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Structure-activity relationship analysis of mitochondrial toxicity caused by antiviral ribonucleoside analogs
Zhinan Jin1, April Kinkade1, Ishani Behera1
1Alios BioPharma, Inc., Part of the Janssen Pharmaceutical Companies, South San Francisco, CA, USA.
Abstract:
Recent cases of severe toxicity during clinical trials have been associated with antiviral ribonucleoside analogs (e.g. INX-08189 and balapiravir). Some have hypothesized that the active metabolites of toxic ribonucleoside analogs, the triphosphate forms, inadvertently target human mitochondrial RNA polymerase (POLRMT), thus inhibiting mitochondrial RNA transcription and protein synthesis. Others have proposed that the prodrug moiety released from the ribonucleoside analogs might instead cause toxicity. Here, we report the mitochondrial effects of several clinically relevant and structurally diverse ribonucleoside analogs including NITD-008, T-705 (favipiravir), R1479 (parent nucleoside of balapiravir), PSI-7851 (sofosbuvir), and INX-08189 (BMS-986094). We found that efficient substrates and chain terminators of POLRMT, such as the nucleoside triphosphate forms of R1479, NITD-008, and INX-08189, are likely to cause mitochondrial toxicity in cells, while weaker chain terminators and inhibitors of POLRMT such as T-705 ribonucleoside triphosphate do not elicit strong in vitro mitochondrial effects. Within a fixed 3'-deoxy or 2'-C-methyl ribose scaffold, changing the base moiety of nucleotides did not strongly affect their inhibition constant (Ki) against POLRMT. By swapping the nucleoside and prodrug moieties of PSI-7851 and INX-08189, we demonstrated that the cell-based toxicity of INX-08189 is mainly caused by the nucleoside component of the molecule. Taken together, these results show that diverse 2' or 4' mono-substituted ribonucleoside scaffolds cause mitochondrial toxicity. Given the unpredictable structure-activity relationship of this ribonucleoside liability, we propose a rapid and systematic in vitro screen combining cell-based and biochemical assays to identify the early potential for mitochondrial toxicity.
Insights
Antiviral ribonucleoside analogs can cause severe toxicity by inhibiting mitochondrial RNA polymerase (POLRMT). The nucleoside triphosphate metabolites, not the prodrug, are the primary cause of this mitochondrial toxicity, necessitating early screening.
Area of Science:
- Biochemistry
- Toxicology
- Molecular Biology
Background:
- Severe toxicity cases in clinical trials linked to antiviral ribonucleoside analogs.
- Hypotheses suggest active triphosphate metabolites or prodrug moieties cause toxicity.
- Mitochondrial RNA polymerase (POLRMT) is a potential target for toxic ribonucleoside analogs.
Purpose of the Study:
- Investigate the mitochondrial effects of diverse clinically relevant ribonucleoside analogs.
- Determine the mechanism of toxicity for specific ribonucleoside analogs.
- Propose a screening method to identify potential mitochondrial toxicity early.
Main Methods:
- Assessed in vitro mitochondrial effects of ribonucleoside analogs including NITD-008, T-705, R1479, PSI-7851, and INX-08189.
- Evaluated inhibition of human mitochondrial RNA polymerase (POLRMT) by nucleoside triphosphates.
- Utilized structure-activity relationship studies by swapping nucleoside and prodrug moieties.
Main Results:
- Efficient POLRMT substrates/terminators (e.g., R1479, NITD-008, INX-08189 triphosphates) likely cause mitochondrial toxicity.
- Weaker POLRMT inhibitors (e.g., T-705 triphosphate) showed minimal in vitro mitochondrial effects.
- Toxicity of INX-08189 was primarily attributed to its nucleoside component, not the prodrug.
Conclusions:
- Diverse 2' or 4' mono-substituted ribonucleoside scaffolds can induce mitochondrial toxicity.
- The nucleoside moiety, particularly its triphosphate metabolite, is a key driver of ribonucleoside analog-induced mitochondrial toxicity.
- A combined in vitro screening approach (cell-based and biochemical assays) is proposed for early detection of mitochondrial toxicity potential.