Difference between revisions of "Os01g0182600"
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==Annotated Information== | ==Annotated Information== | ||
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*''GI'' encodes a nuclear protein that defines the proper amplitude and period length of circadian rhythms. ''GI'' expression is regulated by the circadian clock, with a peak in transcript levels at 8 to 10 h after dawn. The ''GI'' protein acts between the circadian oscillator and ''CO'' to promote flowering by increasing ''CO'' and ''FT'' mRNA abundance<ref name="ref1" />. The expression of the ''OsGI'' messenger RNA was circadian-controlled and that its temporal expression pattern was very similar to that of ''GI'' under both SD and LD conditions. Decreased ''OsGI'' expression led to early flowering under LD conditions and late flowering under SD conditions relative to the wild type, and that this early flowering phenotype under LD conditions was the opposite of that of the Arabidopsis ''gi'' mutants, confirming the opposite role of the ''GI'' gene in flowering under LD conditions in rice and Arabidopsis<ref name="ref5" />. | *''GI'' encodes a nuclear protein that defines the proper amplitude and period length of circadian rhythms. ''GI'' expression is regulated by the circadian clock, with a peak in transcript levels at 8 to 10 h after dawn. The ''GI'' protein acts between the circadian oscillator and ''CO'' to promote flowering by increasing ''CO'' and ''FT'' mRNA abundance<ref name="ref1" />. The expression of the ''OsGI'' messenger RNA was circadian-controlled and that its temporal expression pattern was very similar to that of ''GI'' under both SD and LD conditions. Decreased ''OsGI'' expression led to early flowering under LD conditions and late flowering under SD conditions relative to the wild type, and that this early flowering phenotype under LD conditions was the opposite of that of the Arabidopsis ''gi'' mutants, confirming the opposite role of the ''GI'' gene in flowering under LD conditions in rice and Arabidopsis<ref name="ref5" />. | ||
| − | + | ==Mutation== | |
*The single ''osgi-1'' mutation extended the time to flowering only under SD conditions. Under LD conditions the single ''hd1'' mutation induced early flowering, but ''osgi-1'' plants exhibited no phenotypic change<ref name="ref4" /> | *The single ''osgi-1'' mutation extended the time to flowering only under SD conditions. Under LD conditions the single ''hd1'' mutation induced early flowering, but ''osgi-1'' plants exhibited no phenotypic change<ref name="ref4" /> | ||
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==References== | ==References== | ||
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==Structured Information== | ==Structured Information== | ||
Revision as of 14:59, 10 June 2014
Please input one-sentence summary here.
Contents
Annotated Information
Function
- OsGI,a GI ortholog, regulates flowering time in response to photoperiodic conditions. Mutations in this gene delay flowering in inductive SDs (short-days),whereas flowering is marginally induced under LDs(long-days).In comparison, over expression of OsGI in transgenic rice causes late flowering in both SDs and LDs.In addition, OsGI has function to regulate Hd1, a gene that also shows circadian rhythm[1]. Os-GI affects gene expression of approximately 75% of genes among 27,201 genes and is required for strong amplitudes and proper phase-setting of global gene expression under natural field conditions[2].
- The cDNA of OsGI firstly found in se5 mutant that is completely photoperiod-insensitive, the expression patterns of rice and Arabidopsis GI gene are both photoperiodically regulated and are very similar under LD and SD conditions(FIG1)[3]. GI is required for phase-dependent COtranscription through the interaction with FKF1, which leads to cycling DNA binding with one finger (CDF) degradation and consequent derepression of CO. In addition, it has been known that GI protein interacts with ZEITLUPE (ZTL) F-box protein to control the diurnal rhythm of TOC1 protein in regulation of the Arabidopsis circadian clock[4].
- Os-GI also has function to maintain bioactive GA level through the regulation of the GA-deactivating enzyme genes in rice, Os-GI represses major OsGA2ox genes in order to maintain a proper bioactive GA level, osgi-1 plants showed a semi-dwarf phenotype with elevated OsGA2ox gene expression(FIG2) [4].
