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Tomato locus alternative oxidase 2
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 |
>Solyc01g105220.2 SL2.50ch01:93463582..93461078 (sequence from reverse strand)
TATCGGAAAGATGAATCAGTTGCTGGTGAGGTTGGTGATGAGGCGGTTAGTTTCTGGTGGTACCCGTAACGGTTGCATATCGTCTTCGTCAGCGGCGGTAATGTTCAGAGAAGTTCATAAGCCGAGTAGTGAGTCAGTTGTGATGATGAGTAGCCAGAGGCTGAGATTCTCTGGTCGGTGGTGGAGGATGATGTGCTCCACTACATCGAAGAATTCAACGAAGTCCTCTGACGTGAGGAAGGAGGACGAGAAATTGAGTGGTGATTCTGTGGAGAAAATGGAAGGGGAAGACGAAGTAGCTCTTTCCAGTTATTGGGGAGTCTCGAGGCCAAAAATTACGAAAGAAGATGGCTCCGTGTGGCCTTGGAACAGCTTCATGGTATGTGAATTATTTTATCAGTATGGGTAAGTGTAGACCTTGTGTTTCAAACATATAGAAGACAATAATTCGGAGGTTCTTCTAGATAGAGCTTTAATTTCCTGGTAGTAAAGCTGGATGACTATTGCTTTCTTTCTGCCTGCTTTTCATGTCTGTTTACTCTGTTTCAATTACCGGTTTATGTCTTGGTGGAATGCATCACTGGTTGGTGAACTGACACACTGACCCTACATAGTCGATGTGGACATCAAACACCCGCGCACACCCAAGACTAGACATTTGGAGTGTGGACAATAGAACTTGGGGCCTAATATCGGTAAACTAAGAGTTGTGACTTGTGTGATTCTTGATACCAGGATAAAAATGGACCTTCAGTCTACCTCAATCCCAAAACCTAGCAGCTAAATTTGTGGGACTTCTGATATTATTTACTCTTTGAGGGTTGGAGTAAGATAATCTTATTTCAATGTTTGGTGACGTTTCAGTAGTAGTAACTAGTAAATCACTGTTGTAGCTGGAGCTGTTTCATTCTTGTCTATTCTGATCTTTAAATGGAGATTATTTAGGGAATCTTGCACATGTTAATTGAAACTTACTTGTGATCTCTCTTCTTTTTTTTTTGTCCCTGGGTACAAGATGTCTGTTTTTTTACTTGCTCAAAAAGAAAAAAGAAGTCTCGTTCTTTTTTTTAATTTATATATATTTTGTTACCGCTTGTAGCCATGGGAGACATATCAGGCTGACCTGTCGATCGATCTAAGCAAGCACCATGTGCCCAAGACATTCCTTGATAAGGTTGCTTATTGGACAGTGAAACTTCTCAGGATTCCAACTGATTTATTTTTTAAGGTTTGCTTTCCACTCACCTTTGCAAGGAATATGTTGTCTTAATCAAATTAAATGGCTAATTTGTACTATTACTTCTTTAGACACCATGCTCTCCTATGTCTTCTTGGTCTCGATGTGGCCATGATGTTCATACTACTCGACAGCTTGTACCAGCAATTTTTTTGGCGAATAGAAATGCTAAGAAATGGATTCCTTTTCTGCTAGTTCTTCGGTTTCTTCATAAATGTAACCAAAGTGGTCAATGTATGTGATGAAATACTGAGCAGGGATGTAAGGGAGGTGTGCCCTTTACATCATCCTTCCCTAGTGGTACATCTTTTAGCGAGAGGAAACACATGCCAAAATCACAACAGTTATTGCTTCATGGACTACCGTACCTAAGAGTAATGGAAATATGTGTAAACAGGAAAACTTCTCTGCCGTGGACACTACAATGTGAATCCTTGAGTTGTTTTTATATCAAATACCTTCTTGTCACCATTGATTCTAATCTCTGATTTCTATCGCAGAAAAAATATGGTTGTCGTGCAATGATGTTGGAAACAGTGGCAGGTGTACCTGGAATGGTTGGAGGTATGCTGTTACATCTGAGGTCATTGCGCAAGTTCGAGCACAGTGGTGGTTGGATAAAAGCATTACTTGAAGAAGCTGAGAATGAGAGAATGCATCTGATGACTATGGTGGAGCTAGTACAACCTAAATGGTACGAGAGGTTGTTAGTTATTGCTGTGCAGGGAGTCTTTTTCAATTTTTACTCTGTGCTTTACTTGCTGTCCCCCAAGCTTGCACACAGAGTTGTTGGTTATCTGGAAGAGGAGGCTATACACTCTTATACATTGTATCTTAATGATATTGATCGTGGTGAAATTGAAAATGTTCCTGCTCCTGCAATAGCAATTGACTACTGGAGACTGCCTAAGGATGCAACTCTAAAGGATGTTATTACTGTCATCCGTGCTGATGAAGCTCATCATAGAGATGTTAACCATTTCGCATCTGTAAGTGTTCATCTTCTGTTTTCTCAGATCAATCTTAAACATCATTGCGAATTTCCACATTTTGAGCTGGCAATTTTTTCTAAAGGTTTGCTTGTGCAGAAGTTATTGATGCAACTGATTTAGTTATTGCTCATGTTATTCAGGATATCCATTATCAAGGAAAGAAATTGCAGGAGGCAGCTGCTCCTATTGGTTACCATTAAATCTTCATATTATTCTGCTTTGCATAGCTTCTTTTTTTTTTTGTGTGTGTATATATATGTGTGTGTGTGTGTGTGT
TATCGGAAAGATGAATCAGTTGCTGGTGAGGTTGGTGATGAGGCGGTTAGTTTCTGGTGGTACCCGTAACGGTTGCATATCGTCTTCGTCAGCGGCGGTAATGTTCAGAGAAGTTCATAAGCCGAGTAGTGAGTCAGTTGTGATGATGAGTAGCCAGAGGCTGAGATTCTCTGGTCGGTGGTGGAGGATGATGTGCTCCACTACATCGAAGAATTCAACGAAGTCCTCTGACGTGAGGAAGGAGGACGAGAAATTGAGTGGTGATTCTGTGGAGAAAATGGAAGGGGAAGACGAAGTAGCTCTTTCCAGTTATTGGGGAGTCTCGAGGCCAAAAATTACGAAAGAAGATGGCTCCGTGTGGCCTTGGAACAGCTTCATGGTATGTGAATTATTTTATCAGTATGGGTAAGTGTAGACCTTGTGTTTCAAACATATAGAAGACAATAATTCGGAGGTTCTTCTAGATAGAGCTTTAATTTCCTGGTAGTAAAGCTGGATGACTATTGCTTTCTTTCTGCCTGCTTTTCATGTCTGTTTACTCTGTTTCAATTACCGGTTTATGTCTTGGTGGAATGCATCACTGGTTGGTGAACTGACACACTGACCCTACATAGTCGATGTGGACATCAAACACCCGCGCACACCCAAGACTAGACATTTGGAGTGTGGACAATAGAACTTGGGGCCTAATATCGGTAAACTAAGAGTTGTGACTTGTGTGATTCTTGATACCAGGATAAAAATGGACCTTCAGTCTACCTCAATCCCAAAACCTAGCAGCTAAATTTGTGGGACTTCTGATATTATTTACTCTTTGAGGGTTGGAGTAAGATAATCTTATTTCAATGTTTGGTGACGTTTCAGTAGTAGTAACTAGTAAATCACTGTTGTAGCTGGAGCTGTTTCATTCTTGTCTATTCTGATCTTTAAATGGAGATTATTTAGGGAATCTTGCACATGTTAATTGAAACTTACTTGTGATCTCTCTTCTTTTTTTTTTGTCCCTGGGTACAAGATGTCTGTTTTTTTACTTGCTCAAAAAGAAAAAAGAAGTCTCGTTCTTTTTTTTAATTTATATATATTTTGTTACCGCTTGTAGCCATGGGAGACATATCAGGCTGACCTGTCGATCGATCTAAGCAAGCACCATGTGCCCAAGACATTCCTTGATAAGGTTGCTTATTGGACAGTGAAACTTCTCAGGATTCCAACTGATTTATTTTTTAAGGTTTGCTTTCCACTCACCTTTGCAAGGAATATGTTGTCTTAATCAAATTAAATGGCTAATTTGTACTATTACTTCTTTAGACACCATGCTCTCCTATGTCTTCTTGGTCTCGATGTGGCCATGATGTTCATACTACTCGACAGCTTGTACCAGCAATTTTTTTGGCGAATAGAAATGCTAAGAAATGGATTCCTTTTCTGCTAGTTCTTCGGTTTCTTCATAAATGTAACCAAAGTGGTCAATGTATGTGATGAAATACTGAGCAGGGATGTAAGGGAGGTGTGCCCTTTACATCATCCTTCCCTAGTGGTACATCTTTTAGCGAGAGGAAACACATGCCAAAATCACAACAGTTATTGCTTCATGGACTACCGTACCTAAGAGTAATGGAAATATGTGTAAACAGGAAAACTTCTCTGCCGTGGACACTACAATGTGAATCCTTGAGTTGTTTTTATATCAAATACCTTCTTGTCACCATTGATTCTAATCTCTGATTTCTATCGCAGAAAAAATATGGTTGTCGTGCAATGATGTTGGAAACAGTGGCAGGTGTACCTGGAATGGTTGGAGGTATGCTGTTACATCTGAGGTCATTGCGCAAGTTCGAGCACAGTGGTGGTTGGATAAAAGCATTACTTGAAGAAGCTGAGAATGAGAGAATGCATCTGATGACTATGGTGGAGCTAGTACAACCTAAATGGTACGAGAGGTTGTTAGTTATTGCTGTGCAGGGAGTCTTTTTCAATTTTTACTCTGTGCTTTACTTGCTGTCCCCCAAGCTTGCACACAGAGTTGTTGGTTATCTGGAAGAGGAGGCTATACACTCTTATACATTGTATCTTAATGATATTGATCGTGGTGAAATTGAAAATGTTCCTGCTCCTGCAATAGCAATTGACTACTGGAGACTGCCTAAGGATGCAACTCTAAAGGATGTTATTACTGTCATCCGTGCTGATGAAGCTCATCATAGAGATGTTAACCATTTCGCATCTGTAAGTGTTCATCTTCTGTTTTCTCAGATCAATCTTAAACATCATTGCGAATTTCCACATTTTGAGCTGGCAATTTTTTCTAAAGGTTTGCTTGTGCAGAAGTTATTGATGCAACTGATTTAGTTATTGCTCATGTTATTCAGGATATCCATTATCAAGGAAAGAAATTGCAGGAGGCAGCTGCTCCTATTGGTTACCATTAAATCTTCATATTATTCTGCTTTGCATAGCTTCTTTTTTTTTTTGTGTGTGTATATATATGTGTGTGTGTGTGTGTGT
Download sequence region |
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![]() ![]() | terms associated with this mRNA |
![]() ![]() | spliced cDNA sequence, including UTRs |
>Solyc01g105220.2.1 Alternative oxidase (AHRD V1 **** B2CKL9_VITVI); contains Interpro domain(s) IPR002680 Alternative oxidase
TATCGGAAAGATGAATCAGTTGCTGGTGAGGTTGGTGATGAGGCGGTTAGTTTCTGGTGGTACCCGTAACGGTTGCATATCGTCTTCGTCAGCGGCGGTAATGTTCAGAGAAGTTCATAAGCCGAGTAGTGAGTCAGTTGTGATGATGAGTAGCCAGAGGCTGAGATTCTCTGGTCGGTGGTGGAGGATGATGTGCTCCACTACATCGAAGAATTCAACGAAGTCCTCTGACGTGAGGAAGGAGGACGAGAAATTGAGTGGTGATTCTGTGGAGAAAATGGAAGGGGAAGACGAAGTAGCTCTTTCCAGTTATTGGGGAGTCTCGAGGCCAAAAATTACGAAAGAAGATGGCTCCGTGTGGCCTTGGAACAGCTTCATGCCATGGGAGACATATCAGGCTGACCTGTCGATCGATCTAAGCAAGCACCATGTGCCCAAGACATTCCTTGATAAGGTTGCTTATTGGACAGTGAAACTTCTCAGGATTCCAACTGATTTATTTTTTAAGAAAAAATATGGTTGTCGTGCAATGATGTTGGAAACAGTGGCAGGTGTACCTGGAATGGTTGGAGGTATGCTGTTACATCTGAGGTCATTGCGCAAGTTCGAGCACAGTGGTGGTTGGATAAAAGCATTACTTGAAGAAGCTGAGAATGAGAGAATGCATCTGATGACTATGGTGGAGCTAGTACAACCTAAATGGTACGAGAGGTTGTTAGTTATTGCTGTGCAGGGAGTCTTTTTCAATTTTTACTCTGTGCTTTACTTGCTGTCCCCCAAGCTTGCACACAGAGTTGTTGGTTATCTGGAAGAGGAGGCTATACACTCTTATACATTGTATCTTAATGATATTGATCGTGGTGAAATTGAAAATGTTCCTGCTCCTGCAATAGCAATTGACTACTGGAGACTGCCTAAGGATGCAACTCTAAAGGATGTTATTACTGTCATCCGTGCTGATGAAGCTCATCATAGAGATGTTAACCATTTCGCATCTGATATCCATTATCAAGGAAAGAAATTGCAGGAGGCAGCTGCTCCTATTGGTTACCATTAAATCTTCATATTATTCTGCTTTGCATAGCTTCTTTTTTTTTTTGTGTGTGTATATATATGTGTGTGTGTGTGTGTGT
TATCGGAAAGATGAATCAGTTGCTGGTGAGGTTGGTGATGAGGCGGTTAGTTTCTGGTGGTACCCGTAACGGTTGCATATCGTCTTCGTCAGCGGCGGTAATGTTCAGAGAAGTTCATAAGCCGAGTAGTGAGTCAGTTGTGATGATGAGTAGCCAGAGGCTGAGATTCTCTGGTCGGTGGTGGAGGATGATGTGCTCCACTACATCGAAGAATTCAACGAAGTCCTCTGACGTGAGGAAGGAGGACGAGAAATTGAGTGGTGATTCTGTGGAGAAAATGGAAGGGGAAGACGAAGTAGCTCTTTCCAGTTATTGGGGAGTCTCGAGGCCAAAAATTACGAAAGAAGATGGCTCCGTGTGGCCTTGGAACAGCTTCATGCCATGGGAGACATATCAGGCTGACCTGTCGATCGATCTAAGCAAGCACCATGTGCCCAAGACATTCCTTGATAAGGTTGCTTATTGGACAGTGAAACTTCTCAGGATTCCAACTGATTTATTTTTTAAGAAAAAATATGGTTGTCGTGCAATGATGTTGGAAACAGTGGCAGGTGTACCTGGAATGGTTGGAGGTATGCTGTTACATCTGAGGTCATTGCGCAAGTTCGAGCACAGTGGTGGTTGGATAAAAGCATTACTTGAAGAAGCTGAGAATGAGAGAATGCATCTGATGACTATGGTGGAGCTAGTACAACCTAAATGGTACGAGAGGTTGTTAGTTATTGCTGTGCAGGGAGTCTTTTTCAATTTTTACTCTGTGCTTTACTTGCTGTCCCCCAAGCTTGCACACAGAGTTGTTGGTTATCTGGAAGAGGAGGCTATACACTCTTATACATTGTATCTTAATGATATTGATCGTGGTGAAATTGAAAATGTTCCTGCTCCTGCAATAGCAATTGACTACTGGAGACTGCCTAAGGATGCAACTCTAAAGGATGTTATTACTGTCATCCGTGCTGATGAAGCTCATCATAGAGATGTTAACCATTTCGCATCTGATATCCATTATCAAGGAAAGAAATTGCAGGAGGCAGCTGCTCCTATTGGTTACCATTAAATCTTCATATTATTCTGCTTTGCATAGCTTCTTTTTTTTTTTGTGTGTGTATATATATGTGTGTGTGTGTGTGTGT
![]() ![]() | translated polypeptide sequence |
>Solyc01g105220.2.1 Alternative oxidase (AHRD V1 **** B2CKL9_VITVI); contains Interpro domain(s) IPR002680 Alternative oxidase
MNQLLVRLVMRRLVSGGTRNGCISSSSAAVMFREVHKPSSESVVMMSSQRLRFSGRWWRMMCSTTSKNSTKSSDVRKEDEKLSGDSVEKMEGEDEVALSSYWGVSRPKITKEDGSVWPWNSFMPWETYQADLSIDLSKHHVPKTFLDKVAYWTVKLLRIPTDLFFKKKYGCRAMMLETVAGVPGMVGGMLLHLRSLRKFEHSGGWIKALLEEAENERMHLMTMVELVQPKWYERLLVIAVQGVFFNFYSVLYLLSPKLAHRVVGYLEEEAIHSYTLYLNDIDRGEIENVPAPAIAIDYWRLPKDATLKDVITVIRADEAHHRDVNHFASDIHYQGKKLQEAAAPIGYH*
