Difference between revisions of "Os06g0330100"

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   Clustering of major genes conferring blast resistance in a durable resistance rice cultivar Gumei 2.
 
   Clustering of major genes conferring blast resistance in a durable resistance rice cultivar Gumei 2.
 
   Rice Science,2004,11(4):161-164.
 
   Rice Science,2004,11(4):161-164.
12. Mackill-D-J; Bonman-J-M.
+
12. Mackill-D-J;Bonman-J-M.
  
 
Inheritance of blast resistance in near-isogenic lines of rice.
 
Inheritance of blast resistance in near-isogenic lines of rice.

Revision as of 15:48, 3 June 2014

Please input one-sentence summary here.

Annotated Information

Function

Rice blast resistance, caused by Magnaporthe grisea,has been studied extensively, Pi-25 is the main effect blast resistance gene from a stable blast resistance cultivar Gumei2, over-expression analysis and complementation test showed that Pi25 conferred blast resistance to M. oryzae isolate js001-20. It have stronger resistance to leaf blast and panicle blast to rice blast fungus strains in China 92-183 (small ZC15) and have the same allele with Pid3.

Expression

Pi25 was an intronless gene of 2772 nucleotides with single nucleotide substitution in comparison to Pid3 at the nucleotide position 459 and predicatively encoded a typical coiled coilenucleotide binding siteeleucine rich repeat (CC-NBS-LRR) protein of 924 amino acid residuals with 100% identity to Pid3 putative protein.Pi - 25 in rice chromosome's markers between A7 and RG456, 6 figure distance is 1.7 cM and 1.5 cM respectively. The susceptible allele pi25 in Nipponbare contained a nonsense mutation at the nucleotide position 2209 resulting in a truncated protein with 736 amino acid residuals. In addition, 14 nucleotide substitutions resulting in 10 amino acid substitutions were identified between Pi25 and pi25 upstream the premature stop codon in the susceptible allele. Although the mechanism of Pi25/Pid3-mediated resistance needs to be further investigated, the isolation of the allele would facilitate the utilization of Pi25/Pid3 in rice blast resistance breeding program via transgenic approach and marker assisted selection.The length of Pid3 cDNA is 2970 bp.Pid3 contains two exons and encoding a 923 amino acid composition of protein products, products containing the NBS LRR structure domain and MHD motif. Pid3Nip in the LRR structure domain. its transcription start site began to 2208th nucleotide, the CAG is replaced by the TAG. Japonica rice varieties Pid3 to pseudogenes are occurred after the process of indica japonica differentiation (Shang et al., 2009).

Evolution

Linkage map.png Genetic map.png

Genomic location of gene Pi25 (t) conferring neck blast resistance to the Chinese isolate 92-183(race ZC 15)was verified to be located between markers A7 and RG456 on chromosome 6 with genetic distance of 1.7cM and 1.5cM to A7 and RG456 respectively.Leaf blast resistance of Gumei 2 to the Philippine isolate Ca 89(linage 4) was fpune to be controlled by a single gene. The gene tentetively designated as Pi26(t) was located between markers B10 and R674 on chromosome 6,with genetic distances of 5.7 cM and 25.8 cM to B10 and R674 respectively.Resistant alleles at both gene loci were derived from Gumei 2, indicating an existence of resistance gene cluster in Gumei 2 .

The allelic Pid3 loci in most of the tested japonica varieties were identified as pseudogenes due to a nonsense mutation at the nucleotide position 2208 starting from the translation initiation site. However, this mutation was not found in any of the tested indica varieties, African cultivated rice varieties, or AA genome-containing wild rice species. These results suggest that the pseudogenization of Pid3 in japonica occurred after the divergence of indica and japonica.

