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Updated: Sep 29, 2025

Laboratory-Engineered Glioblastoma Organoid Culture and Drug Screening
Published on: January 10, 2025
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.
Abstract:
Neuroblastoma is a rare disease. Rare are also the possibilities to test new therapeutic options for neuroblastoma in clinical trials. Despite the constant need to improve therapy and outcomes for patients with advanced neuroblastoma, clinical trials currently only allow for testing few substances in even fewer patients. This increases the need to improve and advance preclinical models for neuroblastoma to preselect favorable candidates for novel therapeutics. Here we propose the use of a new patient-derived 3D slice-culture perfusion-based 3D model in combination with rapid treatment evaluation using isothermal microcalorimetry exemplified with treatment with the novel carbonic anhydrase IX and XII (CAIX/CAXII) inhibitor SLC-0111. Patient samples showed a CAIX expression of 18% and a CAXII expression of 30%. Corresponding with their respective CAIX expression patterns, the viability of SH-EP cells was significantly reduced upon treatment with SLC-0111, while LAN1 cells were not affected. The inhibitory effect on SH-SY5Y cells was dependent on the induction of CAIX expression under hypoxia. These findings corresponded to thermogenesis of the cells. Patient-derived organotypic slice cultures were treated with SLC-0111, which was highly effective despite heterogeneity of CAIX/CAXII expression. Thermogenesis, in congruence with the findings of the histological observations, was significantly reduced in SLC-0111-treated samples. In order to extend the evaluation time, we established a perfusion-based approach for neuroblastoma tissue in a 3D perfusion-based bioreactor system. Using this system, excellent tissue quality with intact tumor cells and stromal structure in neuroblastoma tumors can be maintained for 7 days. The system was successfully used for consecutive drug response monitoring with isothermal microcalorimetry. The described approach for drug testing, relying on an advanced 3D culture system combined with a rapid and highly sensitive metabolic assessment, can facilitate development of personalized treatment strategies for neuroblastoma.
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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