013148 Glycosyl hydrolases family 32, N-terminal IPR001362 Glycoside hydrolase, family 32
MDYSSNKSSRWALPVILVCFFVILLSNNVVFASHKVFIHLQSQNAVNVHTVHRTGYHFQPEKHWINDPNAPMYFNGVYHLFYQYNPNGSVWGNIVWAHSVSKDLINWINLEPAIYPSKPFDQFGTWSGSATILPGNKPVILYTGIIDANQTQVQNYAIPANLSDPYLREWIKPDNNPLIIADESINKTKFRDPTTAWMGKDGHWRIVMGSLRKHSRGLAIMYRSKDFMKWVKAKHPLHSTNGTGNWECPDFYPVSSKGTDGLDQYGEEHKYVLKNSMDLTRFEYYTLGKYDTKKDRYVPDPDSVDSLKGLRLDYGNFYASKSFYDPSKNRRVIWGWSNESDIFPEDDNAKGWAGIQLIPRKVWLDPSGKQLVQWPVEELETLRTQKVQLSNKKMNNGEKIEVTGITPAQADVEVTFSFASLDKAESFDPKWNDMYAQDVCGLKGADVQGGLGPFGLATLATENLEENTPVFFRVFKAQQNYKVLLCSDAKRSTLKFNETMYKASFAGFVDVDLADKKLSLRSLIDNSVIETFGAGGKTCITSRVYPTLAINDEAHLFAFNNGTEPITIESLDAWSMGKAKIQY*
MDYSSNKSSRWALPVILVCFFVILLSNNVVFASHKVFIHLQSQNAVNVHTVHRTGYHFQPEKHWINDPNAPMYFNGVYHLFYQYNPNGSVWGNIVWAHSVSKDLINWINLEPAIYPSKPFDQFGTWSGSATILPGNKPVILYTGIIDANQTQVQNYAIPANLSDPYLREWIKPDNNPLIIADESINKTKFRDPTTAWMGKDGHWRIVMGSLRKHSRGLAIMYRSKDFMKWVKAKHPLHSTNGTGNWECPDFYPVSSKGTDGLDQYGEEHKYVLKNSMDLTRFEYYTLGKYDTKKDRYVPDPDSVDSLKGLRLDYGNFYASKSFYDPSKNRRVIWGWSNESDIFPEDDNAKGWAGIQLIPRKVWLDPSGKQLVQWPVEELETLRTQKVQLSNKKMNNGEKIEVTGITPAQADVEVTFSFASLDKAESFDPKWNDMYAQDVCGLKGADVQGGLGPFGLATLATENLEENTPVFFRVFKAQQNYKVLLCSDAKRSTLKFNETMYKASFAGFVDVDLADKKLSLRSLIDNSVIETFGAGGKTCITSRVYPTLAINDEAHLFAFNNGTEPITIESLDAWSMGKAKIQY*
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![]() ![]() | [Associate new unigene] |
Unigene ID:
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![]() ![]() | [Associate new genbank sequence] |
Other genome matches | None |
![]() ![]() | [Associate publication] [Matching publications] |
Regulation and tissue-specific distribution of mRNAs for three extracellular invertase isoenzymes of tomato suggests an important function in establishing and maintaining sink metabolism.
Plant physiology (1997)
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The aim of the present study was to gain insight into the contribution of extracellular invertases for sink metabolism in tomato (Lycopersicon esculentum L.). The present study shows that extracellular invertase isoenzymes are encoded by a gene family comprising four members: Lin5, Lin6, Lin7, and Lin8. The regulation of mRNA levels by internal and external signals and the distribution in sink and source tissues has been determined and compared with mRNA levels of the intracellular sucrose (Suc)-cleaving enzymes Suc synthase and vacuolar invertase. The specific regulation of Lin5, Lin6, and Lin7 suggests an important function of apoplastic cleavage of Suc by cell wall-bound invertase in establishing and maintaining sink metabolism. Lin6 is expressed under conditions that require a high carbohydrate supply. The corresponding mRNA shows a sink tissue-specific distribution and the concentration is elevated by stress-related stimuli, by the growth-promoting phytohormone zeatin, and in response to the induction of heterotrophic metabolism. The expression of Lin5 and Lin7 in gynoecia and stamens, respectively, suggests an important function in supplying carbohydrates to these flower organs, whereas the Lin7 mRNA was found to be present exclusively in this specific sink organ.
