Mechanistic insights into the antitumoral potential and in vivo antiproliferative efficacy of a silver-based core@shell nanosystem

Int J Pharm. 2024 Apr 25:655:124023. doi: 10.1016/j.ijpharm.2024.124023. Epub 2024 Mar 19.

Abstract

This study delves into the biomolecular mechanisms underlying the antitumoral efficacy of a hybrid nanosystem, comprised of a silver core@shell (Ag@MSNs) functionalized with transferrin (Tf). Employing a SILAC proteomics strategy, we identified over 150 de-regulated proteins following exposure to the nanosystem. These proteins play pivotal roles in diverse cellular processes, including mitochondrial fission, calcium homeostasis, endoplasmic reticulum (ER) stress, oxidative stress response, migration, invasion, protein synthesis, RNA maturation, chemoresistance, and cellular proliferation. Rigorous validation of key findings substantiates that the nanosystem elicits its antitumoral effects by activating mitochondrial fission, leading to disruptions in calcium homeostasis, as corroborated by RT-qPCR and flow cytometry analyses. Additionally, induction of ER stress was validated through western blotting of ER stress markers. The cytotoxic action of the nanosystem was further affirmed through the generation of cytosolic and mitochondrial reactive oxygen species (ROS). Finally, in vivo experiments using a chicken embryo model not only confirmed the antitumoral capacity of the nanosystem, but also demonstrated its efficacy in reducing cellular proliferation. These comprehensive findings endorse the potential of the designed Ag@MSNs-Tf nanosystem as a groundbreaking chemotherapeutic agent, shedding light on its multifaceted mechanisms and in vivo applicability.

Keywords: Cancer treatment; Cellular migration; ER stress; Mesoporous silica nanoparticles; Mitochondrial fission; Oxidative stress; Quantitative proteomics; SILAC; Silver.

MeSH terms

  • Animals
  • Antineoplastic Agents* / pharmacology
  • Apoptosis
  • Calcium / metabolism
  • Chick Embryo
  • Endoplasmic Reticulum Stress
  • Reactive Oxygen Species / metabolism
  • Silver* / metabolism
  • Silver* / pharmacology
  • Transferrin

Substances

  • Silver
  • Calcium
  • Antineoplastic Agents
  • Reactive Oxygen Species
  • Transferrin