Genetic analysis indicated that the resistance to leaf blast was controlled by three genes and the presence of resistant alleles at any loci would result in resistance. One of the three genes did not have effects at the flowering stage. Two genes, tentatively assigned as Pi24(t) and Pi25(t), were mapped onto chromosome 12 and 6, respectively, based on RGA (resistance gene analog), RFLP and RAPD markers. Pi24(t) conferred resistance to leaf blast only, and its resistance allele was from Zhong 156. Pi25(t) conferred resistance to both leaf and neck blast, and its resistance allele was from Gumei 2. In a natural infection test in a blast hot-spot,Pi25(t) exhibited high resistance to neck blast, while Pi24(t) showed little effect. A set of near-isogenic lines (NILs) for rice blast resistance was previously developed in the genetic background of the indica cultivar CO 39. Allelism between the resistance genes in the CO 39 NILs and Kiyosawa's differentials was analyzed. Pi1(t) was closely linked to Pi-K on chromosome 11. Pi2(t) was allelic to Piz on chromosome 6. Pi3(t) was closely linked to Pi-i. Pi4a(t) was identical to Pita on chromosome 12. To analyze Pi5(t), Pi7(t), and Pi12(t) in a durably resistant cultivar Moroberekan, we used an approach for developing pre-isogenic lines from a recombinant inbred population that has been used for molecular mapping of those resistance genes. Pi7(t) was allelic or closely linked to Pi1. The genetic analyses of Pi5(t) and Pi12(t) are currently under way. Resistance genes.png

Labs working on this gene

Lihuang Zhu personal homepage:http://sourcedb.cas.cn/sourcedb_genetics_cas/yw/zjrc/pgr/200907/t20090721_2130981.html Jianli Wu personal home page:http://www.researchgate.net/profile/Jianli_Wu

  • Chinese National Centre for Rice Improvement and State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou 310006, China.
  • Zhejiang Academy of Agricultural Sciences,Huangzhou 310028,China
  • State Key Laboratory of Plant Genomics and National Plant Gene Research Centre, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China.
  • Biology Department, Xiamen University, Xiamen, 361005, China
  • Institute of Plant Protection, Zhejiang Academy of Agricultural Sciences, Hangzhou, 310021, China
  • Entomology and Plant Pathology Division, International Rice Research Institute, Philippines

References

1. Jie Chen;Yongfeng Shi;Wenzheng Liu;Rongyao Chai;Yaping Fu;Jieyun Zhuang;Jianli Wu

 A Pid3 allele from rice cultivar Gumei2 confers resistance to Magnaporthe oryzae
 Journal of genetics and genomics, 2011, 38(5): 209-216 

2. Junjun Shang;Yong Tao;Xuewei Chen;Yan Zou;Cailin Lei;Jing Wang;Xiaobing Li;Xianfeng Zhao;Meijun Zhang;Zhike Lu;Jichen Xu;Zhukuan Cheng;Jianmin Wan;Lihuang Zhu

 Identification of a New Rice Blast Resistance Gene, Pid3, by Genomewide Comparison of Paired Nucleotide-Binding Site–Leucine-Rich Repeat Genes and Their Pseudogene Alleles Between the Two Sequenced Rice Genomes
 Genetics, 2009, 182(4): 1303-1311 

3. J.-L. Wu;Y.-Y. Fan;D.-B. Li;K.-L. Zheng;H. Leung and J.-Y. Zhuang

 Genetic control of rice blast resistance in the durably resistant cultivar Gumei 2 against multiple isolates
 Theoretical and Applied Genetics, 2005, 111(1): 50-56 

4. 吴建利; 柴荣耀; 樊叶杨; 李德葆; 郑康乐; Hei LEUNG; 庄杰云

 抗稻瘟病水稻材料谷梅2号中主效抗稻瘟病基因的成簇分布
 中国水稻科学, 2004, 18(6): 567-569 

5. Jie-Yun Zhuang;Wen-Bin Ma;Jian-Li Wu;Rong-Yao Chai;Jun Lu;Ye-Yang Fan;Min-Zhong Jin;Hei Leung & Kang-Le Zheng

 Mapping of leaf and neck blast resistance genes with resistance gene analog, RAPD and RFLP in rice
 Euphytica, 2002, 128(3): 363-370 

6. Zhuang-J-Y, Wu-J-L, Fan-Y-Y, Rao-Z-M, Zheng-K-L

 Genetic drag between a blast resistance gene and QTL conditioning yield trait detected in a recombinant inbred line population in rice
 Rice Genetics Newsletters, 2001, 18(0): 69-70 

7. 吴建利; 庄杰云; 柴荣耀; 樊叶杨; 金敏忠; 李德葆; 郑康乐

 水稻抗穗瘟基因的分子定位
 植物病理学报, 2000, 30(2): 111-115 

8. Wu-J-L, Zhuang-J-Y, Fan-Y-Y, Li-D-B, Leung-H, Zheng-K-L

 Effectiveness of a resistance gene from Gumei 2 against leaf and neck blast under field conditions in China
 Rice Genetics Newsletters, 1999, 16(0): 90-92 

