Difference between revisions of "Os03g0811100"

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(Annotated Information)
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==Annotated Information==
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==Function==
rice Chl1 and Chl9 genes on chromosome 3 encode ChlD and ChlI subunits of Mgchelatase,respectively.MgProto accumulated at a lowerlevel in both chl1 and chl9 mutants when the seedlings were fed by ALA-DP in complete darkness, indicating that Mg-chelatase activity is severely reduced, resulting in decrease in chlorophyll synthesis and underdevelopment of chloroplats. In addition, we present for the first time that the ChlD subunit of Mg-chelatase also negatively regulates the expression of nuclear genes encoding photosynthetic proteins in chloroplasts.
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Rice Chl1 and Chl9 genes on chromosome 3 encode ChlD and ChlI subunits of Mgchelatase, respectively.MgProto accumulated at a lowerlevel in both chl1 and chl9 mutants when the seedlings were fed by ALA-DP in complete darkness, indicating that Mg-chelatase activity is severely reduced, resulting in decrease in chlorophyll synthesis and underdevelopment of chloroplats. In addition, the ChlD subunit of Mg-chelatase also negatively regulates the expression of nuclear genes encoding photosynthetic proteins in chloroplasts. Chl1 and Chl9 genes encode the OsChlD and OsChlI subunits of Mg-chelatase, respectively, that play an important role in chloroplast development as a modulator of MgProto. Northern blots analysis revealed that ChlD subunit participates in the negative feedback regulation for the expression of nuclear genes encoding chloroplast proteins.
  
 
===Expression===
 
===Expression===
Please input expression information here.
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Rice Chl1 and Chl9 genes on chromosome 3 encode ChlD and ChlI,in chl1 mutants, the levels of OsChlH and OsChlI transcripts increased about 2.5-fold and OsChlD transcript levels were about 1.7-fold higher than the wild-type. In the chl9 mutant, however, OsChlH and OsChlD transcript
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levels were not altered and the OsChlI transcript was also present in the mutant.expression levels of photosynthetic genes such as the nuclear LhcpII genes encoding a Chl-binding thylakoid protein and the chloroplast RbcL gene encoding a stroma protein to determine if the expressions of nuclear and chloroplast genes were affected in the chl1 and chl9 mutants. Functional OsChlD subunit encoded by the Chl1 gene participates in the negative feedback regulation of plastid-to-nucleus signaling mechanisms that control the expression levels of nuclear genes encoding chloroplast proteins. The expression of chloroplast genes like RbcL is not affected by the activity of Mg-chelatase.
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===Evolution===
 
===Evolution===

Revision as of 11:55, 5 June 2014

Please input one-sentence summary here.

Function

Rice Chl1 and Chl9 genes on chromosome 3 encode ChlD and ChlI subunits of Mgchelatase, respectively.MgProto accumulated at a lowerlevel in both chl1 and chl9 mutants when the seedlings were fed by ALA-DP in complete darkness, indicating that Mg-chelatase activity is severely reduced, resulting in decrease in chlorophyll synthesis and underdevelopment of chloroplats. In addition, the ChlD subunit of Mg-chelatase also negatively regulates the expression of nuclear genes encoding photosynthetic proteins in chloroplasts. Chl1 and Chl9 genes encode the OsChlD and OsChlI subunits of Mg-chelatase, respectively, that play an important role in chloroplast development as a modulator of MgProto. Northern blots analysis revealed that ChlD subunit participates in the negative feedback regulation for the expression of nuclear genes encoding chloroplast proteins.

Expression

Rice Chl1 and Chl9 genes on chromosome 3 encode ChlD and ChlI,in chl1 mutants, the levels of OsChlH and OsChlI transcripts increased about 2.5-fold and OsChlD transcript levels were about 1.7-fold higher than the wild-type. In the chl9 mutant, however, OsChlH and OsChlD transcript levels were not altered and the OsChlI transcript was also present in the mutant.expression levels of photosynthetic genes such as the nuclear LhcpII genes encoding a Chl-binding thylakoid protein and the chloroplast RbcL gene encoding a stroma protein to determine if the expressions of nuclear and chloroplast genes were affected in the chl1 and chl9 mutants. Functional OsChlD subunit encoded by the Chl1 gene participates in the negative feedback regulation of plastid-to-nucleus signaling mechanisms that control the expression levels of nuclear genes encoding chloroplast proteins. The expression of chloroplast genes like RbcL is not affected by the activity of Mg-chelatase.


