Lipid-Nucleic Acid Complexes: Physicochemical Aspects and Prospects for Cancer Treatment

Ricardo Gaspar1, Filipe Coelho1, Bruno F B Silva1

  • 1INL-International Iberian Nanotechnology Laboratory, Av. Mestre José Veiga, 4715-310 Braga, Portugal.

Insights

Gene therapy using nucleic acids (NAs) shows promise for cancer treatment by targeting faulty genes. Lipid-NA complexes offer a versatile and scalable platform for developing personalized cancer therapies, despite ongoing delivery challenges.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Cancer Therapeutics

Background:

  • Cancer is a complex disease driven by genetic mutations.
  • Gene therapy offers a novel approach to cancer treatment by modifying gene expression or stimulating immunity.
  • Nucleic acid (NA)-based therapies present a versatile and scalable alternative to traditional treatments.

Purpose of the Study:

  • To review the biophysical and physicochemical aspects of non-viral lipid-based gene therapy formulations.
  • To explore the potential of these formulations for future cancer treatments.
  • To highlight the challenges and recent advances in lipid-NA complex development for cancer therapy.

Main Methods:

  • Formation of nanosized lipid-NA complexes from cationic lipids and anionic NAs.
  • Characterization of nanostructure formation based on formulation composition.
  • In vitro optimization of lipid-NA complexes for cellular interaction and therapeutic potential.

Main Results:

  • Lipid-NA complexes exhibit diverse nanostructures with varying cellular interaction mechanisms.
  • Complexes can be customized for targeting and controlled release, showing promising in vitro efficacy.
  • Recent approval of a lipid-based gene therapy highlights progress in the field.

Conclusions:

  • Lipid-NA complexes represent a highly versatile and scalable platform for NA-based cancer gene therapy.
  • Despite in vivo delivery challenges, advances in formulation and a recent regulatory approval offer hope for future cancer treatments.
  • Further research into optimizing in vivo efficiency is crucial for realizing the full potential of these therapies.

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