Morphological and enzymatic response of the thermotolerant fungus Fomes sp. EUM1 in solid state fermentation under thermal stress

FEMS Microbiol Lett. 2016 Aug;363(16):fnw177. doi: 10.1093/femsle/fnw177. Epub 2016 Jul 20.

Abstract

Thermotolerance of the fungus Fomes sp. EUM1 was evaluated in solid state fermentation (SSF). This thermotolerant strain improved both hyphal invasiveness (38%) and length (17%) in adverse thermal conditions exceeding 30°C and to a maximum of 40°C. In contrast, hyphal branching decreased by 46% at 45°C. The production of cellulases over corn stover increased 1.6-fold in 30°C culture conditions, xylanases increased 2.8-fold at 40°C, while laccase production improved 2.7-fold at 35°C. Maximum production of lignocellulolytic enzymes was obtained at elevated temperatures in shorter fermentation times (8-6 days), although the proteases appeared as a thermal stress response associated with a drop in lignocellulolytic activities. Novel and multiple isoenzymes of xylanase (four bands) and cellulase (six bands) were secreted in the range of 20-150 kDa during growth in adverse temperature conditions. However, only a single laccase isoenzyme (46 kDa) was detected. This is the first report describing the advantages of a thermotolerant white-rot fungus in SSF. These results have important implications for large-scale SSF, where effects of metabolic heat are detrimental to growth and enzyme production, which are severely affected by the formation of high temperature gradients.

Keywords: lignocellulolytic enzymes; solid state fermentation; thermotolerance; white-rot fungi.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adaptation, Biological
  • Cellulase / biosynthesis
  • Cellulase / metabolism
  • Cellulases / biosynthesis
  • Cellulases / metabolism
  • Coriolaceae / enzymology*
  • Coriolaceae / growth & development
  • Coriolaceae / metabolism
  • Culture Media / chemistry
  • Endo-1,4-beta Xylanases / biosynthesis
  • Endo-1,4-beta Xylanases / metabolism
  • Fermentation*
  • Heat-Shock Response*
  • Hot Temperature
  • Hyphae / physiology
  • Isoenzymes
  • Laccase / biosynthesis
  • Laccase / metabolism
  • Lignin / metabolism
  • Zea mays / metabolism

Substances

  • Culture Media
  • Isoenzymes
  • lignocellulose
  • Lignin
  • Laccase
  • Cellulases
  • Cellulase
  • Endo-1,4-beta Xylanases