Expression
- GI encodes a nuclear protein that defines the proper amplitude and period length of circadian rhythms. GI expression is regulated by the circadian clock, with a peak in transcript levels at 8 to 10 h after dawn. The GI protein acts between the circadian oscillator and CO to promote flowering by increasing CO and FT mRNA abundance[1]. The expression of the OsGI messenger RNA was circadian-controlled and that its temporal expression pattern was very similar to that of GI under both SD and LD conditions. Decreased OsGI expression led to early flowering under LD conditions and late flowering under SD conditions relative to the wild type, and that this early flowering phenotype under LD conditions was the opposite of that of the Arabidopsis gi mutants, confirming the opposite role of the GI gene in flowering under LD conditions in rice and Arabidopsis[5].
Mutation
- The single osgi-1 mutation extended the time to flowering only under SD conditions. Under LD conditions the single hd1 mutation induced early flowering, but osgi-1 plants exhibited no phenotypic change[4]
Evolution
- There is some evolutionary conservation between rice circadian clock–related genes and those associated with Arabidopsis circadian clocks, where the circadian clock consists of interlocked subloops, it is also possible that Os-GI is a member of a subloop in rice circadian clocks[4].But there is a divergence in the photoperiodic pathways of these two species arises from the molecular mechanisms controlling the expression of FT/Hd3a by CO/Hd1(Se1)[5](figure 3)
Labs working on this gene
Please input related labs here.
Knowledge Extension
- The rice orthologues of the two key regulators of flowering time in Arabidopsis, CO and FT, were recently shown to be important in the photoperiodic control of flowering in rice. The rice Hd1(Se1)gene, which is an orthologue of the Arabidopsis CO gene, was required for the suppression of flowering under LD conditions and for the promotion of flowering under SD conditions. Furthermore, the rice Hd3a gene, an orthologue of the Arabidopsis FT gene, was shown to be an activator of flowering in rice. It was previously demonstrated that CO controls the flowering time by integrating signals from the circadian clock and light to regulate FT expression in Arabidopsis[5].Unlike Arabidopsis FT, expression of Hd3a mRNA is more or less opposite to that of Hd1 under inductive short-day conditions[6].
References
Please input cited references here.
Structured Information
| Gene Name |
Os01g0182600 |
|---|---|
| Description |
GIGANTEA protein |
| Version |
NM_001048755.1 GI:115434923 GeneID:4325329 |
| Length |
9083 bp |
| Definition |
Oryza sativa Japonica Group Os01g0182600, complete gene. |
| Source |
Oryza sativa Japonica Group ORGANISM Oryza sativa Japonica Group
Eukaryota; Viridiplantae; Streptophyta; Embryophyta; Tracheophyta;
Spermatophyta; Magnoliophyta; Liliopsida; Poales; Poaceae; BEP
clade; Ehrhartoideae; Oryzeae; Oryza.