MNQLLVRLVMRRLVSGGTRNGCISSSSAAVMFREVHKPSSESVVMMSSQRLRFSGRWWRMMCSTTSKNSTKSSDVRKEDEKLSGDSVEKMEGEDEVALSSYWGVSRPKITKEDGSVWPWNSFMPWETYQADLSIDLSKHHVPKTFLDKVAYWTVKLLRIPTDLFFKKKYGCRAMMLETVAGVPGMVGGMLLHLRSLRKFEHSGGWIKALLEEAENERMHLMTMVELVQPKWYERLLVIAVQGVFFNFYSVLYLLSPKLAHRVVGYLEEEAIHSYTLYLNDIDRGEIENVPAPAIAIDYWRLPKDATLKDVITVIRADEAHHRDVNHFASDIHYQGKKLQEAAAPIGYH*
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![]() ![]() | [Associate new unigene] |
Unigene ID:
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![]() ![]() | [Associate new genbank sequence] |
AY324396 Lycopersicon esculentum alternative oxidase 2 mRNA, partial cds.
Other genome matches | None |
![]() ![]() | [Associate publication] [Matching publications] |
A tomato alternative oxidase protein with altered regulatory properties.
Biochimica et biophysica acta (2003)
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We have investigated the expression and regulatory properties of the two alternative oxidase (Aox) proteins that are expressed in tomato (Lycopersicon esculentum L. Mill cv. Sweetie) after storage of green fruit at 4 degrees C. Four Aox genes were identified in the tomato genome, of which two (LeAox1a and LeAox1b) were demonstrated to be expressed in cold-treated fruit. The activity and regulatory properties of LeAox1a and LeAox1b were assayed after expression of each protein in yeast cells (Saccharomyces cerevisiae), proving that each is an active Aox protein. The LeAox1b protein was shown to have altered regulatory properties due to the substitution of a Ser for the highly conserved Cys(I) residue. LeAox1b could not form inactive disulfide-linked dimers and was activated by succinate instead of pyruvate. This is the first example of a dicot species expressing a natural Cys(I)/Ser isoform. The implications of the existence and expression of such Aox isoforms is discussed in the light of the hypothesised role for Aox in plant metabolism.