Godt, DE. Roitsch, T.
Plant physiology.
1997.
115(1).
273-82.
Functional divergence of a syntenic invertase gene family in tomato, potato, and Arabidopsis.
Plant physiology (2003)
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Comparative analysis of complex developmental pathways depends on our ability to resolve the function of members of gene families across taxonomic groups. LIN5, which belongs to a small gene family of apoplastic invertases in tomato (Lycopersicon esculentum), is a quantitative trait locus that modifies fruit sugar composition. We have compared the genomic organization and expression of this gene family in the two distantly related species: tomato and Arabidopsis. Invertase family members reside on segmental duplications in the near-colinear genomes of tomato and potato (Solanum tuberosum). These chromosomal segments are syntenically duplicated in the model plant Arabidopsis. On the basis of phylogenetic analysis of genes in the microsyntenic region, we conclude that these segmental duplications arose independently after the separation of the tomato/potato clade from Arabidopsis. Rapid regulatory divergence is characteristic of the invertase family. Interestingly, although the processes of gene duplication and specialization of expression occurred separately in the two species, synteny-based orthologs from both clades acquired similar organ-specific expression. This similar expression pattern of the genes is evidence of comparable evolutionary constraints (parallel evolution) rather than of functional orthology. The observation that functional orthology cannot be identified through analysis of expression similarity highlights the caution that needs to be exercised in extrapolating developmental networks from a model organism.
Fridman, E. Zamir, D.
Plant physiology.
2003.
131(2).
603-9.
Cell wall-bound invertase limits sucrose export and is involved in symptom development and inhibition of photosynthesis during compatible interaction between tomato and Xanthomonas campestris pv vesicatoria.
Plant physiology (2009)
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Cell wall-bound invertase (cw-Inv) plays an important role in carbohydrate partitioning and regulation of sink-source interaction. There is increasing evidence that pathogens interfere with sink-source interaction, and induction of cw-Inv activity has frequently been shown in response to pathogen infection. To investigate the role of cw-Inv, transgenic tomato (Solanum lycopersicum) plants silenced for the major leaf cw-Inv isoforms were generated and analyzed during normal growth and during the compatible interaction with Xanthomonas campestris pv vesicatoria. Under normal growth conditions, activities of sucrolytic enzymes as well as photosynthesis and respiration were unaltered in the transgenic plants compared with wild-type plants. However, starch levels of source leaves were strongly reduced, which was most likely caused by an enhanced sucrose exudation rate. Following X. campestris pv vesicatoria infection, cw-Inv-silenced plants showed an increased sucrose to hexose ratio in the apoplast of leaves. Symptom development, inhibition of photosynthesis, and expression of photosynthetic genes were clearly delayed in transgenic plants compared with wild-type plants. In addition, induction of senescence-associated and pathogenesis-related genes observed in infected wild-type plants was abolished in cw-Inv-silenced tomato lines. These changes were not associated with decreased bacterial growth. In conclusion, cw-Inv restricts carbon export from source leaves and regulates the sucrose to hexose ratio in the apoplast. Furthermore, an increased apoplastic hexose to sucrose ratio can be linked to inhibition of photosynthesis and induction of pathogenesis-related gene expression but does not significantly influence bacterial growth. Indirectly, bacteria may benefit from low invertase activity, since the longevity of host cells is raised and basal defense might be dampened.
Kocal, N. Sonnewald, U. Sonnewald, S.
Plant physiology.
2009.
148(3).
1523-36.
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