Difference between revisions of "Os08g0191433"

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(Localization)
(Annotated Information)
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===Expression===
 
===Expression===
* FigureA shows that Phylogenetic relationships and genomic structures of rice starch synthase genes. (A) Phylogenetic tree showing the relationship between rice SS isoforms. The tree was constructed using the neighbor-joining method of MEGA-4.1. Agrobacterium tumefaciens
 
glutamine synthetase (AgtGS) was used as an outgroup. GenBank accession numbers are shown in parentheses; (B) Structural similarity
 
of rice SS genes. Open boxes, represent untranslated regions; black boxes, coding regions; solid lines, introns. Highly similar sequence
 
segments are highlighted by light gray areas.<ref name="ref1" />
 
  
* The kernels of SSIIa/SSIIIa double repression lines displayed a chalky kernel appearanceand had increased amylose levels, increased pasting temperatures, and decreased viscosities. The double mutation also reducedshort (degree of polymerization (DP) 5–6) and long (DP 12–23) amylopectin chain contents in the grain and increasedthe medium long types (DP 7–11). The nonadditive nature of the double mutation line suggests that SSIIa andSSIIIa interact with each other during starch synthesis. Such interaction may be physical via starch phophorylase as indicatedby pair-wise yeast two-hybrid assays on major starch synthesis enzymes. SSIIa and SSIIIa play distinctive, but partially overlapping, roles during rice grain starch synthesis.<ref name="ref1" />
 
  
 
===Localization===
 
===Localization===
  
 
===Evolution===
 
===Evolution===
Phylogenetic analysis by ''Mu Zhang et al.'' revealed that '''''BC12''''' and motor proteins selected from various kinesin subfamilies are divided into separated clades(Figure 3). Kinesin-4 proteins from several representative species were clustered together but formed different subclades. Among the kinesin-4 proteins, those from rice and Arabidopsis were found to belong to a monophyletic clade with 100% bootstrap support. '''''BC12''''' showed the closest homology to FRA1, which has been reported to be involved in cellulose microfibril deposition<ref name="ref1" />.
+
 
<br>
 
  
 
===Knowledge Extension===
 
===Knowledge Extension===
* [http://en.wikipedia.org/wiki/Gibberellins  Gibberellins (GAs)] are one of the most important endogenous growth regulators in plants<ref name="ref2" /><ref name="ref3" /><ref name="ref4" /><ref name="ref5" />. They are not only required for stem elongation but indeed participate in most stages of plant development<ref name="ref3" />. GAs mediate between certain environmental signals (e.g. light quality and photoperiod) and the inducedphysiological responses <ref name="ref3" />(e.g. stem extension and flowering). GA-deficient mutants are usually much shorter than the wild type, which indicates  the corresponding genes such as '''''sd1''''' ('''''[[Os01g0883800]]''''')<ref name="ref6" /> in rice may have a relationship with [http://en.wikipedia.org/wiki/The_Green_Revolution The Green revolution].
 
 
* The biosynthesis of GA in higher plants can be divided into three stages: (1) biosynthesis of ''ent''-kaurene in proplastids;(2) conversion of ''ent''-kaurene to GA12 via microsomal cytochrome P450 monooxygenases;(3) formation of C20- and C19-GAs in the cytoplasm<ref name="ref4" /><ref name="ref2" />. GA biosynthesis is catalyzed by three classes of enzymes: terpene cyclases catalyze the synthesis of ''ent''-kaurene from geranylgeranyl diphosphate; cytochrome P450 monooxygenases catalyze the steps of the pathway from ''ent''-kaurene to GA12; and soluble dioxygenases catalyze the final steps of the pathway<ref name="ref5" />.
 
  
 
==Structured Information==
 
==Structured Information==

Revision as of 10:04, 9 June 2014

Annotated Information

Figure A. SEM observations of a cross section of rice seeds were conducted[1]

Function

OsSSIIIa plays an important role in starch granule structures, amylose ratios and metabolite changes of starch grains in the monocot plant rice[1]. This gene OsIIIa is are major enzymes involved in starch biosynthesis in developing rice (Oryza sativaL.) endosperm.If OsSSIIIa gene encoding deletion or mutation , this will lead to changes in the grain starch -related traits.[2]. It is also likely to be a good subject for exploring the link between cell growth and cell wall formation in rice[2].

Mutation

Figure B. Phylogenetic relationships and genomic structures of rice starch synthase genes.[1]
  • FigureB shows the reduction of SSIIIa activity affects the distinct granular structure of starch in the endosperm. In the wild type, the

endospermstarch granules formed similarly sized polygonal granules with sharp edges. Several starch granules were tightly packed into the myloplasts, which were very abundant in the endosperm cells. In contrast, the amyloplasts of SSIIIa mutants were round shaped and relatively loosely packed into endosperm cell[1].