Evolution

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Labs working on this gene

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References

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Structured Information

Gene Name

Os03g0811100

Description

Similar to Magnesium-chelatase subunit chlD, chloroplast precursor (EC 6.6.1.1) (Mg-protoporphyrin IX chelatase) (Mg-chelatase subunit D)

Version

NM_001058203.1 GI:115456134 GeneID:4334537

Length

6670 bp

Definition

Oryza sativa Japonica Group Os03g0811100, 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

Chromosome 3

Location

Chromosome 3:34806026..34812695

Sequence Coding Region

34806050..34806310,34807137..34807315,34807489..34807573,34807653..34807969,34808130..34808253
,34808957..34809049,34809443..34809538,34809852..34810001,34810075..34810272
,34810560..34810715,34810863..34810970,34811139..34811273,34811356..34811511
,34811691..34811811,34812329..34812414

Expression

GEO Profiles:Os03g0811100

Genome Context

<gbrowseImage1> name=NC_008396:34806026..34812695 source=RiceChromosome03 preset=GeneLocation </gbrowseImage1>

Gene Structure

<gbrowseImage2> name=NC_008396:34806026..34812695 source=RiceChromosome03 preset=GeneLocation </gbrowseImage2>

Coding Sequence

<cdnaseq>atggcgatggccaccaccgcgctctccgcctccctcccgcgcctactcccgcctcgccgccgccgcttcccgacgccctcctcctcctccccctccgccgcatccacctccacctcccgcgtcgtccgcctgcgggccgccgcggcctcggcgccatccgaggtcctcgactccaccaacggggccatcccctcggggaagggcggcggcgggcagcagtacgggagggagtatttccccttggccgctgtcgtcgggcaggatgcaattaaaactgctctgctgcttggggcaattgaccgtgaaattggaggcatcgccatctcagggaagcgtgggacagcaaagacagtgatggctcgtggcttgcacgctatgcttccacctattgaagtggttgtaggctcgattgcaaatgctgaccctaactacccagaagaatgggaggagggtttggctaaccaagttcaatatgatgctgatggtaacttgaagaccgagattatcaaaacaccttttgtgcagatcccgcttggtatcactgaggataggttaatcggatcagtcgatgttgaagcatctgtgaaatcaggaactactgtgtttcaacctggccttcttgctgaagctcacagaggcgttctttatgttgatgagataaatctattggatgagggcgtaagcaatctacttctgaatgtcttgactgagggagtcaatattgtggaaagagagggcattagctttcgtcatccatgcaaaccacttctaattgctacttacaacccagaggaaggatctgtacgtgaacacttacttgatcgtattgcaattaatttaagcgctgatctgccaatgagttttgatgatcgtgtggcagctgtggatattgcaacacaatttcaagagtccagcaaagaggtttttaaaatggtggaagaagaaactgaggttgcaaaaacccagataattttggcaagagaatatctgaaagatgttgcaatcagcacagagcagctcaaatatcttgtcatggaagctatacgcggtggctgtcaggggcaccgggctgagctgtatgctgctcgagtggcaaaatgtcttgctgctatggaagggcgtgaaaaagtatatgtggatgaccttaagaaagctgtagagctagttattctacctcgatcaatcctatctgataacccacaggagcagcaagaccaacaacctcctccacccccaccgccaccccctccacaagatcaagattctcaagaagatcaagatgaagacgaggaagaggaccaagaggacgatgatgaagaaaatgaacagcaggaccagcagatacctgaggagttcatttttgatgctgaaggtggtatagtagatgagaagctccttttctttgctcagcaagctcaaagacggcgagggaaagctggacgagcaaagaatctcatattctcatctgataggggacgatacataggttctatgcttcccaagggtccaataaggaggttagctgttgatgccacacttcgagcagctgcaccataccagaaactgaggagagagaaagatcgtgacaagacaagaaaggtttttgttgaaaaaactgacatgagagccaaaagaatggctcgaaaagcaggcgcactggtcatatttgttgtggatgctagcggtagcatggctctgaatcgcatgcagaatgcgaaaggtgcagcattaaagttgcttgcagaaagctacacaagcagagatcaggtttcaatcattccatttcgtggagattttgctgaggttcttcttccaccttcaagatccatagcaatggcccgcaatcgtcttgagaagctaccatgtggtggcggttctcctttagctcacggccttagcacagctgtcagagtgggtttgaatgctgaaaagagcggtgatgttggacgtatcatgattgttgcaatcaccgatggaagagctaatgtgtcactgaagaaatcgactgacccagaagccacttcagatgctccaagaccttcttctcaagaattaaaggatgagatacttgaggtggctggcaaaatatacaaggctggaatttcacttcttgttattgataccgagaacaagtttgtatccacaggatttgccaaggaaattgcaagggtcgcccaaggtaaatactattacctgccgaatgcttcagacgctgttatttccgccgccaccaagactgcactctcggacctgaagagttcgtga</cdnaseq>

