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TPP-Based Nanovesicles Kill MDR Neuroblastoma Cells and Induce Moderate ROS Increase, While Exerting Low Toxicity
Silvana Alfei1, Carola Torazza1, Francesca Bacchetti1
1Department of Pharmacy, University of Genoa, 16148 Genoa, Italy.
Abstract:
Neuroblastoma (NB) is a malignant childhood tumour, which originates from neuroblasts with an incidence of approximately 15,000 new cases per year worldwide. Therapy-induced secondary tumorigenesis and the emergency of drug resistance in its high-risk (HR-NB) forms drive to a survival rate of <50%, despite aggressive treatments. Our recent research is focused on testing in vitro the effects of synthetized triphenyl phosphonium (TPP)-based bola amphiphilic nanovesicles (BPPBs) against both drug-sensitive and multi-drug-resistant (MDR) cancer cell lines. In the present study, BPPB demonstrated sub-micromolar IC50 values (0.4-0.9 µM) towards drug-sensitive HTLA 230, while 1.20-1.35 µM IC50 were determined on MDR HTLA ER. Noteworthily, we have demonstrated that BPPB triggers apoptosis of both NB cell populations. Additionally, since MDR NB cells (HTLA ER) are equipped with higher levels of antioxidants than sensitive ones (HTLA 230), the potential involvement of reactive oxygen species (ROS) in the cytotoxic action of BPPB was also investigated. Then, a novel analytical approach was applied to the results of cell viability and ROS monitoring for their better interpretation. Proper dispersion graphs and their best fitting nonlinear regression models were used to verify if the cytotoxic effects of BPPB could depend on BPPB concentrations, exposure times, and/or ROS generation, and if ROS increase could depend on BPPB concentrations and/or exposure times. A ROS-dependent mechanism was found in 24 h and 24/48 h treatments of HTLA ER and HTLA 230, respectively. Furthermore, the potential clinical development of BPPB as a new curative option for children affected by HR-NB was assessed by testing BPPB on astrocyte and neuron primary cell cultures, and analytical correlation studies were used to interpret the results. Notably, BPPB administration was sufficiently and well tolerated by neurons and astrocytes, respectively, allowing selectivity index values of up to 23.7. These in vitro results, associated with the low haemolytic activity of BPPB, pave the way for future in vivo investigations and, upon confirmation, for the possible development of BPPB as a novel therapeutic strategy to treat MDR HR-NB.
Insights
Triphenyl phosphonium (TPP)-based bola amphiphilic nanovesicles (BPPBs) show promise in treating high-risk neuroblastoma (HR-NB). BPPBs effectively kill drug-sensitive and multi-drug-resistant (MDR) neuroblastoma cells by triggering apoptosis, with minimal toxicity to neurons and astrocytes.
Area of Science:
- Nanomedicine
- Pediatric Oncology
- Cancer Biology
Background:
- Neuroblastoma (NB) is a common childhood cancer with poor survival rates for high-risk (HR-NB) forms due to drug resistance.
- Existing treatments for HR-NB often lead to secondary cancers and limited efficacy against multi-drug-resistant (MDR) neuroblastoma.
- Novel therapeutic strategies are urgently needed to improve outcomes for children with HR-NB.
Purpose of the Study:
- To evaluate the in vitro efficacy and safety of triphenyl phosphonium (TPP)-based bola amphiphilic nanovesicles (BPPBs) against drug-sensitive and MDR neuroblastoma (NB) cell lines.
- To investigate the mechanism of BPPB's cytotoxic action, including the role of reactive oxygen species (ROS).
- To assess the potential clinical applicability of BPPBs by evaluating their toxicity in primary neuron and astrocyte cultures.
Main Methods:
- In vitro testing of BPPBs against drug-sensitive (HTLA 230) and MDR (HTLA ER) neuroblastoma cell lines to determine IC50 values.
- Apoptosis assays to confirm BPPB-induced cell death.
- Reactive oxygen species (ROS) monitoring and advanced analytical modeling to elucidate the cytotoxic mechanism.
- Assessment of BPPB toxicity on primary neuron and astrocyte cultures to calculate selectivity indices.
Main Results:
- BPPBs exhibited potent sub-micromolar IC50 values against drug-sensitive NB cells (0.4-0.9 µM) and low micromolar IC50 values against MDR NB cells (1.20-1.35 µM).
- BPPBs were confirmed to induce apoptosis in both sensitive and resistant NB cell populations.
- A ROS-dependent cytotoxic mechanism was identified for BPPB treatments.
- BPPBs demonstrated significant selectivity, with high selectivity index values (up to 23.7) in primary neuron and astrocyte cultures, alongside low haemolytic activity.
Conclusions:
- BPPBs represent a promising novel therapeutic agent for high-risk neuroblastoma, particularly against multi-drug-resistant forms.
- The observed ROS-dependent apoptosis induction and favorable safety profile in neural cells support further investigation of BPPBs.
- These findings lay the groundwork for potential clinical development of BPPBs as a new treatment option for pediatric neuroblastoma.