  • Starch synthase IIIa (SSIIIa)-deficient rice (Oryza sativa) mutants were generated using retrotransposon insertion and chemicalmutagenesis. The lowest migrating SS activity bands on glycogen-containing native polyacrylamide gel, which were identifiedto be those for SSIIIa, were completely absent in these mutants, indicating that they are SSIIIa null mutants. The amylopectin B2 to B4chains with degree of polymerization (DP) $ 30 and the Mr of amylopectin in the mutant were reduced to about 60% and 70%of the wild-type values, respectively, suggesting that SSIIIa plays an important part in the elongation of amylopectin B2 to B4chains. Chains with DP 6 to 9 and DP 16 to 19 decreased while chains with DP 10 to 15 and DP 20 to 25 increased in the mutantsamylopectin. These changes in the SSIIIa mutants are almost opposite images of those of SSI-deficient rice mutant and werecaused by 1.3- to 1.7-fold increase of the amount of SSI in the mutants endosperm. Furthermore, the amylose content and theextralong chains (DP $ 500) of amylopectin were increased by 1.3- and 12-fold, respectively. These changes in the compositionin the mutants starch were caused by 1.4- to 1.7-fold increase in amounts of granules-bound starch synthase (GBSSI). The starchgranules of the mutants were smaller with round shape, and were less crystalline. Thus, deficiency in SSIIIa, the second majorSS isozyme in developing rice endosperm affected the structure of amylopectin, amylase content, and physicochemicalproperties of starch granules in two ways: directly by the SSIIIa deficiency itself and indirectly by the enhancement of both SSIand GBSSI gene transcripts.[1].

Expression

Localization

Evolution

Knowledge Extension

Structured Information

Gene Name

Os08g0191433

Description

'

Definition

{{{Definition}}}

LocusTag

{{{tag}}}

Ensembl Transcript ID

{{{tid}}}

Ensembl Protein ID

{{{pid}}}

Length

10824 bp Definition =putative soluble starch synthase III-2 [Oryza sativa Indica Group]

Source

Oryza sativa Indica Group (long-grained rice)

 ORGANISM   Oryza sativa Indica Group
           Eukaryota; Viridiplantae; Streptophyta; Embryophyta; Tracheophyta;
           Spermatophyta; Magnoliophyta; Liliopsida; Poales; Poaceae; BEP
           clade; Ehrhartoideae; Oryzeae; Oryza.
Chromosome

Chromosome 8

Location

Chromosome 8:5352105..5363367

Sequence Coding Region

1..1553

                    /coded_by="join(AY100469.1:145..2839,
                    AY100469.1:3023..3237,AY100469.1:3771..4041,
                    AY100469.1:4633..4808,AY100469.1:4934..5041,
                    AY100469.1:5469..5578,AY100469.1:6943..7045,
                    AY100469.1:7310..7480,AY100469.1:7604..7732,
                    AY100469.1:7974..8156,AY100469.1:8264..8395,
                    AY100469.1:8475..8586,AY100469.1:8755..8878,
                    AY100469.1:9107..9239)"
                    /note="similar to maize dull1 gene"

GCID = <gbrowseImage1> name=5352105..5363367 source=RiceChromosome08 preset=GeneLocation </gbrowseImage1>

Genome Context

{{{GCID}}}

Gene Structure

<gbrowseImage2> name=5352105..5363367 source=RiceChromosome08 preset=GeneLocation </gbrowseImage2>

