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Updated: Apr 15, 2026

Isolation of Fidelity Variants of RNA Viruses and Characterization of Virus Mutation Frequency
Published on: June 16, 2011
AZT resistance alters enzymatic properties and creates an ATP-binding site in SFVmac reverse transcriptase
Background:
The replication of simian foamy virus from macaques can be inhibited by the nucleoside reverse transcriptase inhibitor azidothymidine (AZT, zidovudine). Four substitutions in the protease-reverse transcriptase (PR-RT) protein (K211I, I224T, S345T, E350K) are necessary to obtain highly AZT resistant and fully replication competent virus. AZT resistance is based on the excision of the incorporated AZTMP in the presence of ATP. I224T is a polymorphism which is not essential for AZT resistance per se, but is important for regaining efficient replication of the resistant virus.
Results:
We constructed PR-RT enzymes harboring one to four amino acid substitutions to analyze them biochemically and to determine their ability to remove the incorporated AZTMP. S345T is the only single substitution variant exhibiting significant AZTMP excision activity. Although K211I alone showed no AZTMP excision activity, excision efficiency doubled when K211I was present in combination with S345T and E350K. K211I also decreased nucleotide binding affinity and increased fidelity. NMR titration experiments revealed that a truncated version of the highly AZT resistant mt4 variant, comprising only the fingers-palm subdomains was able to bind ATP with a KD-value of ca. 7.6 mM, whereas no ATP binding could be detected in the corresponding wild type protein. We could show by NMR spectroscopy that S345T is responsible for ATP binding, probably by making a tryptophan residue accessible.
Conclusion:
Although AZT resistance in SFVmac is based on excision of the incorporated AZTMP like in HIV-1, the functions of the resistance substitutions in SFVmac PR-RT appear to be different. No mutation resulting in an aromatic residue like F/Y215 in HIV, which is responsible for π-π-stacking interactions with ATP, is present in SFVmac. Instead, S345T is responsible for creating an ATP binding site, probably by making an already existing tryptophan more accessible, which in turn can interact with ATP. This is in contrast to HIV-1 RT, in which an ATP binding site is present in the WT RT but differs from that of the AZT resistant enzyme.
Insights
Simian foamy virus (SFV) resistance to azidothymidine (AZT) involves excising AZT, unlike HIV-1. The S345T substitution in SFV protease-reverse transcriptase (PR-RT) creates an ATP binding site, crucial for AZT resistance.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Simian foamy virus (SFV) replication is inhibited by azidothymidine (AZT).
- Four specific mutations in the protease-reverse transcriptase (PR-RT) protein confer high AZT resistance and replication competence.
- AZT resistance in SFV is mediated by the excision of incorporated AZT monophosphate (AZTMP) in the presence of ATP.
Purpose of the Study:
- To biochemically analyze SFV PR-RT enzymes with one to four resistance-conferring substitutions.
- To determine the role of these substitutions in AZTMP excision activity and ATP binding.
Main Methods:
- Construction and biochemical analysis of PR-RT enzymes with varying substitutions.
- Assays to measure AZTMP excision activity.
- Nuclear Magnetic Resonance (NMR) titration experiments to detect ATP binding.
Main Results:
- The S345T substitution alone confers significant AZTMP excision activity.
- K211I, in combination with S345T and E350K, doubles excision efficiency and reduces nucleotide binding affinity.
- NMR studies show S345T enables ATP binding by increasing tryptophan accessibility, a mechanism distinct from HIV-1.
Conclusions:
- SFVmac PR-RT resistance mechanisms differ from HIV-1, lacking aromatic residue mutations for ATP interaction.
- The S345T substitution is key to forming an ATP binding site in SFV PR-RT.
- This ATP binding site facilitates AZTMP excision, conferring AZT resistance in SFV.
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