Perfusion-Based Bioreactor Culture and Isothermal Microcalorimetry for Preclinical Drug Testing with the Carbonic

Zihe Huo1,2, Remo Bilang1,2, Claudiu T Supuran3

  • 1Department of Pediatric Surgery, University Children's Hospital Basel, 4031 Basel, Switzerland.

Insights

A novel 3D slice-culture perfusion model combined with isothermal microcalorimetry effectively evaluates neuroblastoma (NB) drug responses. This advanced preclinical model aids in selecting promising therapeutics for personalized neuroblastoma treatment strategies.

Area of Science:

  • Oncology
  • Biotechnology
  • Pharmacology

Background:

  • Neuroblastoma (NB) treatment is limited by rare clinical trials and the need for better preclinical models.
  • Advanced NB requires improved therapies, necessitating effective methods for testing novel therapeutic candidates.
  • Current preclinical models struggle to accurately predict drug efficacy for diverse NB patient tumors.

Purpose of the Study:

  • To develop and validate a patient-derived 3D slice-culture perfusion model for neuroblastoma drug screening.
  • To assess the efficacy of the carbonic anhydrase inhibitor SLC-0111 using this novel model and isothermal microcalorimetry.
  • To establish a robust platform for rapid and sensitive evaluation of therapeutic responses in neuroblastoma.

Main Methods:

  • Utilized patient-derived organotypic slice cultures in a 3D perfusion bioreactor system for up to 7 days.
  • Employed isothermal microcalorimetry for rapid and sensitive assessment of cellular metabolic activity and drug response.
  • Tested the carbonic anhydrase IX and XII (CAIX/CAXII) inhibitor SLC-0111 on neuroblastoma cell lines and patient-derived cultures.

Main Results:

  • The 3D perfusion model maintained tissue integrity and cellular structure for 7 days.
  • SLC-0111 demonstrated efficacy in patient-derived slice cultures, correlating with CAIX/CAXII expression and reduced thermogenesis.
  • Isothermal microcalorimetry successfully monitored drug response, showing reduced thermogenesis in treated samples.
  • SH-EP cell viability was reduced by SLC-0111, while LAN1 cells were unaffected; SH-SY5Y response depended on hypoxia-induced CAIX expression.

Conclusions:

  • The developed 3D slice-culture perfusion system is a viable advanced preclinical model for neuroblastoma.
  • This model, coupled with isothermal microcalorimetry, enables efficient drug screening and personalized treatment strategy development.
  • The study highlights the potential of targeting CAIX/CAXII in specific neuroblastoma subtypes.

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