9. Zhuang-J-Y;Wu-J-L;Chai-R-Y;Fan-Y-Y;Jin-M-Z;Leung-H;Zheng-K-L

 Rapid identification of resistance gene analogs linked to two blast resistance genes in rice
 Rice Genetics Newsletters, 1998, 15(): 125-127 

10. Zhuang-J Y, Chai-R Y, Ma-W, B Lu-J, Jin-M Z, Zheng-K-L

 Genetic analysis of the blast resistance at vegetative and reproductive stages in rice
 Rice Genetics Newsletters, 1997, 14(0): 62-64

11. Wu-J-L;Chai-R-Y; Fan-Y-Y; Li-D-B;Zheng-K-L;Leung-H,;Zhuang-J-Y

 Clustering of major genes conferring blast resistance in a durable resistance rice cultivar Gumei 2.
 Rice Science,2004,11(4):161-164.

12. Mackill-D-J;Bonman-J-M.

Inheritance of blast resistance in near-isogenic lines of rice.

PHYTOPATHOLOGY,1992,82(7):746-749.

Structured Information

Gene Name

Os06g0330100

Description

Disease resistance protein family protein

Version

NM_001064074.2 GI:297605748 GeneID:4340920

Length

2775 bp

Definition

Oryza sativa Japonica Group Os06g0330100, 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 6

Location

Chromosome 6:13123254..13126028

Sequence Coding Region

13123254..13123817,13123893..13126028

Expression

GEO Profiles:Os06g0330100

Genome Context

<gbrowseImage1> name=NC_008399:13123254..13126028 source=RiceChromosome06 preset=GeneLocation </gbrowseImage1>

Gene Structure

<gbrowseImage2> name=NC_008399:13123254..13126028 source=RiceChromosome06 preset=GeneLocation </gbrowseImage2>

Coding Sequence

<cdnaseq>atggcggagggtgttgtgggctcactaatcgtcaagcttggggatgccctggcgagtgaagcagtggaggtcgccaagtccttgcttgggctagagggatctgctctgaagcgcctcttttctgagatccgggaggtgaagggggagctggagagcatccatgccttcttgcaggcagccgagcggttcaaggacgccgacgagacaacctccgcgttcgtcaagcaggtgaggagcctcgccctgagcatcgaggacgtagtcgatgagttcacctacgagctgggggaaggagacggccggatggggatggcagtggcactcaagaggatgtgcaagatgggcacatggtctcgcctggctggcaatctgcaggacatcaaggtcaacctgaaaaacgctgccgagaggaggattaggtatgatctgaagggcgtcgagagaggcgcgaaatcgatggcgggaaggaggagctcaaactggagatctgactctgtactcttcaagagggaggatgagcttgttggtatcgagaagaagagggatttgctgatgaaatgggtgaaagatgaggagcagcgccgcatggtggtcagtgtgtggggaatgagtggaatcggcaagacggcactggttgctaatgtttacaatgctatcaaggctgactttgacacctgtgcttggatcactgtgtctcagagctacgaggctgacgatttgcttaggcgaactgctcaagagtttcgcaagaatgatcggaagaaagacttcccaattgacgttgatatcacaaattacagaggcttggtcgaaaccacccgctcttacctggagaacaaaaggtatgtccttgtcctagatgatgtatggaatgcaaatgtttggttcgatagcaaagatgcatttgaagatggcaatattggccgaataattcttacatcaaggaattatgatgtggcgttacttgcgcatgaaacccatataattaatttgcagccgttggagaaacaccatgcgtgggatctgttctgtaaagaggcattttggaagaatgagataaggaattgtccgccggagttgcagccctgggctaataattttgttgacaagtgcaatggcttgccaatcgcaattgtgtgcattggacgccttctgtcatttcaagggtcaacttattcagactgggaaaaggtgtacaaaaatcttgagatgcaactaacaaacaactctatcatggacatgatgaacattatcttgaagattagtttggaagatctaccgcacaacattaagaactgcttcctttattgctccatgtttcctgaaaattatgtgatgaagaggaagtccctagtacgactctgggttgctgaaggatttattgaagaaactgagcatagaacacttgaggaagtggcagagcattacttgactgaacttgtgaaccgatgtcttctgttgctggtgaagagaaatgaggctggacatgttcatgaagtccaaatgcacgatatcctccgtgttttggctctttccaaggctcatgaacaaaatttttgcattgtcgttaaccactcgaggagtacacatcttattggagaagcacgccgtttatcaattcagagaggggattttgcacaacttgcagaccatgcaccacatcttcgatccttgctgcttttccaaagttcacccaatgtcagttcgcttcagtcattaccaaagtctatgaagttgttgtctgttttggatctaactgatagttcagttgataggctgccaaaggaagtgtttggcttgttcaacttgcgttttctgggtctcaggcgtactaaaatctccaagcttccaagctccattggaaggctaaaaattctgctggtgttggacgcttggaagtgtaaaattgtaaagcttccattggcgattacaaaacttcaaaagctaacacatcttattgtaacttcgaaagcagtcgttgtttctaagcaatttgttccttcttttgatgtgccagcacctttgcgtatctgctccatgacaacccttcagacattactactcatggaagctagttctcaaatggttcatcacctaggctctcttgtggagttaagaacctttcgtatcagcaaggcagacagtagtcaagaagtgctgcatcttgaatcacttaaacctcctcctctacttcagaaacttttcttgcaaggtacattatctcatgaatcattacctcatttcgtgtctgtaagcaatctgaataacctcacgtttctacgtcttgctgggtcaagaattgacgaaaatgcattccttaatcttgagggattacagcagttggtaaagctacagctttatgatgcatatgatggaatgaatatatacttccatgagaactcatttccaaagctcagaatactgaaaatatggggtgccccacacctgaatgaaattaagatgacaaaaggagctgtggcaagcctaacagatctgaagttcctgctctgtccaaacctgaagcagttgccttgcggtattgaacatgtgaggactcttgaggagctcactctggatcatacagcagaagagcttgtggatagaatccgacagaaaaaagagcgaatgatttgtgacgtccagagagtttatgttgggttcatcagaaatggtgtgttggctgcagaaaggattcaataa</cdnaseq>

