Area of research
Biomedical Engineering · Molecular Biology
Research interest
Research focused on Cellulase and Trichoderma reesei, with related work in Bioconversion, Cellulose, Biotechnology. Notable publications include 'Genomic and Secretomic Analyses Reveal Unique Features of the Lignocellulolytic Enzyme System of Penicillium decumbens', 'Differences in the adsorption of enzymes onto lignins from diverse types of lignocellulosic biomass and the underlying mechanism', and 'Synergistic and Dose-Controlled Regulation of Cellulase Gene Expression in Penicillium oxalicum'.
Integrated engineering of enzymes and microorganisms for improving the efficiency of industrial lignocellulose deconstruction
Enhancement of Cellulase Production in Trichoderma reesei via Disruption of Multiple Protease Genes Identified by Comparative Secretomics
Engineering of filamentous fungi for efficient conversion of lignocellulose: Tools, recent advances and prospects
Identifying and overcoming the effect of mass transfer limitation on decreased yield in enzymatic hydrolysis of lignocellulose at high solid concentrations
Production of the versatile cellulase for cellulose bioconversion and cellulase inducer synthesis by genetic improvement of Trichoderma reesei
Production of a high-efficiency cellulase complex via β-glucosidase engineering in Penicillium oxalicum
Synergistic and Dose-Controlled Regulation of Cellulase Gene Expression in Penicillium oxalicum
Redesigning the regulatory pathway to enhance cellulase production in Penicillium oxalicum
Differences in the adsorption of enzymes onto lignins from diverse types of lignocellulosic biomass and the underlying mechanism
Genomic and Secretomic Analyses Reveal Unique Features of the Lignocellulolytic Enzyme System of Penicillium decumbens
Development of highly efficient, low-cost lignocellulolytic enzyme systems in the post-genomic era
Ras GTPases Modulate Morphogenesis, Sporulation and Cellulase Gene Expression in the Cellulolytic Fungus Trichoderma reesei