Sustained A1 Adenosine Receptor Antagonist Drug Release from Nanoparticles Functionalized by a Neural Tracing Protein

Md Musfizur Hassan1, Malsha Hettiarachchi2, Mohamed Kilani1

  • 1School of Chemical Engineering, University of New South Wales (UNSW Sydney), Sydney, New South Wales 2052, Australia.

ACS Chemical Neuroscience
|October 21, 2021
PubMed

Insights

This study introduces a novel drug delivery system using neural tracing proteins to bypass the blood-brain barrier, effectively treating respiratory dysfunction in spinal cord injury (SCI) models with minimal drug dosage.

Area of Science:

  • Neuroscience
  • Biotechnology
  • Pharmacology

Background:

  • Respiratory dysfunction is a primary cause of mortality in spinal cord injury (SCI) patients.
  • Conventional drug delivery methods for SCI face challenges with blood-brain barrier (BBB) penetration and severe side effects.

Purpose of the Study:

  • To develop and characterize a novel nanoconjugate for targeted drug delivery to respiratory motoneurons, bypassing the BBB.
  • To evaluate the efficacy of this nanoconjugate in a preclinical model of SCI-induced respiratory dysfunction.

Main Methods:

  • Utilized neural tracing proteins (WGA-HRP) conjugated to an adenosine A1 receptor antagonist.
  • Administered a single intradiaphragmatic injection of the nanoconjugate in a hemisection animal model.
  • Characterized nanoconjugate purity, stability, drug release kinetics, and particle size via electron microscopy and modeling.

Main Results:

  • The nanoconjugate demonstrated minimal batch-to-batch variation (<10%) in particle size and drug dosage.
  • Sustained drug release over several days at physiologic pH was confirmed, facilitating long-distance transport.
  • A single low-dose injection induced prolonged respiratory recovery without accumulation at the injection site.

Conclusions:

  • Neural tracing protein-coupled nanotherapeutics offer a promising strategy to overcome BBB limitations for SCI treatment.
  • This approach enables targeted delivery of therapeutic agents to respiratory motoneurons, improving respiratory function.
  • Further development of this nanotherapeutic platform holds potential for treating respiratory complications in SCI.