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Identification and Characterization of Gliocladium viride Isolated from Mushroom Fly Infested Oak Log Beds Used for Shiitake Cultivation

  • Published : 2010.03.31

Abstract

A green mold species that has not previously been reported in Korea was isolated from oak log beds used for shiitake (Lentinula edodes) cultivation that were infested by mushroom flies. In this study, we identify the mold species as Gliocladium viride (an anamorph of Hypocrea lutea) and describe its mycological properties. The fungus was cottony on both potato dextrose agar (PDA) and Czapek yeast extract agar (CYA), but was colored white on PDA and became yellowish green and brown on CYA. Mycelial growth on PDA attained a diameter of 73 mm at $30^{\circ}C$ after 5 days. The fungus grew faster on malt extract agar (> 80 mm, 5 days at $25^{\circ}C$) compared to CYA and PDA (< 68 mm, 5 days at $25^{\circ}C$). Penicillate conidiophores of the fungus are hyaline, smooth walled, branching above typically in four stages, and $120\sim240\;{\mu}m$ in length. Club-shaped or slender phialides are formed on the metulae. Conidia of the fungus were ovate and elliptic, yellowish brown and green, and $2.5\sim3.0\;{\mu}m\times1.8\sim2.3\;{\mu}m$ in size. Typically, slimy conidia are formed in a mass and colored brown to dark green to almost black. The internal transcribed spacer rDNA and translation elongation factor 1 alpha gene sequences of the fungus isolated here show 99% identity with previously identified G. viride strains.

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References

  1. Park MS, Seo GS, Lee KH, Bae KS, Yu SH. Morphological and cultural characteristics of Trichoderma spp. associated with green mold of oyster mushroom in Korea. Plant Pathol J 2005;21:221-8. https://doi.org/10.5423/PPJ.2005.21.3.221
  2. Savoie JM, Mata G. Trichoderma harziaum metabolites preadapt mushrooms to Trichoderma aggressivum antagonism. Mycologia 2003;95:191-9. https://doi.org/10.2307/3762030
  3. Kim SH, Uzunovic A, Breuil C. Rapid detection of Ophiostoma piceae and O. quercus in stained wood by PCR. Appl Environ Microbiol 1999;65:287-90.
  4. White TJ, Bruns T, Lee S, Taylor J. Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics. In: Innis MA, Gelfand DH, Sninsky JJ, White TJ, editors. PCR protocols: a guide to methods and applications. San Diego: Academic Press; 1990. p. 315-22.
  5. Evidente A, Ricciardiello G, Andolfi A, Sabatini MA, Ganassi S, Altomare C, et al. Citrantifidiene and citrantifidiol: bioactive metabolites produced by Trichoderma citrinoviride with potential antifeedant activity toward aphids. J Agric Food Chem 2008;56:3569-73. https://doi.org/10.1021/jf073541h
  6. Swofford DL. PAUP*: phylogenetic analysis using parsimony (*and other methods). Version 4.0 b10. Sunderland: Sinauer Associates; 2002.
  7. Kimura M. A simple method for estimating evolutionary rates of base substitutions through comparative studies of nucleotide sequences. J Mol Evol 1980;16:111-20. https://doi.org/10.1007/BF01731581
  8. Raper KB, Thom C. A manual of the Penicillia. Baltimore: Williams & Wilkins Co.; 1949. p. 674-87.
  9. Matruchot L. Sur un Gliocladium nouveau. Bulletin de la Societe Mycologique de France 1893;9:249-52
  10. Chaverri P, Samuels GJ. Hypocrea/Trichoderma (Ascomycota, Hypocreales, Hypocreaceae): species with green ascospores. Stud Mycol 2003;48:1-116.

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  1. Phylogenetic analysis of major molds inhabiting woods and their discoloration characteristics. Part 1. Genus Trichoderma vol.65, pp.2, 2011, https://doi.org/10.1515/hf.2011.018
  2. Molecular identification of dipteran pests (Diptera: Sciaroidea) from shiitake mushroom vol.13, pp.2, 2013, https://doi.org/10.1111/1755-0998.12057