Selective inhibition of APOBEC3 enzymes by single-stranded DNAs containing 2'-deoxyzebularine

Fareeda M Barzak1, Stefan Harjes, Maksim V Kvach

  • 1School of Fundamental Sciences, Massey University, Private Bag 11 222, Palmerston North 4442, New Zealand.

Insights

APOBEC3B enzymes drive cancer progression and drug resistance. Researchers developed a method for selective APOBEC3B inhibition, a crucial step toward new anti-cancer therapies that prevent drug resistance.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Genetics

Background:

  • APOBEC3 enzymes normally restrict pathogens by mutating foreign DNA.
  • In cancer, APOBEC3B drives genetic mutations, promoting tumor evolution and drug resistance.
  • Targeting APOBEC3B is a potential strategy to overcome anti-cancer therapy resistance.

Purpose of the Study:

  • To investigate the feasibility of selectively inhibiting APOBEC3B.
  • To develop targeted inhibitors that do not affect other APOBEC3 enzymes.

Main Methods:

  • Utilized wild-type APOBEC3A, APOBEC3B, and APOBEC3G enzymes.
  • Employed the cytidine analogue 2'-deoxyzebularine (dZ) within a CCC-recognition motif.
  • Engineered APOBEC3 variants to mimic deamination patterns.

Main Results:

  • Demonstrated selective deamination of the dZCC motif by APOBEC3B.
  • Showed feasibility of inhibiting APOBEC3B preferentially over other APOBEC3 enzymes.
  • Identified specific dZ placement for selective inhibition.

Conclusions:

  • Selective inhibition of APOBEC3B is achievable using modified oligonucleotides.
  • This research is a significant advancement toward developing in vivo tools for cancer therapy.
  • Targeting APOBEC3B could suppress drug resistance emergence in cancer treatment.

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