Holtzapffel, RC. Castelli, J. Finnegan, PM. Millar, AH. Whelan, J. Day, DA.
Biochimica et biophysica acta.
2003.
1606(1-3).
153-62.
The role of alternative oxidase in tomato fruit ripening and its regulatory interaction with ethylene.
Journal of experimental botany (2013)
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Although the alternative oxidase (AOX) has been proposed to play a role in fruit development, the function of AOX in fruit ripening is unclear. To gain further insight into the role of AOX in tomato fruit ripening, transgenic tomato plants 35S-AOX1a and 35S-AOX-RNAi were generated. Tomato plants with reduced LeAOX levels exhibited retarded ripening; reduced carotenoids, respiration, and ethylene production; and the down-regulation of ripening-associated genes. Moreover, no apparent respiratory climacteric occurred in the AOX-reduced tomato fruit, indicating that AOX might play an important role in climacteric respiration. In contrast, the fruit that overexpressed LeAOX1a accumulated more lycopene, though they displayed a similar pattern of ripening to wild-type fruit. Ethylene application promoted fruit ripening and anticipated ethylene production and respiration, including the alternative pathway respiration. Interestingly, the transgenic plants with reduced LeAOX levels failed to ripen after 1-methylcyclopropene (1-MCP) treatment, while such inhibition was notably less effective in 35S-AOX1a fruit. These findings indicate that AOX is involved in respiratory climacteric and ethylene-mediated fruit ripening of tomato.
Xu, F. Yuan, S. Zhang, DW. Lv, X. Lin, HH.
Journal of experimental botany.
2013.
63(15).
5705-16.
The relationship between the plant-encoded RNA-dependent RNA polymerase 1 and alternative oxidase in tomato basal defense against Tobacco mosaic virus.
Planta (2014)
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Salicylic acid (SA) plays a critical role in plant defense against pathogen attack. The SA-induced viral defense in plants is distinct from the pathways mediating bacterial and fungal defense, which is pathogenesis-related protein-independent but involves an RNA-dependent RNA polymerase 1 (RDR1)-mediated RNA silencing mechanism and/or an alternative oxidase (AOX)-associated defense pathway. However, the relationship between these two viral defense-related pathways remains unclear. In this study, Tobacco mosaic virus (TMV) inoculation onto Solanum lycopersicum (tomato) leaves induced a rapid induction of the SlAOX1a transcript level as well as the total and CN-resistant respiration at 0.5 dpi, followed by an increase in SlRDR1 gene expression at 1 dpi in the upper uninoculated leaves. Silencing SlRDR1 using virus-induced gene silencing system significantly reduced SlRDR1 expression and tomato defense against TMV but had no evident effect on SlAOX1a transcription. Conversely, silencing SlAOX1a not only effectively reduced the AOX1a transcript level, but also blocked the TMV-induced SlRDR1 expression and decreased the basal defense against TMV. Furthermore, the application of an exogenous AOX activator on empty vector-silenced control plants greatly induced the accumulation of SlRDR1 and SlAOX1a transcript and reduced TMV viral RNA accumulation, but failed to have such effects on SlRDR1-silenced plants. Moreover, RDR1-overexpressed transgenic Nicotiana benthamiana plants enhanced defense against TMV than the empty vector-transformed plants, but these effects were not affected by the exogenous AOX activator or inhibitor. These results indicate that RDR1 is involved in the AOX-mediated defense pathway against TMV infection and plays a crucial role in enhancing RNA silencing to limit virus systemic spread.
Liao, YW. Liu, YR. Liang, JY. Wang, WP. Zhou, J. Xia, XJ. Zhou, YH. Yu, JQ. Shi, K.
Planta.
2014.
().
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