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Contrast Ultrasound Targeted Treatment of Gliomas in Mice via Drug-Bearing Nanoparticle Delivery and Microvascular Ablation
Published on: December 15, 2010
Glioma-targeted therapy using Cilengitide nanoparticles combined with UTMD enhanced delivery
Ying-Zheng Zhao1, Qian Lin2, Ho Lun Wong3
1School of Pharmaceutical Sciences, Wenzhou Medical University, Wenzhou City, Zhejiang Province 325035, China; The Second Affiliated Hospital of Wenzhou Medical University, Wenzhou City, Zhejiang Province 325035, China.
Abstract:
Malignant gliomas especially glioblastoma (GBM) are poorly responsive to the current treatments. Cilengitide (CGT) is a cyclic pentapeptide that demonstrated efficacy for GBM treatment by targeting the integrins avβ3 and avβ5 over-expressed on GBM cells. However, clinical translation of this therapy has been limited by issues including fast blood clearance, high kidney and liver uptake, poor blood-brain barrier (BBB) penetration, low tumor specificity and rapid washout from tumors. In this study, these issues were tackled in an integrated manner using a multi-stage strategy combining ultrasound-targeted microbubble destruction (UTMD) with CGT nanotherapy. CGT nanoparticles (CGT-NP) prepared using gelatin and Poloxamer 188-grafted heparin copolymer demonstrated significant apoptotic and cytotoxic effects in C6 GBM cells. Biodistribution study in a rat GBM model demonstrated buildup of high CGT level in tumors subjected to CGT-NP+UTMD combined therapy. The tumor CGT level in these animals was increased over 3-fold, tumor retention of CGT prolonged and renal clearance significantly reduced when compared with free CGT with or without UTMD. CGT-NP+UTMD treatment was further shown to extend the median survival period from less than 20days in the control and about 30days in free CGT group to about 80days. This was achieved with low CGT dosing level (2mg/kg twice weekly). In situ monitoring of GFAP, Ki67, caspase-3, Beclin-1, and LC-3 in the tumor samples together with TUNEL assay, transmission electron microscope imaging and Western blot assay all demonstrated high apoptotic and autophagy activities induced by the combined therapy. In conclusion, this study has provided extensive preclinical data supporting the use of this combined therapy to overcome the limitations of standard CGT treatment of gliomas.
Insights
This study combined ultrasound-targeted microbubble destruction with cilengitide (CGT) nanotherapy to improve glioblastoma (GBM) treatment. The novel approach significantly enhanced CGT delivery to tumors, prolonged retention, and extended survival in preclinical models.
Area of Science:
- Oncology
- Nanomedicine
- Biotechnology
Background:
- Malignant gliomas, particularly glioblastoma (GBM), exhibit poor response to current therapies.
- Cilengitide (CGT), targeting integrins αvβ3 and αvβ5, shows promise for GBM but faces clinical limitations like rapid clearance and poor blood-brain barrier (BBB) penetration.
Purpose of the Study:
- To overcome the limitations of cilengitide (CGT) therapy for glioblastoma (GBM).
- To develop an integrated nanotherapy combining ultrasound-targeted microbubble destruction (UTMD) with CGT nanoparticles (CGT-NP) for enhanced GBM treatment.
Main Methods:
- Preparation of CGT nanoparticles (CGT-NP) using gelatin and Poloxamer 188-grafted heparin copolymer.
- Application of ultrasound-targeted microbubble destruction (UTMD) combined with CGT-NP administration in a rat GBM model.
- Assessment of CGT biodistribution, tumor uptake, retention, renal clearance, and survival rates.
Main Results:
- CGT-NP+UTMD therapy significantly increased CGT levels in tumors (over 3-fold) and prolonged tumor retention compared to free CGT.
- Combined therapy reduced renal clearance of CGT and extended median survival from <20 days to ~80 days at a low CGT dose (2mg/kg twice weekly).
- Extensive assays confirmed high apoptotic and autophagy activities in tumors treated with CGT-NP+UTMD.
Conclusions:
- The integrated CGT-NP+UTMD strategy effectively overcomes the limitations of standard CGT treatment for gliomas.
- This combined therapy demonstrates significant preclinical efficacy in enhancing GBM treatment and patient survival.
- Extensive preclinical data support the clinical translation of this novel nanotherapy approach for glioma treatment.
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