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

  • Henriette H.M. Dreyer
  • , Georgia Nefeli Ithakisiou
  • , Sacha Spelier
  • , Malina K. Iwanski
  • , Eugene Katrukha
  • , Jonne Terstappen
  • , Lisa W. Rodenburg
  • , Aditi Shekhar
  • , Loes A. den Hertog-Oosterhoff
  • , Shannon M.A. Smits
  • , Isabelle S. van der Windt
  • , Lotte T. Azink
  • , Linda H.M. Bijlard
  • , Koen Passier
  • , Sam F.B. van Beuningen
  • , Robert Jan Lebbink
  • , Eric G. Haarman
  • , Cornelis K. van der Ent
  • , Lukas C. Kapitein
  • , Louis J. Bont
  • Jeffrey M. Beekman, Gimano D. Amatngalim

Research output: Contribution to journalArticlepeer-review

1 Citation (Scopus)

Abstract

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. Here, we describe a submerged differentiation model using cryopreserved human nasal epithelial cells obtained via minimally invasive brushings. By targeting Notch and BMP signaling with small molecule inhibitors, we differentiate these cells into complex epithelial cultures containing basal, secretory, and ciliated cell types on standard plastic cultureware. This method supports scalable culture of both 2D epithelial monolayers and 3D organoids and is applied to disease modeling in primary ciliary dyskinesia, cystic fibrosis, and respiratory syncytial virus infection. The resulting system enables scalable assessment of disease-relevant epithelial functions in respiratory research.

Original languageEnglish
Pages (from-to)102692
Number of pages1
JournalCell Reports Medicine
Volume7
Issue number4
DOIs
Publication statusPublished - 21 Apr 2026
Externally publishedYes

Keywords

  • RSV
  • airway epithelial cell cultures
  • airway organoids
  • cystic fibrosis
  • high-throughput epithelial screening
  • mucociliary epithelium
  • nasal epithelial cells
  • patient-derived airway epithelial models
  • primary ciliary dyskinesia
  • respiratory syncytial virus
  • submerged differentiation
  • Nasal Mucosa/pathology
  • Epithelial Cells/metabolism
  • Cell Differentiation/drug effects
  • Cell Culture Techniques/methods
  • Humans
  • Cells, Cultured
  • Signal Transduction/drug effects
  • Cystic Fibrosis/pathology
  • Respiratory Syncytial Virus Infections/pathology
  • Organoids
  • Small Molecule Libraries/pharmacology
  • Models, Biological
  • Ciliary Motility Disorders/pathology

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