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Updated: Jun 4, 2025

Translational Orthotopic Models of Glioblastoma Multiforme
Published on: February 17, 2023
Proteomic and cytokine profiling of a CTRP8-RXFP1 glioma mouse model
Thatchawan Thanasupawat1, Yared Pages Mejia1, Santhosh S Anandhan1
1Department of Human Anatomy and Cell Science, Winnipeg, MB, Canada.
Abstract:
Glioblastoma (GB) is the most prevalent and aggressive primary brain tumor with fatal outcome due to a lack of effective treatments. We previously identified C1q-tumor necrosis factor-related protein 8 (CTRP8), a new member of the adiponectin family, as a novel agonist of the relaxin family peptide receptor 1 (RXFP1) and showed that the CTRP8-RXFP1 ligand-receptor system facilitates increased invasiveness and chemoresistance in GB cells. In the present study, we have investigated the role of the CTRP8-RXFP1 signaling axis in glioma progression using an orthotopic mouse model xenografted with human U251 glioma cells stably expressing CTRP8 and RXFP1. Our results demonstrate that this in-vivo U251-CTRP8/RXFP1 glioma model promoted the formation of aggressive, highly proliferative glioma that resulted in significantly shorter survival times of xenografted mice. CTRP8/RXFP1 xenografts showed strongly elevated mitotic activity, increased expression of cathepsin B at the migrating front and promoted a pro-inflammatory tumor microenvironment characterized by a strong upregulation of cytokines, among them eotaxin-2 and-3, interleukin (IL)-6, IL-18 and others. Proteomic analysis of xenografted mouse brain identified both human and mouse proteome signatures unique to CTRP8/RXFP1 xenografts compared to U251 xenografts. In conclusion, our results suggest that co-expression of CTRP8 and RXFP1 promotes signaling pathways that generate unique tissue proteomic and inflammatory cytokine signatures which promote glioma aggressiveness. The CTRP-RXFP1 signaling pathway may represent an effective therapeutic target for the treatment of fast-progressing and currently untreatable GB.
Insights
The C1q-tumor necrosis factor-related protein 8 (CTRP8)-relaxin family peptide receptor 1 (RXFP1) pathway drives aggressive glioblastoma growth and reduces survival. Targeting this CTRP8-RXFP1 signaling axis may offer new glioblastoma treatment strategies.
Area of Science:
- Oncology
- Molecular Biology
- Neuroscience
Background:
- Glioblastoma (GB) is an aggressive brain tumor with limited treatment options.
- The C1q-tumor necrosis factor-related protein 8 (CTRP8)-relaxin family peptide receptor 1 (RXFP1) system was previously identified as a facilitator of GB cell invasiveness and chemoresistance.
Purpose of the Study:
- To investigate the role of the CTRP8-RXFP1 signaling axis in glioma progression using an in-vivo orthotopic mouse model.
- To elucidate the molecular mechanisms underlying CTRP8-RXFP1-mediated glioma aggressiveness.
Main Methods:
- Development of an orthotopic mouse model xenografted with human U251 glioma cells stably expressing CTRP8 and RXFP1.
- Assessment of tumor growth, proliferation, invasiveness, and survival rates in xenografted mice.
- Analysis of tumor microenvironment, including cytokine expression and proteomic signatures.
Main Results:
- The U251-CTRP8/RXFP1 glioma model significantly accelerated tumor progression and reduced survival times in mice.
- CTRP8/RXFP1 xenografts exhibited increased mitotic activity, cathepsin B expression at the invasive front, and a pro-inflammatory tumor microenvironment.
- Proteomic analysis revealed unique human and mouse proteome signatures in CTRP8/RXFP1 xenografts.
Conclusions:
- Co-expression of CTRP8 and RXFP1 promotes signaling pathways that enhance glioma aggressiveness.
- The CTRP8-RXFP1 axis generates distinct proteomic and inflammatory cytokine profiles associated with aggressive glioma.
- The CTRP8-RXFP1 signaling pathway presents a potential therapeutic target for glioblastoma treatment.
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