Protein Sequence

<aaseq>MAEGVVGSLIVKLGDALASEAVEVAKSLLGLEGSALKRLFSEIR EVKGELESIHAFLQAAERFKDADETTSAFVKQVRSLALSIEDVVDEFTYELGEGDGRM GMAVALKRMCKMGTWSRLAGNLQDIKVNLKNAAERRIRYDLKGVERGAKSMAGRRSSN WRSDSVLFKREDELVGIEKKRDLLMKWVKDEEQRRMVVSVWGMSGIGKTALVANVYNA IKADFDTCAWITVSQSYEADDLLRRTAQEFRKNDRKKDFPIDVDITNYRGLVETTRSY LENKRYVLVLDDVWNANVWFDSKDAFEDGNIGRIILTSRNYDVALLAHETHIINLQPL EKHHAWDLFCKEAFWKNEIRNCPPELQPWANNFVDKCNGLPIAIVCIGRLLSFQGSTY SDWEKVYKNLEMQLTNNSIMDMMNIILKISLEDLPHNIKNCFLYCSMFPENYVMKRKS LVRLWVAEGFIEETEHRTLEEVAEHYLTELVNRCLLLLVKRNEAGHVHEVQMHDILRV LALSKAHEQNFCIVVNHSRSTHLIGEARRLSIQRGDFAQLADHAPHLRSLLLFQSSPN VSSLQSLPKSMKLLSVLDLTDSSVDRLPKEVFGLFNLRFLGLRRTKISKLPSSIGRLK ILLVLDAWKCKIVKLPLAITKLQKLTHLIVTSKAVVVSKQFVPSFDVPAPLRICSMTT LQTLLLMEASSQMVHHLGSLVELRTFRISKADSSQEVLHLESLKPPPLLQKLFLQGTL SHESLPHFVSVSNLNNLTFLRLAGSRIDENAFLNLEGLQQLVKLQLYDAYDGMNIYFH ENSFPKLRILKIWGAPHLNEIKMTKGAVASLTDLKFLLCPNLKQLPCGIEHVRTLEEL TLDHTAEELVDRIRQKKERMICDVQRVYVGFIRNGVLAAERIQ</aaseq>

