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Mesenchymal stem cells display tumor-specific tropism in an RCAS/Ntv-a glioma model
Tiffany Doucette1, Ganesh Rao, Yuhui Yang
1Department of Neurosurgery, The University of Texas, MD Anderson Cancer Center, Houston, TX 77030, USA.
Abstract:
Bone marrow-derived mesenchymal stem cells (MSCs) have been shown to localize to gliomas and deliver therapeutic agents. However, the clinical translation of MSCs remains poorly defined because previous studies relied on glioma models with uncertain relevance to human disease, typically xenograft models in immunocompromised mice. To address this shortcoming, we used the RCAS/Ntv-a system, in which endogenous gliomas that recapitulate the tumor and stromal features of human gliomas develop in immunocompetent mice. MSCs were harvested from bone marrow of Ntv-a mice and injected into the carotid artery of Ntv-a mice previously inoculated with RCAS-PDGF-B and RCAS-IGFBP2 to induce malignant gliomas (n = 9). MSCs were labeled with luciferase for in vivo bioluminescence imaging (BLI). After intra-arterial injection, BLI revealed MSCs in the right frontal lobe in seven of nine mice. At necropsy, gliomas were detected within the right frontal lobe in all these mice, correlating with the location of the MSCs. In the two mice without MSCs based on BLI, no tumor was found, indicating that MSC localization was tumor specific. In another cohort of mice (n = 9), MSCs were labeled with SP-DiI, a fluorescent vital dye. After intra-arterial injection, fluorescence microscopy revealed SP-DiI-labeled MSCs throughout tumors 1 to 7 days after injection but not in nontumoral areas of the brain. MSCs injected intravenously did not localize to tumors (n = 12). We conclude that syngeneic MSCs are capable of homing to endogenous gliomas in immunocompetent mice. These findings support the use of MSCs as tumor-specific delivery vehicles for treating gliomas.
Insights
Mesenchymal stem cells (MSCs) can specifically target and home to gliomas in immunocompetent mice. This finding supports using MSCs as a tumor-specific delivery system for glioma treatment.
Area of Science:
- Neuro-oncology
- Stem Cell Biology
- Cancer Therapy
Background:
- Mesenchymal stem cells (MSCs) show potential for glioma-targeted drug delivery.
- Previous studies used xenograft models lacking human relevance.
- Clinical translation of MSCs for glioma treatment requires more robust preclinical models.
Purpose of the Study:
- To evaluate the tumor-homing capacity of syngeneic mesenchymal stem cells (MSCs) in endogenous gliomas.
- To assess MSC localization in immunocompetent mice using a clinically relevant glioma model.
- To determine if MSCs can serve as tumor-specific delivery vehicles for glioma therapy.
Main Methods:
- Developed endogenous malignant gliomas in immunocompetent Ntv-a mice using the RCAS/Ntv-a system.
- Administered bone marrow-derived MSCs via intra-arterial injection.
- Utilized in vivo bioluminescence imaging (BLI) and fluorescence microscopy to track MSCs.
- Compared MSC localization after intra-arterial versus intravenous administration.
Main Results:
- Intra-arterially injected MSCs localized to gliomas in 7 of 9 mice, confirmed by BLI and necropsy.
- Fluorescence microscopy confirmed SP-DiI-labeled MSCs within tumors 1-7 days post-injection, with no presence in non-tumoral brain areas.
- Intravenously injected MSCs did not demonstrate tumor homing (0 of 12 mice).
Conclusions:
- Syngeneic MSCs effectively home to endogenous gliomas in immunocompetent mice.
- MSC localization is tumor-specific, supporting their use as targeted delivery vehicles.
- These findings validate MSCs for potential glioma therapeutic strategies.
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