Protein Sequence

<aaseq>MAMATTALSASLPRLLPPRRRRFPTPSSSSPSAASTSTSRVVRL RAAAASAPSEVLDSTNGAIPSGKGGGGQQYGREYFPLAAVVGQDAIKTALLLGAIDRE IGGIAISGKRGTAKTVMARGLHAMLPPIEVVVGSIANADPNYPEEWEEGLANQVQYDA DGNLKTEIIKTPFVQIPLGITEDRLIGSVDVEASVKSGTTVFQPGLLAEAHRGVLYVD EINLLDEGVSNLLLNVLTEGVNIVEREGISFRHPCKPLLIATYNPEEGSVREHLLDRI AINLSADLPMSFDDRVAAVDIATQFQESSKEVFKMVEEETEVAKTQIILAREYLKDVA ISTEQLKYLVMEAIRGGCQGHRAELYAARVAKCLAAMEGREKVYVDDLKKAVELVILP RSILSDNPQEQQDQQPPPPPPPPPPQDQDSQEDQDEDEEEDQEDDDEENEQQDQQIPE EFIFDAEGGIVDEKLLFFAQQAQRRRGKAGRAKNLIFSSDRGRYIGSMLPKGPIRRLA VDATLRAAAPYQKLRREKDRDKTRKVFVEKTDMRAKRMARKAGALVIFVVDASGSMAL NRMQNAKGAALKLLAESYTSRDQVSIIPFRGDFAEVLLPPSRSIAMARNRLEKLPCGG GSPLAHGLSTAVRVGLNAEKSGDVGRIMIVAITDGRANVSLKKSTDPEATSDAPRPSS QELKDEILEVAGKIYKAGISLLVIDTENKFVSTGFAKEIARVAQGKYYYLPNASDAVI SAATKTALSDLKSS</aaseq>