Coding Sequence

<cdnaseq>ATGGAGATGGCTCTCCGGCCTCAAAGCCTTCTATGCCCTCGGAGCAGGCTGAAGGTCGTCATCCGGCCAGCTAGCAGTGCCAGCGGTGGTGGCCTCGCGCAGTATTTCTTAATGACCAGGAGATATACTGGAAGCAGAATTGTTCGATGCATGGTTTCAAGTTCAGACTGTCCTAATAGGAAAGCAAAGAGGACGATTTCCCTTCATACGGAAGTCGCTTCTTCTAGGGGATATGCTCCGAGAATTGCTGCTGAATCAAGTATTCAGGAGCGAGAACATATTAATAGTGATGAAGAAACATTTGATACGTACAACAGATTACTACGTAATGAGTCAACAGAGTGGAAAAAGTTAGATACTACTGAAGTGGATTTGTCACAAGATGTTTCAAGCAGTTCAATGAGGAAAGTGGATGCGACGGATGAAGCTAAGCTAGATATACTTGAGGATGATTTGCCCAGAAATTTGTTGAACGGTGTAACAATGGGGGAAGTAGATATGTTGGATGAAGCTGGGGCAGAAGATGATGTATTTGAGGTGGACTTGTCAGCCTTGCATAATTCCACAGTGGGGAAAATGGATGCGGTAAATGAAGTTGGGACTGAAAATGACTTATTTGAGGTGGATCTGTCAGCATTGCATAGTGCTGCAGTGGGGAAGGTGGATGTAGTAGATGGAGCTAAAGCTAAAGAAGATTTGTTTGAGATGGATTCATTAGCATTGCACAGTGTTACAATGGGGAAGGTGGATGCAATAAATGCAGCTGGAGCTGAAGGAGACAAATTTGAGGTGGATCTGTCTGCGCTCGCGTCGAACAATTCAATGATAGAGGCAGTTAATGTGATGGATGAAGCTAAGGCTATAGAAGACACACTCGAGGTGGATTTGTCAGGAAATGCTACAAGCAGTTCAACATATGGGGAAGTTAAATTTGAGGTGGATTCATTAGGAAATACTTCAAGCACTGTAATGTATGGGCCAGCGGATGGAGCGTATGAACCTCGGTCCGATGAAGTCACTTTTAAGGTGGATTCATCAGAAAATGCGTCAAACAATGTAATGTATGGGAGAGCAGATGTGGTGGATGAATCTTGGGCTGATGAAGGCATATTTGAGGTGGATTTTTTTACAAATGCTTCAAGCGGCGCAGAATATGGAAAAGTGGATGTGGTGGATGAAGCTAAAACTGATGATTTCACATTTGAGATTGATTCATTAGAAAAAGATTCAAACAATAAAATGCATGGGAAAGCTCATATGGTGGATGAAGCTTGGGACGATGAAGCCATATTTGAGGTTGATTTGTTTGGAAATGCTTCAAGCATTCCGATATATGGGGAGGTGAATGTGTTGGATGAAGCTCGGGCTGATGATGGAAAATTTGAGGTTGACTTATTAGGGAATACTTCTAGCAATTCAACACATGAGGAAGTGGATGTGGTAGATGAAGCTCAAACAGGTGAAGCCACATTTGAGGTGGATTTGCTTGGAAATGCTTTAAGCAGTGCAATATATAAAGAAGTGCCTGTCATGGGTGGAGCTCAGGATGATGAAGTTGATGTAGATTTCTCAATAAATGCTTCAATCACCGAAACAGAAAAGGAAGCAGATGCAGTTGATGAAGCTAGAGTTGAAGATGAGACATTTGATATGGATTTAGTAGGTAAACAGATATCAATCGATTCTATGAATGATGATGTAGTTGAAGAAGGGACTAAACATCACAGATATCCAATGTTGTCTTCAGCATTCATAGAAGTCAAGACCATTCATGAAACACCTGTAAGTTTAAAGCCTGAACTTATGTCAGTTGTCATGGATCAGGAACAAGACAAACCAATTTCCAGCGTTTATCAACAAGAAGGATCAATTTTTAATTTGCATGCAGAAAACCAATCAACGGTAGATTTTCATGAACGGGAGCAAATGGCTATTACTTTTGATAAACAAAAGGAATCAGTTGCTAAACTCTCTAAAGAAGACCAACAGACTGCTGGTTTACCTGAGCAAAACATGTCCTTTGATGGTGTCCATAGGAAAAGCCAGTCAATTATTGGGCTCCCATTTCAACACCAATCAATTGTTAGTTCCCCTGAAAAATACCGATCAATTGTGGGTTTTCATGGACAAAATCAATCAATCATCAGCTCTCATAAACAAGACAAATCAATTGTTGGTGTTCCTAAAAAAATTCAATCCATTGTTGGTTCCACTAAGCATGATGATTCAATTGTTGGTTTCCGCAAACAAGACAGATCAATTGTTAGTGTGCCTGAGCAAAAACAATCAATAGTTGGTTTTCATAAACAAGATCTATCAATTGTTGCTGTCAGCGAACAAAATCTATCAATTGTTGCTATACCTAGAGAGAGTCAATCAAAGCAAATTTCTATTGTTCGGAGACATGATCCACTACATTTGAAGGAAGTGGAAACAAAGGATAGAGATGGCATATCTAAAAAATCTGGTGGTGACGATGATTTGCCACATATGCTCTTCGAAGAAGAGCTTTCACAGGTTGAAGATGTAGCAAGGGCAATCGCCTATAAAAAGCAGCATGAAGTTGATGTAATCTCTTTGACTCCAGATATCCAGGAGTCACCACAGGACAATATCGACCCACAAGAACTCCGAAGGATGCTCCAAGAACTTGCTGACCAGAATTGTTCAATGGGTAACAAGCTTTTCGTTTTTCCAGAGGCAGTGAAGGCTAATTCGACAATTGATGTATATTTGAATCGTAACCTATCGGCTTTGGCGAATGAGCCTGATGTCCACATCAAAGGAGCATTCAATAGTTGGAGATGGAGGCCTTTCACCGAAAGACTGCACAAGAGTGAATTGAGTGGGGATTGGTGGTCTTGCAAACTGCACATACCCAAGGAAGCTTATAGATTAGACTTTGTGTTCTTCAATGGTCGTTTAGTCTATGATAACAATGATAGTAATGATTTTGTGCTGCAAGTAGAAAGTACAATGGATGAAGATTCCTTTGAGGAGTTCTTGGTTGAAGAAAAGAAAAGAGAACTTGAGAGAGTTGCCACTGAAGAAGCTGAAAGGAGGAGGCATGCTGAAGAGCAGCAGCGAATGGGAGAACAAAGGGCTGCAGAACAAGCTGCCAGGGAACAGGCTAAGAAGGAGATAGAGTTGAAGAAGAACAAATTGCAAAATCTGTTGAGTTCAGCCAGAACACATGTTGATAATTTGTGGCACATAGAGCCTAGCACATATAGACAAGGGGACACTGTCAGATTGTACTATAACAGAAACTCAAGGCCGCTTATGCATAGTACTGAGATCTGGATGCATGGTGGTTGCAATAGTTGGACTGATGGACTCTCTATTGTTGAAAGACTTGTCGAATGTGATGACGAAAATGGTGATTGGTGGTATGCTAATGTTCATATACCTGAAAAGGCCTTTGTATTGGACTGGGTTTTTGCTGACGGGCCACCTGGAAATGCAAGGAATTATGACAACAATGGTCGACAAGATTTTCATGCTATTCTTCCAAATGCCATGACTAACGAAGAATATTGGGTTGAAGAGGAAAACTGTATCTATACAAGGCTTCTCCACGAGATCAGAGAACGGGAGGAAGCTATTAAAATAAAGGTTGAGAAAAGAGCAAAAATGAAATCTGAGATGAAGGAAAAGACTATGAGAATGTTTCTACTTTCTCAGAAACACATTGTTTATACTGAACCACTTGAAATACGTGCTGGAACAACTGTGGATGTTCTATATAATCCTTCTAATACGGTGCTGAATGGAAAGCCAGAGGTTTGGTTTAGGTGGTCCTTTAACCGATGGATGCATCCAAGTGGTGTTTTACCACCCAAGAAGATGGTGAAAACAGAAGATGGTTGTCACTTAAAAGCGACAGTTAGTGTTCCATCGGATGCTTATATGATGGACTTTGTTTTCTCTGAGTCGGAAGAAGGTGGAATCTATGACAACAGGAATGGGACAGACTATCATATTCCTGTTTCTGGTTCCAATGCAAAGGAGCCTCCCATTCATATTGTCCATATAGCGGTTGAGATGGCACCCATTGCAAAGGTTGGAGGCCTTGCTGACGTTGTCACAAGTCTTTCACGTGCAATTCAAGAGTTAGGCCATCATGTTGAGGTTATTCTCCCGAAATATAATTTTATGAATCAAAGCAATGTGAAGAATTTGCATGTACGTCAAAGCTTTTCTTTGGGTGGTACAGAAATTAAAGTGTGGTTTGGACTAGTTGAAGACCTGTCTGTTTACTTCTTGGAACCTCAAAATGGGATGTTTGGGGGTGGATGGGTATATGGAGGGAACGATGCTGGCAGATTTGGCTTGTTCTGTCAGTCTGCTCTAGAGTTCCTCCTTCAGAGTGGATCTTCTCCACATATAATACACTGCCATGATTGGTCAAGTGCACCAGTTGCCTGGCTATACAAGGAACACTATGCAGAATCCAGGTTGGCAACTGCCCGGATTATATTTACCATCCATAATCTTGAGTTTGGAGCACATTTTATTGGAAAAGCAATGACATACTGCGACAAAGCCACAACTGTTTCTCACACGTATTCAAAGGAAGTCGCAGGTCATGGTGCCATAGCTCCTCATCGTGGAAAATTCTATGGAATTCTCAATGGAATTGATCCAGATATCTGGGATCCATATACTGATAACTTCATCCCGATGCATTATACTTCTGAAAATGTGGTTGAAGGCAAGAATGCTGCAAAGAGAGCATTGCAGCAGAGGTTTGGACTGCAGCAGACTGATGTCCCCATTGTTGGAATCATCACTCGTCTGACAGCCCAGAAGGGTATCCACCTCATTAAACATGCACTTCATCGGACACTTGAACGCAATGGACAGGTGGTTTTGCTTGGTTCAGCTCCAGATCCTCGGATACAGAGTGATTTCTGCAGATTGGCTGATAGTCTTCATGGTGAAAACCATGGCAGGATATATGCTGGCTCTGACTTCATCCTTGTTCCATCCATCTTTGAACCTTGCGGTTTGACTCAACTTGTTGCCATGCGCTATGGATCCATCCCTATTGTTCGGAAAACCGGAGGACTTTACGACACTGTTTTCGACGTAGACCATGACAAAGACCGGGCTCGAGTTCTAGGCCTTGAACCAAATGGGTTCAGCTTTGATGGAGCTGACTGTAATGGTGTGGATTACGCCCTGAACAGGCAACAATCTCTTCTTGGTTTGAAGCCCGCGGTTGGTTCCACTCCCTCTGCAAAAGGGTCATGGAGCAAGACTGGTCCTGGAACCGGCCTGCCCTGGACTACATTGAACTGTACCATTCAGCTCACAAATTTTGAGGCCCCCATCCAACGGTGGCAAGAGAAAGCAAGCATTGGCAGATACTACAAATTAAATGAAACATGGCTCAAAGTTAAAATATTTTATCTGAGCTGCAGATACAAATTAACTCAAACATGGTTCAAAGTTAAGATCTTTTATCTGAGCTACACATATATATGCAGAATAAAGACTCTTTACAGCATGCATAAACAATTGTGGGAGTATGTATCAGCTATGTTTCCTATTCTCAGTTTTAATTATGAATACTTGATTTAG</cdnaseq>

