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Any process that activates or increases the frequency, rate, or extent of antifungal peptide biosynthesis. The synthesis or release of an antifungal peptide during an immune response, resulting in an increase in intracellular or extracellular levels. The chemical reactions and pathways resulting in the formation of an antifungal peptide. Any process that modulates the frequency, rate, or extent of antifungal peptide production. Any process that activates or increases the frequency, rate, or extent of antimicrobial peptide biosynthesis. Any process that modulates the frequency, rate, or extent of antimicrobial peptide biosynthesis. The chemical reactions and pathways resulting in the formation of an antimicrobial peptide. Such peptides may have protective properties against bacteria, fungi, viruses, or protozoa. Any process that activates or increases the frequency, rate or extent of the chemical reactions and pathways resulting in the formation of substances, carried out by individual cells. Any process that modulates the frequency, rate, or extent of antifungal peptide biosynthesis.

View Gene Ontology (GO) Term

GO TERM SUMMARY

Name: positive regulation of antifungal peptide biosynthetic process
Acc: GO:0006967
Aspect: Biological Process
Desc: Any process that activates or increases the frequency, rate, or extent of antifungal peptide biosynthesis.
Synonyms:
  • antifungal peptide induction
  • upregulation of antifungal peptide biosynthetic process
  • activation of antifungal peptide biosynthetic process
  • up-regulation of antifungal peptide biosynthetic process
  • up regulation of antifungal peptide biosynthetic process
  • stimulation of antifungal peptide biosynthetic process
  • antifungal polypeptide induction
Proteins in PDR annotated with:
   This term: 18 [Search]
   Term or descendants: 18 [Search]


[geneontology.org]
INTERACTIVE GO GRAPH

GO:0006967 - positive regulation of antifungal peptide biosynthetic process (interactive image map)

YRC Informatics Platform - Version 3.0
Created and Maintained by: Michael Riffle