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PUBMED FOR HANDHELDS

Journal Abstract Search


273 related items for PubMed ID: 32382073

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  • 4. Evolutionary dynamics of host specialization in wood-decay fungi.
    Krah FS, Bässler C, Heibl C, Soghigian J, Schaefer H, Hibbett DS.
    BMC Evol Biol; 2018 Aug 03; 18(1):119. PubMed ID: 30075699
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  • 5. Gene Regulation Shifts Shed Light on Fungal Adaption in Plant Biomass Decomposers.
    Zhang J, Silverstein KAT, Castaño JD, Figueroa M, Schilling JS.
    mBio; 2019 Nov 19; 10(6):. PubMed ID: 31744914
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  • 11. Multi-omic Analyses of Extensively Decayed Pinus contorta Reveal Expression of a Diverse Array of Lignocellulose-Degrading Enzymes.
    Hori C, Gaskell J, Cullen D, Sabat G, Stewart PE, Lail K, Peng Y, Barry K, Grigoriev IV, Kohler A, Fauchery L, Martin F, Zeiner CA, Bhatnagar JM.
    Appl Environ Microbiol; 2018 Oct 15; 84(20):. PubMed ID: 30097442
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  • 12. Lignin-modifying enzymes in filamentous basidiomycetes--ecological, functional and phylogenetic review.
    Lundell TK, Mäkelä MR, Hildén K.
    J Basic Microbiol; 2010 Feb 15; 50(1):5-20. PubMed ID: 20175122
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  • 16. Fungal decomposition of Abies needle and Betula leaf litter.
    Osono T, Takeda H.
    Mycologia; 2006 Feb 15; 98(2):172-9. PubMed ID: 16894962
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  • 17. Lignocellulosic polysaccharides and lignin degradation by wood decay fungi: the relevance of nonenzymatic Fenton-based reactions.
    Arantes V, Milagres AM, Filley TR, Goodell B.
    J Ind Microbiol Biotechnol; 2011 Apr 15; 38(4):541-55. PubMed ID: 20711629
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  • 19. Transcriptome analysis of the brown rot fungus Gloeophyllum trabeum during lignocellulose degradation.
    Umezawa K, Niikura M, Kojima Y, Goodell B, Yoshida M.
    PLoS One; 2020 Apr 15; 15(12):e0243984. PubMed ID: 33315957
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