|
| Chromosome | |
| Location |
Chromosome 1:4328362..4337444 |
| Sequence Coding Region |
4328725..4329030,4329123..4329215,4329333..4329551,4329752..4329820,4329925..4331421 |
| Expression | |
| Genome Context |
<gbrowseImage1> name=NC_008394:4328362..4337444 source=RiceChromosome01 preset=GeneLocation </gbrowseImage1> |
| Gene Structure |
<gbrowseImage2> name=NC_008394:4328362..4337444 source=RiceChromosome01 preset=GeneLocation </gbrowseImage2> |
| Coding Sequence |
<cdnaseq>atgtcagcttcaaatgagaagtggattgatgggctccagttctcatcactgttctggcccccaccacaggattcacaacaaaaacaggcacaaattctggcctatgttgagtactttggccagtttacagctgacagtgagcaattccctgaagatatagctcagctaattcaaagttgctatccatcaaaagaaaagcgccttgtagatgaagtattagcaacttttgttcttcatcatcctgagcatggccatgcagttgtgcatccgattctgtcacgcatcatagatgggacactcagttatgatagaaatggtttcccgttcatgtccttcatctctttatttagccatacttctgagaaagagtactcggagcagtgggccttggcctgtggagaaattcttagagttctaactcactacaacaggccaatcttcaaagttgatcaccaacatagtgaagcggaatgtagcagcacatctgatcaggcctcatcatgtgagtctatggagaaaagggctaacggttctccaagaaatgaacctgaccggaagccattgaggccactatctccttggatcacagacatattgcttgctgcacctctgggtattagaagtgactattttagatggtgtggtggagtcatgggaaaatacgcagctggtggagaattgaagcctccaacaactgcttacagccgaggatctgggaagcacccacaacttatgccatccacgcccagatgggctgttgccaatggagctggagttatactaagtgtctgtgatgaggaagtagctcgttatgagacagcaaatttgactgcggcagctgttcctgcacttctattacctccaccgaccacaccattggacgaacatttggttgcggggctccctcctcttgaaccatatgctcgcttgtttcatagatactatgcaattgctactccaagtgctacccaaaggttgctttttggtcttctcgaggcaccaccatcatgggccccagatgcacttgatgcagcagtacagcttgttgaactccttagagcagcggaagattacgattctggcatgcggcttccaaagaactggatgcatcttcatttcctgcgtgctattggaactgcaatgtcaatgagagctggtatcgctgctgatacgtctgctgctttacttttccgaatactctcccaaccgacattactttttcctccactgagacatgccgaaggagttgaactccatcatgagccactaggtggctatgtatcatcgtacaaaaggcagctggaagttcctgcatctgaagccactattgatgccactgcgcaaggcattgcttccatgctatgtgctcatggtcccgatgttgagtggagaatatgtaccatctgggaggctgcgtatggtttgctacctctgagttcatcagcagttgatttgcctgaaattgttgtagctgctccacttcagccacctactttgtcatggagcctatacttgccattgttgaaagtatttgagtatttacctcgtgggagtccatctgaagcatgccttatgagaatttttgtggcaacagttgaagctatactgagaagaacttttccatcagaaacctctgaacaatccaggaaaccaagaagtcaatctaagaaccttgctgttgctgaactccgaacaatgatacattcactctttgtggagtcctgtgcttcaatggaccttgcgtccagattactatttgtagtattaactgtttgcgtcagtcatcaagctttgcctgggggaagtaaaaggccaactggtagtgataatcattcctctgaggaggtcacaaatgattcgagattaaccaatggaagaaacagatgtaagaagagacaaggaccagttgctacattcgactcatacgttctagcagccgtttgtgccttatcttgtgagctccagctgttcccttttatttccaagaatgggaaccattcaaatctgaaggactccataaagatagtcatacctggaaaaaccactggtatcagtaacgagctacacaatagcattagctcagcgattcttcatactcgtagaatacttggcatcttggaagctctgttctccttgaagccatcatctgttggtacttcatggagttatagttcaaatgagattgttgcagcagctatggttgctgctcatgtttctgagttatttcgtcgatccaggccatgcttaaatgcactgtctgcgctgaagcaatgcaagtgggatgctgagatttctaccagggcatcatccctttaccatttgattgacttgcatggtaaaacagtgacctccattgtgaacaaagctgagcctctagaagctcacctgacccttacaccagtaaaaaaggatgaacctcccattgaggaaaagaacattaactcatcagatggtggtgcattggaaaaaaaggatgcttcaagatcacacaggaaaaatggttttgcaagaccactcttgaaatgtgcagaagatgttatactaaatggtgatgtcgcaagtacttctgggaaagccattgcaagtttacaggtggaagcttctgatttggcaaacttcctcaccatggaccgaaatgggggttacagaggttctcaaactctcctaagatctgtactgtcagagaagcaggagctatgcttctctgttgtctcattgctctggcagaagctcattgcatctcccgaaatgcagatgtctgcagaaagtacatcagctcatcagggttggagaaaggttgtggatgcgctttgtgacattgtttcagcctcaccgaccaaggcttcagctgctatcgttctgcaggccgagaaggacttgcagccctggattgctcgagatgatgagcaaggtcagaagatgtggagagtcaaccagcgaatagttaagctgatagcagagcttatgaggaaccacgatagcccagaagcattggtgatccttgctagtgcttcagatcttcttcttcgagcaactgatggaatgcttgttgatggtgaagcttgtactttaccacaattagagctattggaagtaaccgccagagcagtccatctcatcgtcgaatggggagattcaggtgtatccgtcgctgatggcctctccaatctgctgaagtgccgtctatcaaccaccatccgctgtctttcgcaccccagcgcgcatgtccgtgcactcagcatgtccgtccttcgcgacatcttgaacagcggacaaataaactccagtaagctcatccaaggggaacaccggaatggcatccagagcccaacctaccagtgcttggcagcaagcatcatcaactggcaagccgatgtggagagatgcatagagtgggaagcccacagccgccgcgccaccgggctgacgctcgccttcctcaccgcggcggcgaaggagctcggctgcccactcacttgctga</cdnaseq> |
| Protein Sequence |
<aaseq>MSASNEKWIDGLQFSSLFWPPPQDSQQKQAQILAYVEYFGQFTA DSEQFPEDIAQLIQSCYPSKEKRLVDEVLATFVLHHPEHGHAVVHPILSRIIDGTLSY DRNGFPFMSFISLFSHTSEKEYSEQWALACGEILRVLTHYNRPIFKVDHQHSEAECSS TSDQASSCESMEKRANGSPRNEPDRKPLRPLSPWITDILLAAPLGIRSDYFRWCGGVM GKYAAGGELKPPTTAYSRGSGKHPQLMPSTPRWAVANGAGVILSVCDEEVARYETANL TAAAVPALLLPPPTTPLDEHLVAGLPPLEPYARLFHRYYAIATPSATQRLLFGLLEAP PSWAPDALDAAVQLVELLRAAEDYDSGMRLPKNWMHLHFLRAIGTAMSMRAGIAADTS AALLFRILSQPTLLFPPLRHAEGVELHHEPLGGYVSSYKRQLEVPASEATIDATAQGI ASMLCAHGPDVEWRICTIWEAAYGLLPLSSSAVDLPEIVVAAPLQPPTLSWSLYLPLL KVFEYLPRGSPSEACLMRIFVATVEAILRRTFPSETSEQSRKPRSQSKNLAVAELRTM IHSLFVESCASMDLASRLLFVVLTVCVSHQALPGGSKRPTGSDNHSSEEVTNDSRLTN GRNRCKKRQGPVATFDSYVLAAVCALSCELQLFPFISKNGNHSNLKDSIKIVIPGKTT GISNELHNSISSAILHTRRILGILEALFSLKPSSVGTSWSYSSNEIVAAAMVAAHVSE LFRRSRPCLNALSALKQCKWDAEISTRASSLYHLIDLHGKTVTSIVNKAEPLEAHLTL TPVKKDEPPIEEKNINSSDGGALEKKDASRSHRKNGFARPLLKCAEDVILNGDVASTS GKAIASLQVEASDLANFLTMDRNGGYRGSQTLLRSVLSEKQELCFSVVSLLWQKLIAS PEMQMSAESTSAHQGWRKVVDALCDIVSASPTKASAAIVLQAEKDLQPWIARDDEQGQ KMWRVNQRIVKLIAELMRNHDSPEALVILASASDLLLRATDGMLVDGEACTLPQLELL EVTARAVHLIVEWGDSGVSVADGLSNLLKCRLSTTIRCLSHPSAHVRALSMSVLRDIL NSGQINSSKLIQGEHRNGIQSPTYQCLAASIINWQADVERCIEWEAHSRRATGLTLAF LTAAAKELGCPLTC</aaseq> |
