Site-dependent biological activity of valinomycin analogs bearing derivatizable hydroxyl sites

Cosimo Annese1, Daniela I Abbrescia, Lucia Catucci

  • 1Dipartimento di Chimica, Università degli Studi di Bari A. Moro, via Orabona 4, 70126, Bari, Italy; CNR-Istituto dei Composti Organometallici (ICCOM), Bari section, via Orabona 4, 70126, Bari, Italy.

Insights

Valinomycin derivatives with hydroxyl groups (HyVLMs) show reduced potency but retain binding features, impacting potassium transport. This research aids in designing targeted anticancer drugs by understanding structure-activity relationships.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Pharmacology

Background:

  • Valinomycin (VLM) is a cyclodepsipeptide ionophore that induces apoptosis in cancer cells by depolarizing mitochondria.
  • Targeted drug delivery aims to enhance VLM's anticancer efficacy and reduce side effects.
  • Introducing hydroxyl groups (HyVLMs) creates conjugable VLM analogs for potential ligand targeting.

Purpose of the Study:

  • To assess the bioactivity and K(+) ion binding of novel hydroxylated valinomycin (HyVLMs) analogs.
  • To understand the structure-activity relationship of HyVLMs for developing targeted anticancer therapies.

Main Methods:

  • Assessed mitochondrial depolarization and apoptosis induction by HyVLMs.
  • Measured stability constants of HyVLMs with Na(+), K(+), and Cs(+) ions in methanol.
  • Analyzed the effect of hydroxyl group position on VLM's bioactivity and ion-binding properties.

Main Results:

  • HyVLMs exhibited reduced potency compared to VLM, with potency loss dependent on the hydroxyl group's site of attachment.
  • HyVLMs retained significant K(+) binding affinity, with a moderate increase in Na(+) complex stability.
  • The hydroxyl modification appears to alter VLM's K(+) transport across mitochondrial membranes.

Conclusions:

  • Hydroxylation of valinomycin affects its ionophore activity and potency.
  • HyVLMs maintain key binding characteristics, suggesting potential for targeted drug development.
  • These findings provide a basis for rational design of ligand-HyVLMs conjugates for cancer therapy.

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