Gene Sequence

<dnaseqindica>2212..2775#1..2136#atggcggagggtgttgtgggctcactaatcgtcaagcttggggatgccctggcgagtgaagcagtggaggtcgccaagtccttgcttgggctagagggatctgctctgaagcgcctcttttctgagatccgggaggtgaagggggagctggagagcatccatgccttcttgcaggcagccgagcggttcaaggacgccgacgagacaacctccgcgttcgtcaagcaggtgaggagcctcgccctgagcatcgaggacgtagtcgatgagttcacctacgagctgggggaaggagacggccggatggggatggcagtggcactcaagaggatgtgcaagatgggcacatggtctcgcctggctggcaatctgcaggacatcaaggtcaacctgaaaaacgctgccgagaggaggattaggtatgatctgaagggcgtcgagagaggcgcgaaatcgatggcgggaaggaggagctcaaactggagatctgactctgtactcttcaagagggaggatgagcttgttggtatcgagaagaagagggatttgctgatgaaatgggtgaaagatgaggagcagcgccgcatggtggtcagtgtgtggggaatgagtggaatcggcaagacggcactggttgctaatgtttacaatgctatcaaggctgactttgacacctgtgcttggatcactgtgtctcagagctacgaggctgacgatttgcttaggcgaactgctcaagagtttcgcaagaatgatcggaagaaagacttcccaattgacgttgatatcacaaattacagaggcttggtcgaaaccacccgctcttacctggagaacaaaaggtatgtccttgtcctagatgatgtatggaatgcaaatgtttggttcgatagcaaagatgcatttgaagatggcaatattggccgaataattcttacatcaaggaattatgatgtggcgttacttgcgcatgaaacccatataattaatttgcagccgttggagaaacaccatgcgtgggatctgttctgtaaagaggcattttggaagaatgagataaggaattgtccgccggagttgcagccctgggctaataattttgttgacaagtgcaatggcttgccaatcgcaattgtgtgcattggacgccttctgtcatttcaagggtcaacttattcagactgggaaaaggtgtacaaaaatcttgagatgcaactaacaaacaactctatcatggacatgatgaacattatcttgaagattagtttggaagatctaccgcacaacattaagaactgcttcctttattgctccatgtttcctgaaaattatgtgatgaagaggaagtccctagtacgactctgggttgctgaaggatttattgaagaaactgagcatagaacacttgaggaagtggcagagcattacttgactgaacttgtgaaccgatgtcttctgttgctggtgaagagaaatgaggctggacatgttcatgaagtccaaatgcacgatatcctccgtgttttggctctttccaaggctcatgaacaaaatttttgcattgtcgttaaccactcgaggagtacacatcttattggagaagcacgccgtttatcaattcagagaggggattttgcacaacttgcagaccatgcaccacatcttcgatccttgctgcttttccaaagttcacccaatgtcagttcgcttcagtcattaccaaagtctatgaagttgttgtctgttttggatctaactgatagttcagttgataggctgccaaaggaagtgtttggcttgttcaacttgcgttttctgggtctcaggcgtactaaaatctccaagcttccaagctccattggaaggctaaaaattctgctggtgttggacgcttggaagtgtaaaattgtaaagcttccattggcgattacaaaacttcaaaagctaacacatcttattgtaacttcgaaagcagtcgttgtttctaagcaatttgttccttcttttgatgtgccagcacctttgcgtatctgctccatgacaacccttcagacattactactcatggaagctagttctcaaatggttcatcacctaggctctcttgtggagttaagaacctttcgtatcagcaaggtgcgaagttgccattgtgagcagttgttcatggccatcactaatatgattcatcttacccgtcttgggatctaggcagacagtagtcaagaagtgctgcatcttgaatcacttaaacctcctcctctacttcagaaacttttcttgcaaggtacattatctcatgaatcattacctcatttcgtgtctgtaagcaatctgaataacctcacgtttctacgtcttgctgggtcaagaattgacgaaaatgcattccttaatcttgagggattacagcagttggtaaagctacagctttatgatgcatatgatggaatgaatatatacttccatgagaactcatttccaaagctcagaatactgaaaatatggggtgccccacacctgaatgaaattaagatgacaaaaggagctgtggcaagcctaacagatctgaagttcctgctctgtccaaacctgaagcagttgccttgcggtattgaacatgtgaggactcttgaggagctcactctggatcatacagcagaagagcttgtggatagaatccgacagaaaaaagagcgaatgatttgtgacgtccagagagtttatgttgggttcatcagaaatggtgtgttggctgcagaaaggattcaataa</dnaseqindica>

External Link(s)

NCBI Gene:Os06g0330100, RefSeq:Os06g0330100