AI Article Synopsis

  • The study identifies 11 β-glucosidases in the Trichoderma reesei genome, crucial for cellulase biosynthesis, but their specific functions remain unclear.
  • Overexpressing the β-glucosidase cel1b significantly reduces cellulase synthesis, while deleting cel1b shows no major impact; cel1b is found in the vacuole and cell membrane.
  • The findings suggest cel1b overexpression inhibits cellulase production not through its enzyme activity but by disrupting sugar transport and endoplasmic reticulum functions, informing future engineering of T. reesei for enhanced industrial cellulase production.

Article Abstract

Background: A total of 11 β-glucosidases are predicted in the genome of Trichoderma reesei, which are of great importance for regulating cellulase biosynthesis. Nevertheless, the relevant function and regulation mechanism of each β-glucosidase remained unknown.

Results: We evidenced that overexpression of cel1b dramatically decreased cellulase synthesis in T. reesei RUT-C30 both at the protein level and the mRNA level. In contrast, the deletion of cel1b did not noticeably affect cellulase production. Protein CEL1B was identified to be intracellular, being located in vacuole and cell membrane. The overexpression of cel1b reduced the intracellular pNPGase activity and intracellular/extracellular glucose concentration without inducing carbon catabolite repression. On the other hand, RNA-sequencing analysis showed the transmembrane transport process and endoplasmic reticulum function were affected noticeably by overexpressing cel1b. In particular, some important sugar transporters were notably downregulated, leading to a compromised cellular uptake of sugars including glucose and cellobiose.

Conclusions: Our data suggests that the cellulase inhibition by cel1b overexpression was not due to the β-glucosidase activity, but probably the dysfunction of the cellular transport process (particularly sugar transport) and endoplasmic reticulum (ER). These findings advance the knowledge of regulation mechanism of cellulase synthesis in filamentous fungi, which is the basis for rationally engineering T. reesei strains to improve cellulase production in industry.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9118834PMC
http://dx.doi.org/10.1186/s12934-022-01809-1DOI Listing

Publication Analysis

Top Keywords

transport process
12
endoplasmic reticulum
12
cellulase production
12
transmembrane transport
8
process endoplasmic
8
reticulum function
8
trichoderma reesei
8
regulation mechanism
8
overexpression cel1b
8
cellulase synthesis
8

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!