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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.
Abstract:
Respiratory dysfunction is a major cause of death in people with spinal cord injury (SCI). A remaining unsolved problem in treating SCI is the intolerable side effects of the drugs to patients. In a significant departure from conventional targeted nanotherapeutics to overcome the blood-brain barrier (BBB), this work pursues a drug-delivery approach that uses neural tracing retrograde transport proteins to bypass the BBB and deliver an adenosine A1 receptor antagonist drug, 1,3-dipropyl-8-cyclopentyl xanthine, exclusively to the respiratory motoneurons in the spinal cord and the brainstem. A single intradiaphragmatic injection at one thousandth of the native drug dosage induces prolonged respiratory recovery in a hemisection animal model. To translate the discovery into new treatments for respiratory dysfunction, we carry out this study to characterize the purity and quality of synthesis, stability, and drug-release properties of the neural tracing protein (wheat germ agglutinin chemically conjugated to horseradish peroxidase)-coupled nanoconjugate. We show that the batch-to-batch particle size and drug dosage variations are less than 10%. We evaluate the nanoconjugate size against the spatial constraints imposed by transsynaptic transport from pre to postsynaptic neurons. We determine that the nanoconjugate formulation is capable of sustained drug release lasting for days at physiologic pH, a prerequisite for long-distance transport of the drug from the diaphragm muscle to the brainstem. We model the drug-release profiles using a first-order reaction model and the Noyes-Whitney diffusion model. We confirm via biological electron microscopy that the nanoconjugate particles do not accumulate in the tissues at the injection site. We define the nanoconjugate storage conditions after monitoring the solution dispersion stability under various conditions for 4 months. This study supports further development of neural tracing protein-enabled nanotherapeutics for treating respiratory problems associated with SCI.
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.
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