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Updated: Aug 29, 2026

Quantitative Structure-Activity Relationship, Activity Prediction, and Molecular Dynamics of Non-nucleotide Reverse Transcriptase Inhibitors
Published on: May 9, 2025
Identification and characterization of the conserved nucleoside-binding sites in the Epstein-Barr virus thymidine
Chung-Chun Wu1, Min-Che Chen, Ya-Ru Chang
1Graduate Institute of Microbiology, College of Medicine, National Taiwan University, Jen-Ai Road, Taipei 100, Taiwan, Republic of China.
Abstract:
Thymidine kinase (TK), encoded by EBV (Epstein-Barr virus), is an attractive target for antiviral therapy and provides a novel approach to the treatment of EBV-associated malignancies. Despite the extensive use of nucleoside analogues for the treatment of viral infections and cancer, the structure-function relationship of EBV TK has been addressed rarely. In the absence of any structural information, we sought to identify and elucidate the functional roles of amino acids in the nucleoside-binding site using site-directed mutagenesis. Through alignment with other human herpesviral TK protein sequences, we predicted that certain conserved regions comprise the nucleoside-binding site of EBV TK and, through site-directed mutagenesis, showed significant changes in activity and binding affinity for thymidine of site 3 (-DRH-) and 4 (-VFP-) mutants. For site 3, only mutants D392E (Asp392-->Glu) and R393H retain activity, indicating that a negative charge is important for Asp392 and a positive charge is required for Arg393. The increased binding affinities of these two mutants for 3'-deoxy-2',3'-didehydrothymidine suggest that the two residues are also important for substrate selection. Interestingly, the changed metal-ion usage pattern of D392E reveals that Asp392 plays multiple roles in this region. His394 cannot be compensated by other amino acids, also indicating a crucial role. In site 4, the F402Y mutant retains full activity; however, F402S retains only 60% relative activity. Strikingly, when Phe402 is substituted with serine residue, the original preferred pyrimidine substrates, such as 3'-azido-3'-deoxythymidine, iododeoxyuridine and beta-L-5-iododioxolane uracil (L-form substrate), have decreased competitiveness with thymidine, suggesting that Phe402 plays a crucial role in substrate specificity and that the aromatic ring is important for function.
Insights
Epstein-Barr virus thymidine kinase (EBV TK) is a target for antiviral therapies. Site-directed mutagenesis revealed key amino acids in the nucleoside-binding site, crucial for EBV TK activity and substrate specificity.
Area of Science:
- Biochemistry
- Virology
- Molecular Biology
Background:
- Epstein-Barr virus (EBV) thymidine kinase (TK) is a critical enzyme for viral replication and a potential target for antiviral therapies.
- Understanding the structure-function relationship of EBV TK is essential for developing effective treatments against EBV-associated diseases.
- Limited structural information exists for EBV TK, necessitating functional studies to elucidate its active site.
Purpose of the Study:
- To identify and characterize the functional roles of amino acids within the nucleoside-binding site of EBV TK.
- To elucidate the structure-function relationship of EBV TK using site-directed mutagenesis.
- To investigate the impact of specific amino acid substitutions on EBV TK activity, substrate binding, and specificity.
Main Methods:
- Sequence alignment of EBV TK with other human herpesviral TK proteins to predict conserved nucleoside-binding regions.
- Site-directed mutagenesis to introduce specific amino acid substitutions in predicted functional regions.
- Enzyme activity assays and binding affinity measurements to assess the impact of mutations.
Main Results:
- Mutations in site 3 (Asp392, Arg393, His394) significantly altered EBV TK activity and thymidine binding affinity.
- Asp392 and Arg393 are critical for maintaining enzyme activity and substrate selection, with specific charge requirements.
- Phe402 in site 4 is crucial for substrate specificity, as its substitution with serine reduced the enzyme's preference for pyrimidine analogs.
Conclusions:
- Specific amino acid residues, particularly Asp392, Arg393, His394, and Phe402, play vital roles in the catalytic activity and substrate specificity of EBV TK.
- The findings provide insights into the EBV TK active site, guiding the design of novel antiviral agents targeting EBV infections and malignancies.

