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Transcriptome Analysis Identifies Accumulation of Natural Killer Cells with Enhanced Lymphotoxin-β Expression during
Gianni Monaco1,2, Ashkan Khavaran1, Adrià Dalmau Gasull1
1Institute of Neuropathology, Faculty of Medicine, University of Freiburg, 79106 Freiburg, Germany.
Abstract:
Glioblastomas are the most common primary brain tumors. Despite extensive clinical and molecular insights into these tumors, the prognosis remains dismal. While targeted immunotherapies have shown remarkable success across different non-brain tumor entities, they failed to show efficacy in glioblastomas. These failures prompted the field to reassess the idiosyncrasies of the glioblastoma microenvironment. Several high-dimensional single-cell RNA sequencing studies generated remarkable findings about glioblastoma-associated immune cells. To build on the collective strength of these studies, we integrated several murine and human datasets that profiled glioblastoma-associated immune cells at different time points. We integrated these datasets and utilized state-of-the-art algorithms to investigate them in a hypothesis-free, purely exploratory approach. We identified a robust accumulation of a natural killer cell subset that was characterized by a downregulation of activation-associated genes with a concomitant upregulation of apoptosis genes. In both species, we found a robust upregulation of the Lymphotoxin-β gene, a cytokine from the TNF superfamily and a key factor for the development of adaptive immunity. Further validation analyses uncovered a correlation of lymphotoxin signaling with mesenchymal-like glioblastoma regions in situ and in TCGA and CGGA glioblastoma cohorts. In summary, we identify lymphotoxin signaling as a potential therapeutic target in glioblastoma-associated natural killer cells.
Insights
Glioblastoma immunotherapy has failed, prompting a look at the tumor microenvironment. Researchers found a natural killer cell subset with suppressed activation and increased apoptosis, linked to Lymphotoxin-β signaling, a potential therapeutic target.
Area of Science:
- Neuro-oncology
- Immunology
- Genomics
Background:
- Glioblastomas are aggressive primary brain tumors with poor prognosis.
- Immunotherapies effective in other cancers have failed in glioblastomas.
- The glioblastoma microenvironment presents unique challenges for treatment.
Purpose of the Study:
- To investigate glioblastoma-associated immune cells using integrated multi-omic datasets.
- To identify novel immune cell subsets and signaling pathways within the glioblastoma microenvironment.
- To explore potential therapeutic targets for glioblastoma treatment.
Main Methods:
- Integrated analysis of multiple murine and human single-cell RNA sequencing datasets.
- Utilized advanced algorithms for hypothesis-free exploration of glioblastoma immune infiltrates.
- Performed validation analyses correlating findings with glioblastoma subtypes and clinical cohorts.
Main Results:
- Identified a natural killer (NK) cell subset with downregulated activation and upregulated apoptosis markers.
- Discovered significant upregulation of Lymphotoxin-β (LT-β) in glioblastoma-associated immune cells across species.
- Correlated lymphotoxin signaling with mesenchymal glioblastoma subtypes in situ and in patient cohorts (TCGA, CGGA).
Conclusions:
- Lymphotoxin signaling is implicated in glioblastoma immune cell dysfunction.
- Targeting lymphotoxin signaling in NK cells represents a potential therapeutic strategy for glioblastomas.
- Further research into LT-β pathways may unlock new glioblastoma treatment avenues.
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