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The Remarkable and Selective In Vitro Cytotoxicity of Synthesized Bola-Amphiphilic Nanovesicles on
Silvana Alfei1, Paolo Giannoni2, Maria Grazia Signorello3
1Department of Pharmacy, University of Genoa, Viale Cembrano, 16148 Genoa, Italy.
Abstract:
Neuroblastoma (NB) is a solid tumor occurring in infancy and childhood. Its high-risk form has currently a survival rate <50%, despite aggressive treatments. This worrying scenario is worsened by drug-induced secondary tumorigenesis and the emergency of drug resistance, calling for the urgent development of new extra-genomic treatments. Triphenyl phosphonium salts (TPPs) are mitochondria-targeting compounds that exert anticancer effects, impair mitochondria functions, and damage DNA at the same time. Despite several biochemical applications, TPP-based bola-amphiphiles self-assembling nanoparticles (NPs) in water have never been tested as antitumor agents. Here, with the aim of developing new antitumor devices to also counteract resistant forms of HR-NB, the anticancer effects of a TPP-based bola-amphiphile molecule have been investigated in vitro for the first time. To this end, we considered the previously synthesized and characterized sterically hindered quaternary phosphonium salt (BPPB). It embodies both the characteristics of mitochondria-targeting compounds and those of bola-amphiphiles. The anticancer effects of BPPB were assessed against HTLA-230 human stage-IV NB cells and their counterpart, which is resistant to etoposide (ETO), doxorubicin (DOX), and many other therapeutics (HTLA-ER). Very low IC50 values of 0.2 µM on HTLA-230 and 1.1 µM on HTLA-ER (538-fold lower than that of ETO) were already determined after 24 h of treatment. The very low cell viability observed after 24 h did not significantly differ from that observed for the longest exposure timing. The putative future inclusion of BPPB in a chemotherapeutic cocktail for HR-NB was assessed by investigating in vitro its cytotoxic effects against mammalian cell lines. These included monkey kidney cells (Cos-7, IC50 = 4.9 µM), human hepatic cells (HepG2, IC50 = 9.6 µM), a lung-derived fibroblast cell line (MRC-5, IC50 = 2.8 µM), and red blood cells (RBCs, IC50 = 14.9 µM). Appreciable to very high selectivity indexes (SIs) have been determined after 24 h treatments (SIs = 2.5-74.6), which provided evidence that both NB cell populations were already fully exterminated. These in vitro results pave the way for future investigations of BPPB on animal models and upon confirmation for the possible development of BPPB as a novel therapeutic to treat MDR HR-NB cells.
Insights
A novel triphenyl phosphonium salt (TPP) bola-amphiphile, BPPB, shows potent in vitro anticancer effects against high-risk neuroblastoma (NB) and its drug-resistant forms. BPPB demonstrates high selectivity, indicating its potential as a new therapeutic for multidrug-resistant NB.
Area of Science:
- Oncology
- Nanotechnology
- Biochemistry
Background:
- High-risk neuroblastoma (NB) has a poor survival rate (<50%) despite aggressive treatments.
- Drug resistance and secondary tumorigenesis necessitate novel therapeutic strategies.
- Mitochondria-targeting triphenyl phosphonium salts (TPPs) show anticancer potential but TPP-based nanoparticles have not been explored for antitumor applications.
Purpose of the Study:
- To investigate the in vitro anticancer effects of a novel TPP-based bola-amphiphile, BPPB, against human stage-IV NB cells and their drug-resistant counterparts.
- To evaluate the potential of BPPB as a therapeutic agent for multidrug-resistant (MDR) high-risk NB.
- To assess the in vitro cytotoxicity and selectivity of BPPB against normal mammalian cell lines.
Main Methods:
- Synthesis and characterization of the TPP-based bola-amphiphile BPPB.
- In vitro assessment of BPPB's anticancer activity against HTLA-230 NB cells and etoposide/doxorubicin-resistant NB cells (HTLA-ER).
- Evaluation of BPPB's cytotoxicity against normal cell lines (Cos-7, HepG2, MRC-5) and red blood cells (RBCs) to determine selectivity indexes (SIs).
Main Results:
- BPPB exhibited very low IC50 values against HTLA-230 (0.2 µM) and HTLA-ER (1.1 µM) NB cells after 24 hours, significantly outperforming etoposide.
- Cell viability remained low even with extended exposure times, indicating rapid and potent cytotoxic effects.
- BPPB demonstrated appreciable to very high selectivity indexes (2.5–74.6) against normal cell lines, suggesting a favorable safety profile.
Conclusions:
- BPPB is a promising novel therapeutic candidate for treating multidrug-resistant high-risk neuroblastoma.
- The compound's potent in vitro efficacy and selectivity warrant further investigation in preclinical animal models.
- BPPB represents a potential new class of extra-genomic treatments for challenging pediatric cancers.
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