Fungal-bacterial interaction networks in lignocellulose degradation: an integrated ecological and mechanistic perspective. [PDF]
Lee YY, Yun J.
europepmc +1 more source
Bioengineering <i>Caulobacter vibrioides</i> for Xylanase Applications in the Bakery Industry. [PDF]
Simioni B +7 more
europepmc +1 more source
The catabolic specialization of the marine bacterium Polaribacter sp. Q13 to red algal β1,3/1,4-mixed-linkage xylan. [PDF]
Zhao F +9 more
europepmc +1 more source
Genome-resolved insights into the ecology, metabolic potential, salt-stress adaptation, and safety of Staphylococcus in traditional Korean soybean fermentation. [PDF]
Baek JH +4 more
europepmc +1 more source
Genomic and secretomic analyses of Blastobotrys yeasts reveal key xylanases for biomass decomposition. [PDF]
Ravn J +5 more
europepmc +1 more source
Four types of .BETA.-xylosidases from Penicillium wortmanni IFO 7237.
Akihiko FUJIE +3 more
core +1 more source
Xylan Degradation in the Halotolerant Bacterium <i>Bacillus altitudinis</i> relies on glycosidic hydrolases from families 11 and 30. [PDF]
Marchetti A +9 more
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AmXlnR, a transcription factor involved in xylan degradation and pentose catabolism, enhances pullulan production from xylose in <i>Aureobasidium melanogenum</i>. [PDF]
Zhao WH +7 more
europepmc +1 more source
Xylosidases associated with the cell surface ofPenicillium herquei IFO 4674
Hiroaki Sato +6 more
core +1 more source
The dung beetle microbiome complements host metabolism and nutrition. [PDF]
Jones JA, Moczek AP, Newton ILG.
europepmc +1 more source

