Battle of the milky way: Lymphatic targeted drug delivery for pathogen eradication

Ali Taheri1, Kristen E Bremmell1, Paul Joyce1

  • 1Clinical and Health Sciences, University of South Australia, Adelaide, SA 5000, Australia.

Insights

Targeting lymphatic system infections requires novel drug delivery. Strategies for antiviral, antibacterial, and antiparasitic drugs improve lymphatic drug exposure, enhancing treatment of diseases like tuberculosis and filariasis.

Area of Science:

  • Infectious Diseases
  • Pharmacology
  • Drug Delivery Systems

Background:

  • Pathogens utilize the lymphatic system for survival, replication, and dissemination.
  • Conventional anti-infectives often fail to reach lymphatic reservoirs, leading to treatment failure.
  • Lymphatic system involvement in infections like AIDS, tuberculosis, and filariasis is a critical challenge.

Purpose of the Study:

  • To review strategies for targeting anti-infective drugs to the lymphatic system.
  • To improve drug delivery for enhanced eradication of pathogens within lymphatics.
  • To optimize treatment outcomes for infections involving the lymphatic system.

Main Methods:

  • Discussion of optimized lipophilic prodrugs for lymphatic transport.
  • Review of drug delivery systems promoting intestinal and dermal lymphatic uptake.
  • Analysis of physicochemical properties (logP, solubility) for intestinal lymphatic delivery.
  • Evaluation of nanoparticle characteristics (size) for dermal lymphatic delivery.

Main Results:

  • Specific molecular properties (logP >5, solubility >50 mg/g) favor intestinal lymphatic transport via chylomicrons.
  • Nanoparticle formulations (10-100 nm) are preferred for dermal lymphatic delivery.
  • These strategies aim to eliminate pathogen reservoirs within the lymphatic system.

Conclusions:

  • Effective lymphatic delivery strategies are crucial for combating infections.
  • Optimized drug delivery can improve pharmacokinetics and target pathogen reservoirs.
  • Addressing lymphatic drug delivery is essential for overcoming treatment failures in neglected infectious diseases.

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