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Heterogeneous Uptake of Nanoparticles in Mouse Models of Pediatric High-Risk Neuroblastoma
Ketan B Ghaghada1, Zbigniew A Starosolski1, Anna Lakoma2
1Department of Pediatric Radiology, Texas Children's Hospital, Houston, Texas, United States of America.
Abstract:
Liposomal chemotherapeutics are exemplified by DOXIL® are commonly used in adult cancers. While these agents exhibit improved safety profile compared to their free drug counterparts, their treatment response rates have been ~ 20%, often attributed to the heterogeneous intratumoral uptake and distribution of liposomal nanoparticles. Non-invasive and quantitative monitoring of the uptake and distribution of liposomal nanoparticles in solid tumors could allow for patient stratification and personalized cancer nanomedicine. In this study, the variability of liposomal nanoparticle intratumoral distribution and uptake in orthotopic models of pediatric neuroblastoma was investigated using a liposomal nanoprobe visualized by high-resolution computed tomography (CT). Two human neuroblastoma cell lines (NGP: a MYCN-amplified line, and SH-SY5Y a MYCN non-amplified line) were implanted in the renal capsule of nude mice to establish the model. Intratumoral nanoparticle uptake was measured at tumor ages 1, 2, 3 and 4 weeks post implantation. The locations of uptake within the tumor were mapped in the 3-dimensional reconstructed images. Total uptake was measured by integration of the x-ray absorption signal over the intratumoral uptake locations. Both tumor models showed significant variation in nanoparticle uptake as the tumors aged. Observation of the uptake patterns suggested that the nanoparticle uptake was dominated by vascular leak at the surface/periphery of the tumor, and localized, heterogeneous vascular leak in the interior of the tumor. Slow growing SH-SY5Y tumors demonstrated uptake that correlated directly with the tumor volume. Faster growing NGP tumor uptake did not correlate with any tumor geometric parameters, including tumor volume, tumor surface area, and R30 and R50, measures of uptake localized to the interior of the tumor. However, uptake for both SH-SY5Y and NGP tumors correlated almost perfectly with the leak volume, as measured by CT. These results suggest that the uptake of nanoparticles is heterogeneous and not governed by tumor geometry. An imaging nanoprobe remains the best measure of nanoparticle uptake in these tumor models.
Insights
Liposomal nanoparticle uptake in pediatric neuroblastoma models is highly variable and not related to tumor size. Imaging probes are crucial for precisely measuring this uptake, enabling personalized nanomedicine approaches.
Area of Science:
- Oncology
- Nanomedicine
- Medical Imaging
Background:
- Liposomal chemotherapeutics offer improved safety but have limited efficacy (~20%) in adult cancers.
- Heterogeneous intratumoral uptake and distribution of liposomal nanoparticles contribute to treatment variability.
- Non-invasive monitoring of nanoparticle distribution is needed for patient stratification and personalized nanomedicine.
Purpose of the Study:
- To investigate the variability of liposomal nanoparticle intratumoral distribution and uptake in pediatric neuroblastoma models.
- To assess the correlation between nanoparticle uptake and tumor characteristics.
- To evaluate the utility of imaging nanoprobe for quantitative assessment of nanoparticle uptake.
Main Methods:
- Orthotopic neuroblastoma models were established using MYCN-amplified (NGP) and non-amplified (SH-SY5Y) human cell lines in nude mice.
- Liposomal nanoprobe visualized by high-resolution computed tomography (CT) was used to measure intratumoral nanoparticle uptake at various tumor ages.
- 3D reconstructed images were used to map uptake locations and quantify total uptake based on X-ray absorption signal.
Main Results:
- Significant variations in nanoparticle uptake were observed as tumors aged in both models.
- Uptake patterns indicated dominance of vascular leak at the tumor periphery and heterogeneous leak within the tumor interior.
- Nanoparticle uptake correlated strongly with tumor "leak volume" as measured by CT, irrespective of tumor geometry or growth rate.
Conclusions:
- Liposomal nanoparticle uptake in neuroblastoma is heterogeneous and primarily governed by vascular leak, not tumor geometry.
- Imaging nanoprobe provides a reliable method for quantitative assessment of nanoparticle uptake in these models.
- This approach could facilitate patient stratification and personalized nanomedicine strategies in pediatric neuroblastoma.