Protein Sequence

<aaseq>MEMALRPQSLLCPRSRLKVVIRPASSASGGGLAQYFLMTRRYTGSRIVRCMVSSSDCPNRKAKRTISLHTEVASSRGYAPRIAAESSIQEREHINSDEETFDTYNRLLRNESTEWKKLDTTEVDLSQDVSSSSMRKVDATDEAKLDILEDDLPRNLLNGVTMGEVDMLDEAGAEDDVFEVDLSALHNSTVGKMDAVNEVGTENDLFEVDLSALHSAAVGKVDVVDGAKAKEDLFEMDSLALHSVTMGKVDAINAAGAEGDKFEVDLSALASNNSMIEAVNVMDEAKAIEDTLEVDLSGNATSSSTYGEVKFEVDSLGNTSSTVMYGPADGAYEPRSDEVTFKVDSSENASNNVMYGRADVVDESWADEGIFEVDFFTNASSGAEYGKVDVVDEAKTDDFTFEIDSLEKDSNNKMHGKAHMVDEAWDDEAIFEVDLFGNASSIPIYGEVNVLDEARADDGKFEVDLLGNTSSNSTHEEVDVVDEAQTGEATFEVDLLGNALSSAIYKEVPVMGGAQDDEVDVDFSINASITETEKEADAVDEARVEDETFDMDLVGKQISIDSMNDDVVEEGTKHHRYPMLSSAFIEVKTIHETPVSLKPELMSVVMDQEQDKPISSVYQQEGSIFNLHAENQSTVDFHEREQMAITFDKQKESVAKLSKEDQQTAGLPEQNMSFDGVHRKSQSIIGLPFQHQSIVSSPEKYRSIVGFHGQNQSIISSHKQDKSIVGVPKKIQSIVGSTKHDDSIVGFRKQDRSIVSVPEQKQSIVGFHKQDLSIVAVSEQNLSIVAIPRESQSKQISIVRRHDPLHLKEVETKDRDGISKKSGGDDDLPHMLFEEELSQVEDVARAIAYKKQHEVDVISLTPDIQESPQDNIDPQELRRMLQELADQNCSMGNKLFVFPEAVKANSTIDVYLNRNLSALANEPDVHIKGAFNSWRWRPFTERLHKSELSGDWWSCKLHIPKEAYRLDFVFFNGRLVYDNNDSNDFVLQVESTMDEDSFEEFLVEEKKRELERVATEEAERRRHAEEQQRMGEQRAAEQAAREQAKKEIELKKNKLQNLLSSARTHVDNLWHIEPSTYRQGDTVRLYYNRNSRPLMHSTEIWMHGGCNSWTDGLSIVERLVECDDENGDWWYANVHIPEKAFVLDWVFADGPPGNARNYDNNGRQDFHAILPNAMTNEEYWVEEENCIYTRLLHEIREREEAIKIKVEKRAKMKSEMKEKTMRMFLLSQKHIVYTEPLEIRAGTTVDVLYNPSNTVLNGKPEVWFRWSFNRWMHPSGVLPPKKMVKTEDGCHLKATVSVPSDAYMMDFVFSESEEGGIYDNRNGTDYHIPVSGSNAKEPPIHIVHIAVEMAPIAKVGGLADVVTSLSRAIQELGHHVEVILPKYNFMNQSNVKNLHVRQSFSLGGTEIKVWFGLVEDLSVYFLEPQNGMFGGGWVYGGNDAGRFGLFCQSALEFLLQSGSSPHIIHCHDWSSAPVAWLYKEHYAESRLATARIIFTIHNLEFGAHFIGKAMTYCDKATTVSHTYSKEVAGHGAIAPHRGKFYGILNGIDPDIWDPYTDNFIPMHYTSENVVEGKNAAKRALQQRFGLQQTDVPIVGIITRLTAQKGIHLIKHALHRTLERNGQVVLLGSAPDPRIQSDFCRLADSLHGENHGRIYAGSDFILVPSIFEPCGLTQLVAMRYGSIPIVRKTGGLYDTVFDVDHDKDRARVLGLEPNGFSFDGADCNGVDYALNRQQSLLGLKPAVGSTPSAKGSWSKTGPGTGLPWTTLNCTIQLTNFEAPIQRWQEKASIGRYYKLNETWLKVKIFYLSCRYKLTQTWFKVKIFYLSYTYICRIKTLYSMHKQLWEYVSAMFPILSFNYEYL</aaseq>

