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PUBMED FOR HANDHELDS

Journal Abstract Search


253 related items for PubMed ID: 22439001

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  • 2. A framework genetic map for Miscanthus sinensis from RNAseq-based markers shows recent tetraploidy.
    Swaminathan K, Chae WB, Mitros T, Varala K, Xie L, Barling A, Glowacka K, Hall M, Jezowski S, Ming R, Hudson M, Juvik JA, Rokhsar DS, Moose SP.
    BMC Genomics; 2012 Apr 24; 13():142. PubMed ID: 22524439
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  • 5. Sequencing of transcriptomes from two Miscanthus species reveals functional specificity in rhizomes, and clarifies evolutionary relationships.
    Kim C, Lee TH, Guo H, Chung SJ, Paterson AH, Kim DS, Lee GJ.
    BMC Plant Biol; 2014 May 18; 14():134. PubMed ID: 24884969
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  • 6. Genetic complexity of miscanthus cell wall composition and biomass quality for biofuels.
    van der Weijde T, Kamei CLA, Severing EI, Torres AF, Gomez LD, Dolstra O, Maliepaard CA, McQueen-Mason SJ, Visser RGF, Trindade LM.
    BMC Genomics; 2017 May 25; 18(1):406. PubMed ID: 28545405
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  • 7. Sequence-tagged high-density genetic maps of Zoysia japonica provide insights into genome evolution in Chloridoideae.
    Wang F, Singh R, Genovesi AD, Wai CM, Huang X, Chandra A, Yu Q.
    Plant J; 2015 Jun 25; 82(5):744-57. PubMed ID: 25846381
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  • 9. Chromosome-scale assembly and analysis of biomass crop Miscanthus lutarioriparius genome.
    Miao J, Feng Q, Li Y, Zhao Q, Zhou C, Lu H, Fan D, Yan J, Lu Y, Tian Q, Li W, Weng Q, Zhang L, Zhao Y, Huang T, Li L, Huang X, Sang T, Han B.
    Nat Commun; 2021 Apr 28; 12(1):2458. PubMed ID: 33911077
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  • 11. Construction of high-resolution genetic maps of Zoysia matrella (L.) Merrill and applications to comparative genomic analysis and QTL mapping of resistance to fall armyworm.
    Huang X, Wang F, Singh R, Reinert JA, Engelke MC, Genovesi AD, Chandra A, Yu Q.
    BMC Genomics; 2016 Aug 08; 17():562. PubMed ID: 27501690
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  • 12. Population structure of Miscanthus sacchariflorus reveals two major polyploidization events, tetraploid-mediated unidirectional introgression from diploid M. sinensis, and diversity centred around the Yellow Sea.
    Clark LV, Jin X, Petersen KK, Anzoua KG, Bagmet L, Chebukin P, Deuter M, Dzyubenko E, Dzyubenko N, Heo K, Johnson DA, Jørgensen U, Kjeldsen JB, Nagano H, Peng J, Sabitov A, Yamada T, Yoo JH, Yu CY, Long SP, Sacks EJ.
    Ann Bot; 2019 Oct 29; 124(4):731-748. PubMed ID: 30247525
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  • 13. Exploring the tertiary gene pool of bread wheat: sequence assembly and analysis of chromosome 5M(g) of Aegilops geniculata.
    Tiwari VK, Wang S, Danilova T, Koo DH, Vrána J, Kubaláková M, Hribova E, Rawat N, Kalia B, Singh N, Friebe B, Doležel J, Akhunov E, Poland J, Sabir JS, Gill BS.
    Plant J; 2015 Nov 29; 84(4):733-46. PubMed ID: 26408103
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  • 14. The perennial ryegrass GenomeZipper: targeted use of genome resources for comparative grass genomics.
    Pfeifer M, Martis M, Asp T, Mayer KF, Lübberstedt T, Byrne S, Frei U, Studer B.
    Plant Physiol; 2013 Feb 29; 161(2):571-82. PubMed ID: 23184232
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  • 17. Sequence-based alignment of sorghum chromosome 3 and rice chromosome 1 reveals extensive conservation of gene order and one major chromosomal rearrangement.
    Klein PE, Klein RR, Vrebalov J, Mullet JE.
    Plant J; 2003 Jun 29; 34(5):605-21. PubMed ID: 12787243
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  • 18. Transferability of microsatellite markers from Brachypodium distachyon to Miscanthus sinensis, a potential biomass crop.
    Zhao H, Yu J, You FM, Luo M, Peng J.
    J Integr Plant Biol; 2011 Mar 29; 53(3):232-45. PubMed ID: 21205191
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  • 19. Comparative mapping in the Poaceae family reveals translocations in the complex polyploid genome of sugarcane.
    Aitken KS, McNeil MD, Berkman PJ, Hermann S, Kilian A, Bundock PC, Li J.
    BMC Plant Biol; 2014 Jul 26; 14():190. PubMed ID: 25059596
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  • 20. High density genetic maps of St. Augustinegrass and applications to comparative genomic analysis and QTL mapping for turf quality traits.
    Yu X, Kimball JA, Milla-Lewis SR.
    BMC Plant Biol; 2018 Dec 12; 18(1):346. PubMed ID: 30541451
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