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Systemic Delivery of an Adjuvant CXCR4-CXCL12 Signaling Inhibitor Encapsulated in Synthetic Protein Nanoparticles for
Mahmoud S Alghamri1,2, Kaushik Banerjee1,2, Anzar A Mujeeb1,2
1Department of Neurosurgery, University of Michigan Medical School, Ann Arbor, Michigan 48109, United States.
Abstract:
Glioblastoma (GBM) is an aggressive primary brain cancer, with a 5 year survival of ∼5%. Challenges that hamper GBM therapeutic efficacy include (i) tumor heterogeneity, (ii) treatment resistance, (iii) immunosuppressive tumor microenvironment (TME), and (iv) the blood-brain barrier (BBB). The C-X-C motif chemokine ligand-12/C-X-C motif chemokine receptor-4 (CXCL12/CXCR4) signaling pathway is activated in GBM and is associated with tumor progression. Although the CXCR4 antagonist (AMD3100) has been proposed as an attractive anti-GBM therapeutic target, it has poor pharmacokinetic properties, and unfavorable bioavailability has hampered its clinical implementation. Thus, we developed synthetic protein nanoparticles (SPNPs) coated with the transcytotic peptide iRGD (AMD3100-SPNPs) to target the CXCL2/CXCR4 pathway in GBM via systemic delivery. We showed that AMD3100-SPNPs block CXCL12/CXCR4 signaling in three mouse and human GBM cell cultures in vitro and in a GBM mouse model in vivo. This results in (i) inhibition of GBM proliferation, (ii) reduced infiltration of CXCR4+ monocytic myeloid-derived suppressor cells (M-MDSCs) into the TME, (iii) restoration of BBB integrity, and (iv) induction of immunogenic cell death (ICD), sensitizing the tumor to radiotherapy and leading to anti-GBM immunity. Additionally, we showed that combining AMD3100-SPNPs with radiation led to long-term survival, with ∼60% of GBM tumor-bearing mice remaining tumor free after rechallenging with a second GBM in the contralateral hemisphere. This was due to a sustained anti-GBM immunological memory response that prevented tumor recurrence without additional treatment. In view of the potent ICD induction and reprogrammed tumor microenvironment, this SPNP-mediated strategy has a significant clinical translation applicability.
Insights
New synthetic protein nanoparticles (SPNPs) target glioblastoma (GBM) by blocking CXCL12/CXCR4 signaling. This approach inhibits tumor growth, enhances radiotherapy, and establishes long-term anti-GBM immunity.
Area of Science:
- Oncology
- Nanotechnology
- Immunology
Background:
- Glioblastoma (GBM) is an aggressive brain cancer with poor survival rates.
- Challenges include tumor heterogeneity, treatment resistance, immunosuppressive tumor microenvironment (TME), and the blood-brain barrier (BBB).
- The CXCL12/CXCR4 pathway is implicated in GBM progression, but CXCR4 antagonists have limitations.
Purpose of the Study:
- To develop and evaluate synthetic protein nanoparticles (SPNPs) for targeting the CXCL12/CXCR4 pathway in GBM.
- To assess the efficacy of AMD3100-loaded SPNPs (AMD3100-SPNPs) in inhibiting GBM growth and overcoming treatment resistance.
Main Methods:
- Development of iRGD peptide-coated SPNPs loaded with AMD3100 for systemic delivery.
- In vitro studies using GBM cell cultures and in vivo studies using a GBM mouse model.
- Evaluation of tumor proliferation, immune cell infiltration, BBB integrity, and immunogenic cell death (ICD).
Main Results:
- AMD3100-SPNPs effectively blocked CXCL12/CXCR4 signaling in GBM.
- Inhibition of GBM proliferation and reduced infiltration of myeloid-derived suppressor cells (M-MDSCs).
- Restored BBB integrity, induced ICD, and sensitized tumors to radiotherapy, leading to long-term survival and immunological memory.
Conclusions:
- SPNP-mediated targeting of the CXCL12/CXCR4 pathway offers a promising strategy for GBM therapy.
- Combination therapy with AMD3100-SPNPs and radiation induces potent anti-GBM immunity and long-term tumor control.
- This approach demonstrates significant clinical translation potential for glioblastoma treatment.

