Reversed functional organization of mouse and human APOBEC3 cytidine deaminase domains

Yoshiyuki Hakata1, Nathaniel R Landau

  • 1Infectious Disease Laboratory, The Salk Institute for Biological Studies, La Jolla, California 92037, USA.

Insights

APOBEC3 proteins have two active sites that can perform different functions. These functions, like deamination and viral RNA binding, can be swapped between domains in different APOBEC3 family members, including mouse APOBEC3.

Area of Science:

  • Molecular Biology
  • Virology
  • Immunology

Background:

  • APOBEC3 proteins are a family of antiviral cytidine deaminases.
  • Lentiviral Vif protein targets specific APOBEC3 proteins for degradation.
  • APOBEC3 proteins have either one or two cytidine deaminase domains (CDDs).

Purpose of the Study:

  • To investigate the distinct roles of the two cytidine deaminase domains (CDDs) in APOBEC3 proteins.
  • To analyze functional interchangeability between CDDs in human and mouse APOBEC3 proteins.

Main Methods:

  • Mutagenesis of critical residues in the active sites of APOBEC3 proteins (hA3B, hA3F, mA3).
  • Assessing the deamination activity of mutated APOBEC3 proteins.
  • Evaluating viral RNA binding, virion packaging, and dimerization capabilities of mutated APOBEC3 proteins.

Main Results:

  • In human APOBEC3B and APOBEC3F, the separation of CDD functions (deamination vs. RNA binding/packaging) is conserved.
  • In mouse APOBEC3 (mA3), the functions of the two CDDs are reversed: CDD1 mediates deamination, and CDD2 mediates encapsidation and dimerization.
  • Antiviral activity of APOBEC3 proteins is primarily dependent on deaminase activity, with minor deaminase-independent effects.

Conclusions:

  • The two active sites within APOBEC3 proteins possess distinct functions.
  • These functions can be interchanged across different APOBEC3 family members, as exemplified by mouse APOBEC3.
  • Deaminase activity is the major contributor to the antiviral function of APOBEC3 proteins.

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