Gene Sequence

<dnaseqindica>atggagatggctctccggcctcaaagccttctatgccctcggagcaggctgaaggtcgtcatccggccagctagcagtgccagcggtggtggcctcgcgcaggtatgattcagtttcaagaagttcatgattccggctgctcttgcttttcttgatttgcttgatccaccaagtgttcgtccttctgaaggggcatgcaagattatttactcagttacatgatctcaaatattaatattttggttgtgtttcctgtggttttgattcatttcatcttgggaacatactctggtgatgaaggggaaattcatgttatggggagttctttcctggactttcttacggttgttgatagatttgattgaaatattttgggaaatatttctgtggtcaatgatcttaattctcaaatttagattaggttaaaacaacgggactgaaagttcctttctggagatcgaaaggtagttaattctactccatttgttaaaatttccccccaagtacttgtatatttaggtctgcataatcattgaaagatttcctcatctgggctaattctgttcagttttgaagtgaagcctaaaagaccttgtcctcttgttttgatttgttgggttcttgttttgtaaggaaaaataccgctcattatgcacccccttttttatctacagttgaacattatgcatttacattaatgtgagagggtatcatccattctaaaccgacatgctaagaaatatggtttcggagtgcaattcagtataattttttaaatatttttctgacaggaattctttcaataattttatattgaggatctgagaggcatagattttttatagtaaaataacctacatatttcaaaacagcaatattgattcaaataattcaatactccctccgtccctttataattgtcgtttgggagttgtgcccccctcacaagcacagattcctagcgactaataaaaggggacagagggagtaagttctttttattgaaacatctcgagctacaatatttactttcttttctttttccagtatttcttaatgaccaggagatatactggaagcagaattgttcgatgcatggtttcaagttcaggtttgtgtaggatagcttcgtaaaagctttattaattttcttatttgctatgctaaggtcatgtttgttaaaattatatcatgcagactgtcctaataggaaagcaaagaggacgatttcccttcatacggaagtcgcttcttctaggggatatgctccgagaattgctgctgaatcaagtattcaggagcgagaacatattaatagtgatgaagaaacatttgatacgtacaacagattactacgtaatgagtcaacagagtggaaaaagttagatactactgaagtggatttgtcacaagatgtttcaagcagttcaatgaggaaagtggatgcgacggatgaagctaagctagatatacttgaggatgatttgcccagaaatttgttgaacggtgtaacaatgggggaagtagatatgttggatgaagctggggcagaagatgatgtatttgaggtggacttgtcagccttgcataattccacagtggggaaaatggatgcggtaaatgaagttgggactgaaaatgacttatttgaggtggatctgtcagcattgcatagtgctgcagtggggaaggtggatgtagtagatggagctaaagctaaagaagatttgtttgagatggattcattagcattgcacagtgttacaatggggaaggtggatgcaataaatgcagctggagctgaaggagacaaatttgaggtggatctgtctgcgctcgcgtcgaacaattcaatgatagaggcagttaatgtgatggatgaagctaaggctatagaagacacactcgaggtggatttgtcaggaaatgctacaagcagttcaacatatggggaagttaaatttgaggtggattcattaggaaatacttcaagcactgtaatgtatgggccagcggatggagcgtatgaacctcggtccgatgaagtcacttttaaggtggattcatcagaaaatgcgtcaaacaatgtaatgtatgggagagcagatgtggtggatgaatcttgggctgatgaaggcatatttgaggtggatttttttacaaatgcttcaagcggcgcagaatatggaaaagtggatgtggtggatgaagctaaaactgatgatttcacatttgagattgattcattagaaaaagattcaaacaataaaatgcatgggaaagctcatatggtggatgaagcttgggacgatgaagccatatttgaggttgatttgtttggaaatgcttcaagcattccgatatatggggaggtgaatgtgttggatgaagctcgggctgatgatggaaaatttgaggttgacttattagggaatacttctagcaattcaacacatgaggaagtggatgtggtagatgaagctcaaacaggtgaagccacatttgaggtggatttgcttggaaatgctttaagcagtgcaatatataaagaagtgcctgtcatgggtggagctcaggatgatgaagttgatgtagatttctcaataaatgcttcaatcaccgaaacagaaaaggaagcagatgcagttgatgaagctagagttgaagatgagacatttgatatggatttagtaggtaaacagatatcaatcgattctatgaatgatgatgtagttgaagaagggactaaacatcacagatatccaatgttgtcttcagcattcatagaagtcaagaccattcatgaaacacctgtaagtttaaagcctgaacttatgtcagttgtcatggatcaggaacaagacaaaccaatttccagcgtttatcaacaagaaggatcaatttttaatttgcatgcagaaaaccaatcaacggtagattttcatgaacgggagcaaatggctattacttttgataaacaaaaggaatcagttgctaaactctctaaagaagaccaacagactgctggtttacctgagcaaaacatgtcctttgatggtgtccataggaaaagccagtcaattattgggctcccatttcaacaccaatcaattgttagttcccctgaaaaataccgatcaattgtgggttttcatggacaaaatcaatcaatcatcagctctcataaacaagacaaatcaattgttggtgttcctaaaaaaattcaatccattgttggttccactaagcatgatgattcaattgttggtttccgcaaacaagacagatcaattgttagtgtgcctgagcaaaaacaatcaatagttggttttcataaacaagatctatcaattgttgctgtcagcgaacaaaatctatcaattgttgctatacctagagagagtcaatcaaagcaaatttctattgttcggagacatgatccactacatttgaaggaagtggaaacaaaggatagagatggcatatctaaaaaatctggtggtgacgatgatttgccacatatgctcttcgaagaagagctttcacaggttgaagatgtagcaagggcaatcgcctataaaaagcagcatgaagttgatgtaatctctttgactccagatatccaggagtcaccacaggacaatatcgacccacaagaactccgaaggatgctccaagaacttgctgaccagaattgttcaatgggtaacaagcttttcgtttttccagaggcagtgaaggctaattcgacaattgatgtatatttgaatcgtaacctatcggctttggcgaatgagcctgatgtccacatcaaaggagcattcaatagttggagatggaggcctttcaccgaaagactgcacaagagtgaattgagtggggattggtggtcttgcaaactgcacatacccaaggaagcttatagattagactttgtgttcttcaatggtcgtttagtctatgataacaatgatagtaatgattttgtgctgcaagtagaaagtacaatggatgaagattcctttgaggagttcttggttgaagaaaagaaaagagaacttgagagagttgccactgaagaagctgaaaggaggaggcatgctgaagagcagcagcgaatgggagaacaaagggctgcagaacaagctgccagggaacaggctaagaaggagatagagttgaagaagaacaaattgcaaaatctgttgagttcagccagaacacatgttgataatttgtggcacatagagcctagcacatatagacaaggggacactgtcagattgtactataacagaaactcaaggccgcttatgcatagtactgagatctggatgcatggtggttgcaatagttggactgatggactctctattgttgaaagacttgtcgaatgtgatgacgaaaatggtgattggtggtatgctaatggtatgatattacacatttttctcttacttgggtaggagtatattagagcatcataagatacattaccacattagcgtagggcttctagaaaaaaaaatccttgttctagttatcttgcactcttatttttttggtttacttgggtaagaatatatgtaatgcattgcttttcgttttaaacagttcatatacctgaaaaggcctttgtattggactgggtttttgctgacgggccacctggaaatgcaaggaattatgacaacaatggtcgacaagattttcatgctattcttccaaatgccatgactaacgaagaatattgggttgaagaggaaaactgtatctatacaaggcttctccacgagatcagagaacgggaggaagctattaaaataaaggtcagtcaaaatagaatctttaaatatggacttggttatttgatccagagttttacaacatggttctgatgtattttgttggctgacgaattctcttgcaattgttctatttgtaattaacttgcgtagagctaatgaacttcacatgtgaaatcaggtttttgaccaaccgattaccttctttttttttgtggggatgtttttgaccaaataagttactatttcacatcctaagacatgttataaaattcatccaaactcagtattctttcaaatatacaataattaatttgaccagttagatcattcttcactttgaacttgtgccttaagctgactgttttgaccaaacgaattgatggcccacccagttagcagttagcactatttattggaacttctgttataccatattatattattcaaggaaaaatgtagttgttcactgtcatgtatatatcttgatgttttgaacatcagatatatgttgtgaagtccttcggcttactattcccacttttttgcttgtacaggttgagaaaagagcaaaaatgaaatctgagatgaaggaaaagactatgagaatgtttctactttctcagaaacacattgtttatactgaaccacttgaaatacgtgctggaacaactgtggatgttctatataatccttctaatacggtgctgaatggaaagccagaggtttggtttaggtggtcctttaaccgatggatgcatccaagtggtgttttaccacccaagaagatggtgaaaacagaagatggttgtcacttaaaagcgacaggtttgagcttgacttgttacattgttccttttaatgctgatagatttatatgatacatgtactgatgtgcacttttatccattaatatatattattaagtgctactggaccattaattgatcaagcactgttgaagtatatgtctagcaatgttccaactttgatccataaatggtatctagtaccaattttgaaacctgaatcacaaggtgacataattatactattctgaagagctagctagtttagtgcctaaatgagctacgacaattctgtaactggagttttctaaatgttataactgcaaaaaatctagctggtttactgtagacataattcattataatatctagtatatcgcagtctaacccagaagagctcaaaatttcaaactactttggattattactcaactcttggtaaaaggtggcaatttggtgattaaactcaataatgtcctgtcaaaatttaccttttatgtttaacttattttggaactttggttggtatatcgttcagtttactcaatattacagtgtaatacattttttcccttccatattcattagtccctgttatgttccttctccagttagtgttccatcggatgcttatatgatggactttgttttctctgagtcggaagaaggtggaatctatgacaacaggaatgggacagactatcatattcctgtttctggttccaatgcaaaggagcctcccattcatattgtccatatagcggttgagatggcacccattgcaaaggtaagccatattaccatgtaaaattttctgtggctagcaacagtgctagacatcaacacttgccaagttatctgttatttctatgtgcataaagtaatgccatactctgtaatctccaattacaggttggaggccttgctgacgttgtcacaagtctttcacgtgcaattcaagagttaggccatcatgttgaggttattctcccgaaatataattttatgaatcaaagcaatgtaagttcaagtagcacaacagcctatgtttctcctattatataatatattatttatttattttcggtttctgtggtggttttgtcgctaagaaactcaaatcgaagagctctctattttaagagagtctattacgatactgtatatggatgtgctccgtgttgtccttcctttctcagttagttaggatttgtgttagatatgtggattgctgtcaaatattcgaaatgtaccttaatatatcatatacaattctagttctaaattttgtattatttgaaaaaaaataactttttcatgtcttgtccttgatgcacaagaactatggaggcaaagaggacttgtcaagtgtagcagagaactcaagaatatagaaaagtggattttatatcttgtatgaaccatgtttcatccgtttcaatgcaggtgaagaatttgcatgtacgtcaaagcttttctttgggtggtacagaaattaaagtgtggtttggactagttgaagacctgtctgtttacttcttggaacctcaaaatgggtatgttgcatctcattcttcacacaaacatagctattagtctattactcttgtttcacgaaaaccatcatccctaatccttatactagctaatgcacagttcactaagcctaagatgcagggtatgatatccttctaaaaaccaattgttggttcctgtcgagtacaagagctaacttagtactccctctgttttttaatagatgacgccgttgactttttctcacatgtttgaccattcgtcttattcaaaaattttatgcaaatgtatacgatataaatcacacttaaagaactatgagtgataaaacaactcataacaaaataaattataattccgtaaatattttgaataagacgaatggtcaaacatgtgagaaagtcaacggcgtcatctattaaaaaacggaggtagtaccagttattcaaaccttggccagtttaggcccttcttttgatccctccttccactgcagtatgcatattattattttttttcaagtatgtgatacaaatctgaaatctaaatataagaattaaaggtacaatcaccaaatgcaacccaccagaagtataatgatttcgattttttttttcatttttagtcttcaatatcattctctttctttgtttccatgttttgcctcagctggtagtctgagcagaatagttctgttctaagcttagattgcaaaattgtttttgagaatccatgtaatgtgttttgccgctccttagcatggatggtggtttaaatcttttcccttaatacgaagatatgcaaatctttttcttagtttgggtcgcaaaattgtttgtgatttttttgagaatgttatgcactgatcatgattctacttcagttattagaattggtatctttagtcctctaaccttgaccaaacaattgtgacctattcagctctttgactaggcataaggacctagccagggttaaagagtttgctggttcgagctcaaatcaggatatctgagaacaacctggccttgccctttctcagcctatattggcctttactgggaacacaaattgcttgggtagcattagtatttagctagtttatatttatttcgatttttgctctaccatatccatgaactgcaagttctctacacaacttcatggcgctgaattgacagaagaacatttgtaagatgcaccagggcttaggtgattacaccacactgtactataattcatacacatgctagtataattatttactcctgactggttcagttcctgtatgatgatttcagttatcgcaggaactgttttggagattgtttccttgtaggtggcttcacagaataatcaatttggcatgtcttgtggcaggatgtttgggggtggatgggtatatggagggaacgatgctggcagatttggcttgttctgtcagtctgctctagagttcctccttcagagtggatcttctccagtaagtatttctctaattgaaaacttccaagtccaaaatcagtgataaaagagaattttttacttttggtaataaatatattgttttttcctcttgatattttcttcacgttcttgttttccatgcttgcatttcattatgtcaaaacatgtttaagtcactgacttatttgctgcattagccttttctttcccagtcactttttcaccttacattcactttactcctcttttcaaaaagagtgacattttatcgtcctgacagcatataatacactgccatgattggtcaagtgcaccagttgcctggctatacaaggaacactatgcagaatccaggttggcaactgcccggattatatttaccatccataatcttgagtttggagcacattttattggaaaagcaatgacatactgcgacaaagccacaactgtgagtgcctgattgtcttgaagagttttatcatctagtttggtgcattttcatgttatatgaaaaataaaattattttcatatgttcaaacatcttcatgtctgtcttgccataccttgcaggtttctcacacgtattcaaaggaagtcgcaggtcatggtgccatagctcctcatcgtggaaaattctatggaattctcaatggaattgatccagatatctgggatccatatactgataacttcatcccggtatagtcatgatagtcgaatacatttttatacaactaccagtccatatgtatttgatcttggtaaactaaaacaaagtttgcttgggttgccaattatgcgcactcataagattatcactttaactaatacttttgtgatagttgtcctaatatgtaattattgaaagtgcaaatgcacactgatgccacagtattgccccaaacatttttcatgttttgcttatttcatcctatgtcagatgcattatacttctgaaaatgtggttgaaggcaagaatgctgcaaagagagcattgcagcagaggtttggactgcagcagactgatgtccccattgttggaatcatcactcgtctgacagcccagaagggtatccacctcattaaacatgcacttcatcggacacttgaacgcaatggacaggttaatcatttgatgacaatcttctagtgtctccctagaacttgcttttccctttcgcaattatttttgccgacctatctgaaacaagtgatgtgtttgctttttaggtggttttgcttggttcagctccagatcctcggatacagagtgatttctgcagattggctgatagtcttcatggtgaaaaccatggcagggttagactatgtttaacttatgacgagcctctctcacacctggtcagttccaatatcctacaccatcaaattggtctaaaaaaattgttgctggctaataatttcagtgattctgctacagatatatgctggctctgacttcatccttgttccatccatctttgaaccttgcggtttgactcaacttgttgccatgcgctatggatccatccctattgttcggaaaaccggaggtgagtgtacataataacatgtacatatatgagctttcttactgacctcaaggaccataaaaatgctttacatacatagatagcttactggtactcctatgattcattctctcctttctttgcacatcatgagctgaacgtgaatcctattttcttcacgcgcaggactttacgacactgttttcgacgtagaccatgacaaagaccgggctcgagttctaggccttgaaccaaatgggttcagctttgatggagctgactgtaatggtgtggattacgccctgaacaggcaagtacctccacacctcacaattgtgtgaatgcacaattgagctgaacataatcgtacagaaccccgagccaaattcatcatgtgacatccgtgtggtttgtgtgcttggtggtctattgtttatgtgtcttccatgtaatcgcaaacaaaaaaagaagaagaattatcttccctaattcaatcatatattatcttattcatgcaatgtttgctacccttttgcagagcaatctcttcttggtttgaagcccgcggttggttccactccctctgcaaaagggtcatggagcaagactggtcctggaaccggcctgccctggactacattgaactgtaccattcagctcacaaattttgaggcccccatccaacggtggcaagagaaagcaagcattggcagatactacaaattaaatgaaacatggctcaaagttaaaatattttatctgagctgcagatacaaattaactcaaacatggttcaaagttaagatcttttatctgagctacacatatatatgcagaataaagactctttacagcatgcataaacaattgtgggagtatgtatcagctatgtttcctattctcagttttaattatgaatacttgatttagtaccagaaccgtgtacatatgtttgcaaaattgcaagtaaaatgaaggtgtagaactataatgttgttctatggtttcttttgcgctacatctggactatggctatggcgtggctgtgtatgccttgcaagagaaatattcccaatgacaatatatggctgctcaattggcttccaggtc</dnaseqindica>

