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DNAzyme-dependent Analysis of rRNA 2’-O-Methylation
Published on: September 16, 2019
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.
Abstract:
To restrict pathogens, in a normal human cell, APOBEC3 enzymes mutate cytosine to uracil in foreign single-stranded DNAs. However, in cancer cells, APOBEC3B (one of seven APOBEC3 enzymes) has been identified as the primary source of genetic mutations. As such, APOBEC3B promotes evolution and progression of cancers and leads to development of drug resistance in multiple cancers. As APOBEC3B is a non-essential protein, its inhibition can be used to suppress emergence of drug resistance in existing anti-cancer therapies. Because of the vital role of APOBEC3 enzymes in innate immunity, selective inhibitors targeting only APOBEC3B are required. Here, we use the discriminative properties of wild-type APOBEC3A, APOBEC3B and APOBEC3G to deaminate different cytosines in the CCC-recognition motif in order to best place the cytidine analogue 2'-deoxyzebularine (dZ) in the CCC-motif. Using several APOBEC3 variants that mimic deamination patterns of wild-type enzymes, we demonstrate that selective inhibition of APOBEC3B in preference to other APOBEC3 constructs is feasible for the dZCC motif. This work is an important step towards development of in vivo tools to inhibit APOBEC3 enzymes in living cells by using short, chemically modified oligonucleotides.
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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