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.

PubMed

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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