External Link(s)

RefSeq:Os08g0191433

References

<references>

Naoko Fujita;Mayumi Yoshida;Tomonori Kondo;Kaori Saito;Yoshinori Utsumi;Takashi Tokunaga;Aiko Nishi;Hikaru Satoh;Jin-Hee Park;Jay-Lin Jane;Akio Miyao;Hirohiko Hirochika and Yasunori Nakamura. Characterization of SSIIIa-Deficient Mutants of Rice: The Function of SSIIIa and Pleiotropic Effects by SSIIIa Deficiency in the Rice Endosperm. Plant Physiology, 2007, 144(4): 2009-2023.
  1. 1.0 1.1 1.2 1.3 1.4 Cite error: Invalid <ref> tag; no text was provided for refs named ref4
  2. 2.0 2.1 2.2 Zhang M, Zhang B, Qian Q, et al. Brittle Culm 12, a dual‐targeting kinesin‐4 protein, controls cell‐cycle progression and wall properties in rice[J]. The Plant Journal, 2010, 63(2): 312-328.
  3. Miyako Kusano;Atsushi Fukushima;Naoko Fujita;Yozo Okazaki;Makoto Kobayashi;Naoko Fujita Oitome;Kaworu Ebana;Kazuki Saito. Deciphering Starch Quality of Rice Kernels Using Metabolite Profiling and Pedigree Network Analysis. Molecular Plant, 2011, 5(2): 442-451.
  4. Nayeon Ryoo;Chul Yu;Cheon-Seok Park;Moo-Yeol Baik;In Myoung Park;Man-Ho Cho;Seong Hee Bhoo;Gynheung An;Tae-Ryong Hahn;Jong-Seong Jeon. Knockout of a starch synthase gene OsSSIIIa / Flo5 causes white-core floury endosperm in rice ( Oryza sativa L.). Plant Cell Reports, 2007, 26(7): 1083-1095.