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Assessing single-stranded oligonucleotide drug-induced effects in vitro reveals key risk factors for thrombocytopenia
Sabine Sewing1, Adrian B Roth1, Michael Winter1
1Roche Pharma Research and Early Development, Roche Innovation Center Basel, Basel, Switzerland.
Abstract:
Single-stranded oligonucleotides (ON) comprise a promising therapeutic platform that enables selective modulation of currently undruggable targets. The development of novel ON drug candidates has demonstrated excellent efficacy, but in certain cases also some safety liabilities were reported. Among them are events of thrombocytopenia, which have recently been evident in late stage trials with ON drugs. The underlying mechanisms are poorly understood and the risk for ON candidates causing such events cannot be sufficiently assessed pre-clinically. We investigated potential thrombocytopenia risk factors of ONs and implemented a set of in vitro assays to assess these risks. Our findings support previous observations that phosphorothioate (PS)-ONs can bind to platelet proteins such as platelet collagen receptor glycoprotein VI (GPVI) and activate human platelets in vitro to various extents. We also show that these PS-ONs can bind to platelet factor 4 (PF4). Binding to platelet proteins and subsequent activation correlates with ON length and connected to this, the number of PS in the backbone of the molecule. Moreover, we demonstrate that locked nucleic acid (LNA) ribosyl modifications in the wings of the PS-ONs strongly suppress binding to GPVI and PF4, paralleled by markedly reduced platelet activation. In addition, we provide evidence that PS-ONs do not directly affect hematopoietic cell differentiation in culture but at higher concentrations show a pro-inflammatory potential, which might contribute to platelet activation. Overall, our data confirm that certain molecular attributes of ONs are associated with a higher risk for thrombocytopenia. We propose that applying the in vitro assays discussed here during the lead optimization phase may aid in deprioritizing ONs with a potential to induce thrombocytopenia.
Insights
Phosphorothioate oligonucleotides (PS-ONs) can cause thrombocytopenia by binding to platelet proteins. Modifications like locked nucleic acid (LNA) reduce this risk, aiding safer drug development.
Area of Science:
- Biochemistry
- Pharmacology
- Toxicology
Background:
- Oligonucleotides (ONs) are promising therapeutics for undruggable targets.
- Thrombocytopenia is a reported safety liability for some ON drugs.
- Mechanisms and pre-clinical assessment of ON-induced thrombocytopenia are poorly understood.
Purpose of the Study:
- Investigate risk factors for ON-induced thrombocytopenia.
- Develop in vitro assays to assess these risks.
- Identify molecular attributes influencing thrombocytopenia risk.
Main Methods:
- Assessed binding of phosphorothioate oligonucleotides (PS-ONs) to platelet proteins (GPVI, PF4).
- Evaluated in vitro platelet activation by PS-ONs.
- Investigated effects of ON length, PS backbone, and LNA modifications.
- Assessed PS-ONs' impact on hematopoietic cell differentiation and inflammatory potential.
Main Results:
- PS-ONs bind to GPVI and PF4, activating human platelets.
- Binding and activation correlate with ON length and PS content.
- Locked nucleic acid (LNA) modifications significantly reduce GPVI/PF4 binding and platelet activation.
- PS-ONs show pro-inflammatory potential at higher concentrations, potentially contributing to platelet activation.
Conclusions:
- Specific molecular features of ONs, like PS backbone and length, increase thrombocytopenia risk.
- LNA modifications can mitigate this risk.
- In vitro assays can aid in deprioritizing risky ON candidates during lead optimization.
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