| Gene Sequence |
<dnaseqindica>8415..8720#8230..8322#7894..8112#7625..7693#6024..7520#5016..5225#4732..4882#4414..4654#3489..3547#2792..3066#2490..2632#2357..2411#2187..2264#2008..2094#ccgagccgtttctctccctctctctctcctcctccttcccctgcgcctcctccaccgcccgtgtcgccgccgcgcgcgtctatcccctcgccgccgccgccgtctacgccgcgtgaggtccggattggttgaaaggctgatcgaggtaatgcttttttatttttcccgtgcggttttagtttttctgtgctgtgcttggtggttttttctttaaaactatttttaggctggttttgatgatggcctttctaaggttgtcgtgtatggggggcgaggtggttcgggtggatttgtggtgttatgttgaggggatttttgtttggggggagagagttttggtggtagatgcggttgggattttgaagacgtgaaagggaaattagttttgaaatttgacggcgaggttgagctgattagtattgtaataattcgtggcatcggatagatcaacgcgagatggatgcttattactgcgaatttcaggaggtttttgtggtttttttaggcgagtagcgttgattctagctggattttgctgcttcgtggaggcgtttagatgtggtgcatacggctgtggatgtaatttgtgcggggataattactgaaaattaattcgcagtaagctagctctgctttaatattttttcccctgaaacagtaacaagggatcccttcctcatttcgttaacagtggaagtgaatacagacaccaaccgatgagcagagacacctgtaattaaacaccaaaagaagaacctgttttgttcctatatattttccatttctatgctttaggtaatatactttctggttcggtgtcatagtacccgaaatagaatctttgcttgccaaaaaaagaaagaataacaagatagaacaacatcattaaattctgtcttagacaatacatttataatcgaccaacaaaaacagaccgatgagtgacgtggaataacaaatgaagtataaatgtcacgaaaaacacatctattgattttgtgtgataagccataggagcctacgaggaaccaagtgaatggttctgtacaccacatccattagcattaccataaatttgcctatttctatgatgccttccttaacatatttatcgacatgtgagcttgcaccataactaaatgttatggtaaactttaccttataaatgattgcaacatgtaccttttcatttcgataattaaaaacgagaaagcttccacctttttcctagatatattttttcgtttgattatgaatttagttgtacttgacaataaaataatgcgcttgtaagattatgcaattttcgttgcattacctccctctcttttcatttgtcagtttttttctactccctccgtttcatattttaagtcgtttgacttttttcctagtcagactttgttaagtttgacaaagtttatagtaaaatttagcaatatctaaaatattaaattggtttcatcaaatctaacattgaatatattttgataatatgttttttttgtgttgaaaatacttctatatttttctataaacttagtcaaacttggaagaaatttcagtaagaaaaaagtcaaacggcttataatatgaaacggagggagtaaatttttttttgcattaattaaaattcatgtattttcctccttttttggtttttgttgtgcgatatattacagtgtagagactctgaagctcatatggttggcattggttgatatgataacgtgtcacgttgtgagatgcagacccccgttatgggggttgattgaatgaagtggatagcactcttataactttcttgctcgaagtttcttgataccaaggcaagtagcttataagaagatttggactttggtggcataaatggatgaactaactggcggcttcaacgtggtgttgattacaggtgcttttattgctaactggagcagtttgtgtagtttctttctttctctttgagaattctctcagtttcttgggcaggctcttgagctaccaagtatgtcagcttcaaatgagaagtggattgatgggctccagttctcatcactgttctggcccccaccacaggattcacaacaaaaacaggtaacattattcctatttgattcttgttagaaattctatatgttgaacatacttgcctcaatgggaaacttggttgcgtctcctctctgaaggcacaaattctggcctatgttgagtactttggccagtttacagctgacagtgagcaattccctgaagatatagctcaggtactgtatctctaagcatgtttagtatcttctgtgataaaatctttctccagtgtgttaacttttgcattctttttcttgcatgcttgcagctaattcaaagttgctatccatcaaaagaaaagcgccttgtagatgaagtattaggtaatttgatccagtgatcaatacatgttccacaaacaattgaagaaagagtttgacatatttttctcatatttccagcaacttttgttcttcatcatcctgagcatggccatgcagttgtgcatccgattctgtcacgcatcatagatgggacactcagttatgatagaaatggtttcccgttcatgtccttcatctctttatttagccatacttctgaggtaaggcccctactctaatggttagttccaatttattggttcatttctctgtgtttgataagattttgcctctgctgtgcatttcaatattatatctaaactgtgctgcttatagcttatcaaactactcttgctcataaagatgcaacttttatgcagaaagagtactcggagcagtgggccttggcctgtggagaaattcttagagttctaactcactacaacaggccaatcttcaaagttgatcaccaacatagtgaagcggaatgtagcagcacatctgatcaggcctcatcatgtgagtctatggagaaaagggctaacggttctccaagaaatgaacctgaccggaagccattgaggccactatctccttggatcacagacatattgcttgctgcacctctgggtattagaagtgactattttagatggtgagtcataataaatgataacatattattgttctgtggactgaaaatctgaaatcctcctttcttgagaaatacaacctcaattttatggtgatattgacaagaaggaagagcgcatataatttaaagttaaaacacggaaaataatagaagtatgtgagcagaacgcaggagcaaggggtggaactcataacaagttcaaacttcatgcatgttcataattccccaatgcaagtatggcaagaaaaatagacaacttttaaaagtatgctaatggaactgcatgcattgtgtaaacttgcttttgtcaagcatgttggaacatactatatatttgctgctgatgatgaaaaatttgcttgagtactcttctattgctaatggacgcttaccattccctgttttgtcttcaaatgcatcaggtgtggtggagtcatgggaaaatacgcagctggtggagaattgaagcctccaacaactggttggtaaaatcagcaatggaattttctatcgtgaattttttataattattgtaacattaattactcccatgtctttttattctgttgagataccatgtgacaatgtctacaattgcatattttgcattctttggtagatcagttcccttcttaagatccccaaagggaaactggagtatcaataacttactccctcaaataaaaaaaaagtgatactttaggcataaacacattcttcaaaacaaaactttgaatagcagtttcttttgtaatatattaataaagcatggaaaaattataatgtgaagaatgtacattcagggacaaatatactcatcatttttgcatggttgatcttaatgtccatagagagattgatcagaccaaaagtttatttttgacaggagtgagtatggattataataggagtgaatggcaatatgctgtgaaagtgagcattttatatttgtttactactagcatttggtgacaaagcaaatgatgtatattgtaaatcaaagtaaacaagtagaacatgtcctgtggcgacaagacataacctacaaattaaagttagcctgattgtttattttactgggagcacattttttctagattctagagtacatattattaaaaaaggtgtgatatgtttgcaaattactttttaatggaagtttgtaaattactttgaaacttgcattcagtttttttgcttcttaaaaaacatagtgcatatgggctttatgagctcatactatgcatgtttttctgcattggagtgggacctttatctttttcttgcaactcggatgctaatgcttattataaacacaagttactaacatgtgcttgggtcattcagcttacagccgaggatctgggaagcacccacaacttatgccatccacgcccagatgggctgttgccaatggagctggagttatactaagtgtctgtgatgaggaagtagctcgttatgagacagcaaatttgactgcggcagctgttcctgcacttctattacctccaccgaccacaccattggacgaacatttggttgcggggctccctcctcttgaaccatatgctcgcttgtttcataggtaagctcttatgatcctgtccactgttgtaccatgtgtactttccaaatgattgctaacatgctatttttcgtcagatactatgcaattgctactccaagtgctacccaaaggttgctttttggtcttctcgaggcaccaccatcatgggccccagatgcacttgatgcagcagtacagcttgttgaactccttagagcagcggaagattacgattctggcatgcgggtatatcatacatctctctggctgttgtttcagtgctatcaatcaagatgacacatcatgcaatattatcataacagcacattatgtgttttgaatattttattgattgtcatagctttgttttatgttttagcttccaaagaactggatgcatcttcatttcctgcgtgctattggaactgcaatgtcaatgagagctggtatcgctgctgatacgtctgctgctttacttttccgaatactctcccaaccgacattactttttcctccactgagacatgccgaaggagttgaactccatcatgagccactaggtggctatgtatcatcgtacaaaaggcaggtatgcagtgtttcctgcacctacttgctacctattctgtatttgatgtattcaatttcctttttatcagttttctcgaaatatatgctaataggcttgtcactaaacggctacattatccagactctgttctgaatttttttttcattaagtactgttagctgccagattacatcatcatgactaaagtagtttagctacaatattgcaaagctagatttgtctagcctctattgttttgaatagaaaaggcaggtatgcagtgtttcctgcacctacttgctacctattctgtatttgatgtattcaatttcctttttatcagttttctcgaaatatatgctaataggcttgtcactaaacggctacattatccagactctgttctgaatttttttttcattaagtactgttagctgccagattacatcatcatgactaaagtagtttagctacaatattgcaaagctagatttgtctagcctctattgttttgaatagaaaattaaatcttttggtcatttttttgtaaccttttaggagtctctgtatgcttgtcgtcaacatgctatgataagtttatatcagttcttttggagctatgatgtattcttgtatattttatgactgctaggatattatgttaaaactgttttaaaggtatcatcaaacaagttaatatagatattgctacctaccaaagttggaatttgattatgtcgtaaaatatatgcaccctacatgttttagcttcatattgacttatattttcatatgtgctccttcaactgcacaaagctggaagttcctgcatctgaagccactattgatgccactgcgcaaggcattgcttccatgctatgtgctcatggtcccgatgttgagtggagaatatgtaccatctgggaggctgcgtatggtttgctacctctgagttcatcagcagttgatttgcctgaaattgttgtagctgctccacttcagccacctactttgtcatggagcctatacttgccattgttgaaagtatttgagtatttacctcgtgggagtccatctgaagcatgccttatgagaatttttgtggcaacagttgaagctatactgagaagaacttttccatcagaaacctctgaacaatccaggaaaccaagaagtcaatctaagaaccttgctgttgctgaactccgaacaatgatacattcactctttgtggagtcctgtgcttcaatggaccttgcgtccagattactatttgtagtattaactgtttgcgtcagtcatcaagctttgcctgggggaagtaaaaggccaactggtagtgataatcattcctctgaggaggtcacaaatgattcgagattaaccaatggaagaaacagatgtaagaagagacaaggaccagttgctacattcgactcatacgttctagcagccgtttgtgccttatcttgtgagctccagctgttcccttttatttccaagaatgggaaccattcaaatctgaaggactccataaagatagtcatacctggaaaaaccactggtatcagtaacgagctacacaatagcattagctcagcgattcttcatactcgtagaatacttggcatcttggaagctctgttctccttgaagccatcatctgttggtacttcatggagttatagttcaaatgagattgttgcagcagctatggttgctgctcatgtttctgagttatttcgtcgatccaggccatgcttaaatgcactgtctgcgctgaagcaatgcaagtgggatgctgagatttctaccagggcatcatccctttaccatttgattgacttgcatggtaaaacagtgacctccattgtgaacaaagctgagcctctagaagctcacctgacccttacaccagtaaaaaaggatgaacctcccattgaggaaaagaacattaactcatcagatggtggtgcattggaaaaaaaggatgcttcaagatcacacaggaaaaatggttttgcaagaccactcttgaaatgtgcagaagatgttatactaaatggtgatgtcgcaagtacttctgggaaagccattgcaagtttacaggtggaagcttctgatttggcaaacttcctcaccatggaccgaaatgggggttacagaggttctcaaactctcctaagatctgtactgtcagagaagcaggagctatgcttctctgttgtctcattgctctggcagaagctcattgcatctcccgaaatgcagatgtctgcagaaagtacatcagctcatcagggttggagaaaggtatggtcattcctgcttataagataccagaataatgctatgaagaccgtccttggttgtcagcattcttatacacaatgataatctttgtttttcatgggtaggttgtggatgcgctttgtgacattgtttcagcctcaccgaccaaggcttcagctgctatcgttctgcaggtcaagatattgttattgttatatttacatacttgttatcatatttaaaagcttcatattgtatgtacctttgaaaaaaaaagttccatactgtagcttcttttgttctcatttcttggtttcaaagcatcagcatcattaccgatataaaatatacccatttcctcagtcatcttccccgactcttgtatctttcacaggccgagaaggacttgcagccctggattgctcgagatgatgagcaaggtcagaagatgtggagagtcaaccagcgaatagttaagctgatagcagagcttatgaggaaccacgatagcccagaagcattggtgatccttgctagtgcttcagatcttcttcttcgagcaactgatggaatgcttgttgatggtgaagcttgtactttaccacaattagaggtaacaccttcattcatgaggtccttaggtgcaaatcccagtgaagaataatcagttctactttgtatggttcatctcgcttactgaccggttcatctcgggatcaattacgagcagctattggaagtaaccgccagagcagtccatctcatcgtcgaatggggagattcaggtgtatccgtcgctgatggcctctccaatctgctgaaggcatgtcctcttctctgatctcactcacgttcatgccaaacttactcatcatcatccatgatccatcatcctgactgaatcttgatatgcagtgccgtctatcaaccaccatccgctgtctttcgcaccccagcgcgcatgtccgtgcactcagcatgtccgtccttcgcgacatcttgaacagcggacaaataaactccagtaagctcatccaaggggaacaccggaatggcatccagagcccaacctaccagtgcttggcagcaagcatcatcaactggcaagccgatgtggagagatgcatagagtgggaagcccacagccgccgcgccaccgggctgacgctcgccttcctcaccgcggcggcgaaggagctcggctgcccactcacttgctgacaaggccacaccatgactgtcactgcaagcagctgctgtaggatcagcgagtaggaaaggatgacttgccggccagtttcctgagatgtgatttaagactgatattagctgatgttcccaagcatgatacggggcttgctcccaagatgtgatttttactttacttttggttaatgtgctaccgctgacattagatgttcaagcatatgaaaactgcttgtgctgtaacttgtatgtctgtaacgtaaaaatctttccatatggtaaccggggaagcagaggtatatccttttctgctgttgtatctatttccagtttcctgctgaacttgcaaatgaatattcagcaatttccgttttgctc</dnaseqindica> 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| External Link(s) |
- ↑ 1.0 1.1 Cite error: Invalid
<ref>tag; no text was provided for refs namedref1 - ↑ Cite error: Invalid
<ref>tag; no text was provided for refs namedref2 - ↑ Cite error: Invalid
<ref>tag; no text was provided for refs namedref3 - ↑ 4.0 4.1 4.2 4.3 Cite error: Invalid
<ref>tag; no text was provided for refs namedref4 - ↑ 5.0 5.1 5.2 Cite error: Invalid
<ref>tag; no text was provided for refs namedref5 - ↑ Cite error: Invalid
<ref>tag; no text was provided for refs namedref6