Gene Sequence

<dnaseqindica>25..285#1112..1290#1464..1548#1628..1944#2105..2228#2932..3024#3418..3513#3827..3976#4050..4247#4535..4690#4838..4945#5114..5248#5331..5486#5666..5786#6304..6389#accgcgctctctccctcccctcccatggcgatggccaccaccgcgctctccgcctccctcccgcgcctactcccgcctcgccgccgccgcttcccgacgccctcctcctcctccccctccgccgcatccacctccacctcccgcgtcgtccgcctgcgggccgccgcggcctcggcgccatccgaggtcctcgactccaccaacggggccatcccctcggggaagggcggcggcgggcagcagtacgggagggagtatttccccttggccgctgtcgtcgggcaggtgagtgagcgagcaactctctgcatagcttctcctgcattggtgttgctgaagacacaagtaccaactaccaagtagtgtggagtggtacaagtaatttgattccccagttgagttgatctgatgcatttcgttgcgcggtatcgcgaatgctgttacaatagagattcgaaatccaacagatgcatttcggtttttgtcgtgttttatgctaatgctattgtaagcgaatcaatcagtggacaaatagtgatcaccgatcagtacacaatgtgccaatgtacatctctgaaaaaatgcctttgctatgagttattttgctgtcatactctctctgaagatgaaacaaacgagctggaatgactttcaagctttagttttcctcccattgttccctgcatcgagttatttttagataatggaagctttattaatatactcagtcaattacacaaagacaatacaaccgcatcgggcccaccccggcctctgcatatgatgcacacagccaaaagaaccaaaaacatccttcccaagcacaaaagaataaccaaaacatagggattagtggctatcaatccgtagactagatcgccacccatgctcctggataaaaaaactccgtgtcacctggtccaactatcgtgatactaccgcaatagtatcccgaagtcccggtttgtggaggacagcctaggtacgtagccaccgggtgactaatgtaataacctgcaaaggagaagacaccatcttgttatcaaaccattgatttatggtctcaactttgtatatgttacaattttaacttaccttattgtgcgtccaggatgcaattaaaactgctctgctgcttggggcaattgaccgtgaaattggaggcatcgccatctcagggaagcgtgggacagcaaagacagtgatggctcgtggcttgcacgctatgcttccacctattgaagtggttgtaggctcgattgcaaatgctgaccctaactacccagaagagtaatgtccccaaatgcatgtctaataatgcttctagaacttctgtttaagcatccaaattcttcttttcacccccacaaagttttacataccaactacaatttgaatatgtttactttcatttctgaaatgattgtcaggtaactcacttgattgttctcctcttatggcagatgggaggagggtttggctaaccaagttcaatatgatgctgatggtaacttgaagaccgagattatcaaaacaccttttgtgcaggtatgctgcatggactttttgtttaaaaaataatttcgacataccattgttagttcaatttcaggtttccccttgacagatcccgcttggtatcactgaggataggttaatcggatcagtcgatgttgaagcatctgtgaaatcaggaactactgtgtttcaacctggccttcttgctgaagctcacagaggcgttctttatgttgatgagataaatctattggatgagggcgtaagcaatctacttctgaatgtcttgactgagggagtcaatattgtggaaagagagggcattagctttcgtcatccatgcaaaccacttctaattgctacttacaacccagaggaaggatctgtacgtgaacacttacttgatcgtattgcaattaatttaaggtactttagactatggatcactcatttactcacttcttttaaccaagttcaggttgtattatcttatacaccctctgttggtgtggagaacataagaaaactctcaatgcatttatgaaataccacagattgctcattccatattgttgttttgttgcagcgctgatctgccaatgagttttgatgatcgtgtggcagctgtggatattgcaacacaatttcaagagtccagcaaagaggtttttaaaatggtggaagaagaaactgaggttgcaaaaacccaggtaccaccgatactgttaaactagggatgtaaacctgtaagatagagtacctcctttattgaactagaatagggtgtagaaactatttagcttttgcttttttttttgtattgcacacaaatagctttcttcagaacagcgatatctaatcaatcagtatcacaaaatatgtggattcattaatatgcttcataaacaaatggtcacatcagacaagttgatacattgatttttggatctttctcacctaattacaacttgtgccatttacatatgatttttcccttgccttcatagtcgaaagtatatacgctattcatggttctgtattttgagatcccaacgtcatccactcatgctgaattaactgcatgtacccacatttacattatattccctgtgttgttctgccacttaacatattttatctggtccaacattcaaaacatcaatctttaatacgtataaaaggtatatgatggcacacaaaataatgccattctatttttgttggacaatactttcacagtttatgacttctattattttactagtatgtagtattgaaaaaataacgtggccaaagtcccacattgaagactatggaaaatcatgagcgactttaactagcaacgatggaggtttagttgaaaacaatattatgcactgttcatctcacaggtggtaatacatggtctaacagataattttggcaagagaatatctgaaagatgttgcaatcagcacagagcagctcaaatatcttgtcatggaagctatacgcggtggctgtcaggttagtttattttgcagtgaaagaattttttagctctgtttggcttaagctgagtaaggagcttgattggaatattgcactgtccttgtaatggtctgtagtctgtaccccatgatcatgcattctggtcataacatgtggcgaggtggctaaaaactgtctgctgtaaccattgatttcattttagttgtgtttatcatgccctgaaatcgatgtggctttgcattattttctgcttgtctagatattatacctgtccgctgtgcaccatgtggttaatgtaatacctgaagcaatcatggtttttgagacactgatgctacttttttgtggttaatgtaattcaaaaagtggctgtgttctcatgtaaataaaactgacactcatttgcaggggcaccgggctgagctgtatgctgctcgagtggcaaaatgtcttgctgctatggaagggcgtgaaaaagtatatgtggatgaccttaagaaagctgttaagtatacttatgcctttgaattcttcattatttaatacagtaagacaccccctgtaatttcctgtttacaactattccttttcatctctttactgaaatgtaccgaaggaaacatgcatcatgatttgttgttaagaacaaaatagaaagctgcaaacttgcacgtaataaaagtcacagcaaaataaattttgccctcgcatggctcacaattttcttctgccatgctggctgtttgcattaatgtaatgatgtcagtatattctgaataaagttaagacatttgacatgtgtgccaccttcttgcaggtagagctagttattctacctcgatcaatcctatctgataacccacaggagcagcaagaccaacaacctcctccacccccaccgccaccccctccacaagatcaagattctcaagaagatcaagatgaagacgaggaagaggaccaagaggttaatacatataccatttaactaacttattcattttgttttctcgtagctcattagctgtactcttggacaggacgatgatgaagaaaatgaacagcaggaccagcagatacctgaggagttcatttttgatgctgaaggtggtatagtagatgagaagctccttttctttgctcagcaagctcaaagacggcgagggaaagctggacgagcaaagaatctcatattctcatctgataggggacgatacataggttctatgcttcccaaggtaaacttcttaatcactttattgtaccaagattcctgaatccagatccttgtttcctctcaattcaatgcctgtagtgttttagagtttctcctatctagaaatgtgtgcataatcattttgcctattttcctctgatgctttctgctgtgttctgtcatttactgatatactatcaaacaatagtcatatactgctgtgttgccttgtattctgccgttcccatcctattgcttggcacctttatcacaagtaggctccaatttgaacagttaattgtgttgtagggtccaataaggaggttagctgttgatgccacacttcgagcagctgcaccataccagaaactgaggagagagaaagatcgtgacaagacaagaaaggtttttgttgaaaaaactgacatgagagccaaaagaatggctcgaaaagcaggcgcactggtaaaaatctctctctctctctctctctctctctctctccaagcctctgagattatcagaatatctgtttgctctgtccttgttatgaagtaaacattgttgtccgatcataagagttaactgctctgtggaattacattttgacaggtcatatttgttgtggatgctagcggtagcatggctctgaatcgcatgcagaatgcgaaaggtgcagcattaaagttgcttgcagaaagctacacaagcagagatcaggtactagttgttaccctgtacgccaccttcagttgttcttccccttgcccctggagatgtgtctttttttctttcaatgtgtaaaaggtatatggttatatggctagcttgtatgctatcgatttttatactggccaatcttaccttatattttgtcatctatctcaggtttcaatcattccatttcgtggagattttgctgaggttcttcttccaccttcaagatccatagcaatggcccgcaatcgtcttgagaagctaccatgtggtggcggttctcctttagctcacggccttagcacagtaagaactaagcattttctcgaacctagctatatgttacagcccatatgtattgattaacaattcggtttttacctcaaaggctgtcagagtgggtttgaatgctgaaaagagcggtgatgttggacgtatcatgattgttgcaatcaccgatggaagagctaatgtgtcactgaagaaatcgactgacccagaagccacttcagatgctccaagaccttcttctcaagaattaaaggtacaactcgtatctaatatcacatggtagtaatgatatgaaaagtatttatttaaactggaaacctgtgaccatcactctgaagctgatatgatgtacgtaaactacttccaagttgcattcttaaaagcatgtatcaatcactctaaagctgatacgatatatttatcttttccaaggatgagatacttgaggtggctggcaaaatatacaaggctggaatttcacttcttgttattgataccgagaacaagtttgtatccacaggatttgccaaggaaattgcaagggtcgcccaaggtactctcggcgtgatatctcttgaattagtagccttcgtttcaaatataagttgttatagatttgcacacatgaattaagaaaatagcttgaataactttgttgcccttcgtttatactacattggaaaaaaagggatctatttatttatcagaggggtactatcgatcttgtgaggacaaacatggaagaaataaaaaaacacgcagaagtttcaaaccaacatatatttagaaaagagttgaaaaaactaaaatgacctacatttggaattagaggcatatacaccatctgccgtaggaataccattatctttcttttctgcatcttattacaccattacttatgagttaagatcataagtctaatttgccacctatttttgactagcaaccttgtaatgttgccatcgcacaaagagatatcttccatgtacatcaatcactaagcaccaaaatactgccaaatgtttgtgcccaatctcctgatataaacctctctttctcgatctctacaggtaaatactattacctgccgaatgcttcagacgctgttatttccgccgccaccaagactgcactctcggacctgaagagttcgtgatcctggagagcgttttaccttcagataatgagtggtttttaccttttaccttgtttggtgcagcagtgtccatgtttcgtgtaactttgggacgtttcggctgtgataaccaattttggcataggatttttaccgtgagagttggaattcgggcgtagcaccgtgtaaagaatcatataatccctcttctgtctaaataattggccatgtaaatatggtgttattgcgtacagttctaagtaataataacattcataatttatgtgaagaaagaaattgcc</dnaseqindica>

External Link(s)

NCBI Gene:Os03g0811100, RefSeq:Os03g0811100