Recent trends of NFκB decoy oligodeoxynucleotide-based nanotherapeutics in lung diseases

Meenu Mehta1, Keshav Raj Paudel2, Shakti Dhar Shukla3

  • 1Discipline of Pharmacy, Graduate School of Health, University of Technology Sydney, NSW 2007, Australia; Centre for Inflammation, Centenary Institute, Sydney, NSW 2050, Australia; Faculty of Health, Australian Research Centre in Complementary and Integrative Medicine, University of Technology Sydney, Ultimo, Australia.

Insights

Nuclear factor κB (NFκB) decoy oligodeoxynucleotides show promise for treating lung inflammation. Novel delivery systems are needed to overcome challenges like poor stability and cellular uptake for effective respiratory disease treatment.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Pharmacology

Background:

  • Nuclear factor κB (NFκB) is a key regulator of lung inflammation and respiratory dysfunction.
  • The NFκB signaling pathway is implicated in the pathogenesis of chronic respiratory diseases.
  • NFκB decoy oligodeoxynucleotides (ODNs) inhibit NFκB-mediated inflammatory cytokine production.

Purpose of the Study:

  • To review the role of NFκB activation in respiratory diseases.
  • To examine advancements in the therapeutic use of decoy ODNs.
  • To highlight limitations and explore novel delivery systems for decoy ODNs.

Main Methods:

  • Literature review of NFκB signaling in respiratory diseases.
  • Analysis of decoy ODN efficacy and limitations.
  • Exploration of nanotechnology and structural modification for enhanced delivery.

Main Results:

  • Decoy ODNs can prevent NFκB-mediated inflammation but face challenges with systemic administration.
  • Poor pharmacokinetic profiles, instability, and low cellular uptake limit naked decoy ODN effectiveness.
  • Structural modification and nanotechnology offer potential solutions for improved delivery.

Conclusions:

  • NFκB plays a critical role in respiratory diseases, making its pathway a therapeutic target.
  • Effective delivery systems are crucial to enhance the therapeutic potential of decoy ODNs.
  • Future research should focus on advanced delivery systems for targeted NFκB inhibition in respiratory conditions.

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