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Any process that activates or increases the frequency, rate or extent of collagen binding. Any process that increases the frequency, rate or extent of protein homodimerization, interacting selectively with an identical protein to form a homodimer. Any process that activates or increases the rate or extent of a molecular function, an elemental biological activity occurring at the molecular level, such as catalysis or binding. Any process that activates or increases the frequency, rate or extent of brain-derived neurotrophic factor receptor activity. Any process that modulates the frequency, rate or extent of protein binding. Any process that activates or increases the rate or extent of binding, the selective interaction of a molecule with one or more specific sites on another molecule. Any process that modulates the frequency, rate or extent of binding, the selective interaction of a molecule with one or more specific sites on another molecule. Any process that activates or increases the frequency, rate or extent of the activity of the nerve growth factor receptor. Any process that increases the rate, frequency or extent of the activity of a molecule that controls the survival, growth, differentiation and effector function of tissues and cells. Any process that activates or increases the frequency, rate or extent of protein binding.

View Gene Ontology (GO) Term

GO TERM SUMMARY

Name: positive regulation of protein binding
Acc: GO:0032092
Aspect: Biological Process
Desc: Any process that activates or increases the frequency, rate or extent of protein binding.
Synonyms:
  • upregulation of protein binding
  • activation of protein binding
  • up regulation of protein binding
  • stimulation of protein binding
  • up-regulation of protein binding
Proteins in PDR annotated with:
   This term: 16 [Search]
   Term or descendants: 19 [Search]


[geneontology.org]
INTERACTIVE GO GRAPH

GO:0032092 - positive regulation of protein binding (interactive image map)

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