Glioblastoma is among the most aggressive malignant brain tumours in adults and remains associated with limited treatment options and poor survival. While immunotherapies have transformed treatment in several cancers, their success in glioblastoma has been limited. A major reason is the highly complex and immunosuppressive tumour microenvironment, in which immune cells are progressively reprogrammed and prevented from mounting effective anti-tumour responses.
STIC-GBM addressed this challenge by combining single-cell genomics, spatial transcriptomics, antibody-based single-cell technologies, computational modelling and functional perturbation approaches. The overall objective was to understand how immune escape develops in glioblastoma across space and time, and to identify cellular programmes or molecular regulators that may be relevant for future therapeutic strategies.
The project had four main scientific objectives: to develop a spatio-temporal single-cell approach for studying immune cell infiltration into glioma; to generate computational methods for analysing spatial tissue niches; to establish workflows for applying these methods to glioma patient material; and to functionally validate candidate regulators of tumour-associated immune programmes.
The pathway to impact combines biological discovery with technological innovation. By generating new methods for analysing complex single-cell and spatial data, the project supports data-driven biomedical research beyond glioblastoma. Its results are relevant for cancer immunology, spatial biology and computational biology, and contribute to the broader European objective of strengthening digital and AI-supported life-science research.