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PUBMED FOR HANDHELDS

Journal Abstract Search


337 related items for PubMed ID: 19900008

  • 1. The importance of phenolic metabolism to limit the growth of Phakopsora pachyrhizi.
    Lygin AV, Li S, Vittal R, Widholm JM, Hartman GL, Lozovaya VV.
    Phytopathology; 2009 Dec; 99(12):1412-20. PubMed ID: 19900008
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  • 2. Distinct biphasic mRNA changes in response to Asian soybean rust infection.
    van de Mortel M, Recknor JC, Graham MA, Nettleton D, Dittman JD, Nelson RT, Godoy CV, Abdelnoor RV, Almeida AM, Baum TJ, Whitham SA.
    Mol Plant Microbe Interact; 2007 Aug; 20(8):887-99. PubMed ID: 17722693
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  • 3. Pathogenic variation of Phakopsora pachyrhizi infecting soybean in Nigeria.
    Twizeyimana M, Ojiambo PS, Sonder K, Ikotun T, Hartman GL, Bandyopadhyay R.
    Phytopathology; 2009 Apr; 99(4):353-61. PubMed ID: 19271976
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  • 4. Characterization and quantification of fungal colonization of Phakopsora pachyrhizi in soybean genotypes.
    Vittal R, Paul C, Hill CB, Hartman GL.
    Phytopathology; 2014 Jan; 104(1):86-94. PubMed ID: 24073640
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  • 6. Effects of Simplicillium lanosoniveum on Phakopsora pachyrhizi, the soybean rust pathogen, and its use as a biological control agent.
    Ward NA, Robertson CL, Chanda AK, Schneider RW.
    Phytopathology; 2012 Aug; 102(8):749-60. PubMed ID: 22533877
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  • 10. Transcriptome analysis of resistant and susceptible genotypes of Glycine tomentella during Phakopsora pachyrhizi infection reveals novel rust resistance genes.
    Soria-Guerra RE, Rosales-Mendoza S, Chang S, Haudenshield JS, Padmanaban A, Rodriguez-Zas S, Hartman GL, Ghabrial SA, Korban SS.
    Theor Appl Genet; 2010 May; 120(7):1315-33. PubMed ID: 20058146
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  • 12. Identifying and quantifying Phakopsora pachyrhizi spores in rain.
    Barnes CW, Szabo LJ, Bowersox VC.
    Phytopathology; 2009 Apr; 99(4):328-38. PubMed ID: 19271973
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  • 13. Unraveling Asian Soybean Rust metabolomics using mass spectrometry and Molecular Networking approach.
    Silva E, da Graça JP, Porto C, Martin do Prado R, Hoffmann-Campo CB, Meyer MC, de Oliveira Nunes E, Pilau EJ.
    Sci Rep; 2020 Jan 10; 10(1):138. PubMed ID: 31924833
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  • 15. Transcriptome-based analyses of phosphite-mediated suppression of rust pathogens Puccinia emaculata and Phakopsora pachyrhizi and functional characterization of selected fungal target genes.
    Gill US, Sun L, Rustgi S, Tang Y, von Wettstein D, Mysore KS.
    Plant J; 2018 Mar 10; 93(5):894-904. PubMed ID: 29315949
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  • 16. Differential expression of genes in soybean in response to the causal agent of Asian soybean rust (Phakopsora pachyrhizi Sydow) is soybean growth stage-specific.
    Panthee DR, Marois JJ, Wright DL, Narváez D, Yuan JS, Stewart CN.
    Theor Appl Genet; 2009 Jan 10; 118(2):359-70. PubMed ID: 18853130
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  • 17. Identification of a second Asian soybean rust resistance gene in Hyuuga soybean.
    Kendrick MD, Harris DK, Ha BK, Hyten DL, Cregan PB, Frederick RD, Boerma HR, Pedley KF.
    Phytopathology; 2011 May 10; 101(5):535-43. PubMed ID: 21244223
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  • 18. Nuclear proteomic changes linked to soybean rust resistance.
    Cooper B, Campbell KB, Feng J, Garrett WM, Frederick R.
    Mol Biosyst; 2011 Mar 10; 7(3):773-83. PubMed ID: 21132161
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  • 19. Proteomic analysis of germinating urediniospores of Phakopsora pachyrhizi, causal agent of Asian soybean rust.
    Luster DG, McMahon MB, Carter ML, Fortis LL, Nuñez A.
    Proteomics; 2010 Oct 10; 10(19):3549-57. PubMed ID: 20821732
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  • 20. Surface plasmon resonance immunosensor for early diagnosis of Asian rust on soybean leaves.
    Mendes RK, Carvalhal RF, Stach-Machado DR, Kubota LT.
    Biosens Bioelectron; 2009 Apr 15; 24(8):2483-7. PubMed ID: 19200709
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