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Terstappen, J.

Publications and source records attributed to Terstappen, J..

2 recordsLinked to original sources

RSM01, an extended half-life RSV monoclonal antibody with a high barrier to resistance

Respiratory syncytial virus (RSV) causes substantial infant morbidity and mortality, particularly in low- and middle-income countries (LMICs). RSM01 is a long-acting RSV monoclonal antibody (mAb) in development for LMICs. To date, RSM01 resistant mutants have not been able to be generated in vitro. We systematically assessed the in vitro resistance barrier of RSM01 relative to licensed RSV mAbs and the susceptibility of a panel of global contemporary strains to RSM01. The emergence of mAb-resistant mutant (MARM) was assessed for RSM01, nirsevimab, and palivizumab. Triple plaque-purified RSV-A2 and RSV-B1 were serially passaged under mAb pressure to generate MARMs, which were phenotyped and genotyped. Moderate resistance was defined as > 3-fold and high resistance > 30-fold increase in IC50 compared with parental strains. The susceptibility of contemporary clinical strains from South Africa, Argentina, and the Netherlands to RSM01 was tested in a neutralisation assay. RSV-A and B lab strains developed high resistance to palivizumab and nirsevimab, while RSM01 pressure induced moderate resistance. No MARMs demonstrated a fitness advantage; one RSM01 MARM incurred fitness costs. RSM01 potently neutralized global contemporary RSV-A and B strains. In conclusion, in vitro RSM01 resistance was infrequent and moderate, suggesting a high resistance barrier in vitro. Laboratory-selected MARMs may not directly predict clinical escape, but the confirmation of the high barrier to resistance of RSM01 is encouraging and provides an alternative in the event that resistance is observed with widespread use of current licensed anti-RSV mAbs. One Sentence SummaryIn vitro RSV resistance to RSM01 is infrequent and moderate, suggesting a high barrier to resistance.

microbiology↗

Small molecule-directed differentiation of submerged-cultured human nasal airway epithelia for respiratory disease modelling

Submerged cultures of undifferentiated or transformed epithelial cells are widely used in respiratory research due to their ease of use and scalability. However, these systems fail to capture the cellular diversity of the human airway epithelium. In this study, we developed an in vitro model where cryopreserved human nasal epithelial cells, collected by brushings, are differentiated under submerged conditions on standard plastic cultureware. By applying small-molecule inhibitors targeting Notch and BMP signaling, we achieved efficient differentiation of cultures containing basal, secretory, and ciliated cells. This approach supports scalable culturing of both 2D epithelial monolayers and 3D organoids, validated as (personalized) disease models for primary ciliary dyskinesia, cystic fibrosis, and respiratory syncytial virus infection. This model offers a cost-effective, scalable platform that combines the simplicity of traditional cultures with the cellular complexity of the human airway epithelium, providing a valuable tool for respiratory disease research.

cell biology↗