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Human plasma-mediated hypoxic activation of indolequinone-based naloxone pro-drugs
Baohua Huang1, Shengzhuang Tang, Ankur Desai
1Michigan Nanotechnology Institute for Medicine and Biological Sciences, University of Michigan, Ann Arbor, MI 48109, USA.
Abstract:
Hypoxia is known to occur in tissues in response to narcotic analgesic therapy using as a result of respiratory depression. The aim of this study was to synthesize a narcotic antagonist pro-drug that can be activated by tissue hypoxia to prevent the damage associated with respiratory depression. We synthesized three different pro-drugs of the narcotic antagonist naloxone utilizing indolequinone as the hypoxia-sensitive moiety. The indolequinone structure in the pro-drugs was designed to have an open reactive point at the N-1 position offering the possibility of further conjugation with macromolecules to modify the bio-availability of these pro-drugs in vivo. A pro-drug (labeled 1) where naloxone and the indolequinone moiety were linked through a carbonate bond was rapidly hydrolyzed in phosphate buffered saline. However, two additional pro-drugs (labeled 2 and 3) having carbamate linkers were stable in phosphate buffered saline for 24h. The reductive release of naloxone from the pro-drugs was achieved in the presence of the bio-reductive enzyme DT-Diaphorase, with about 80% release occurring from the two pro-drugs in 24h. More than 99% of naloxone was released from pro-drug 2 in 30% human plasma, however the release only occurred under hypoxic conditions. This system provides a potential means for feedback control to counter critical respiratory depression induced by narcotic analgesics.
Insights
Researchers developed novel pro-drugs of naloxone, activated by tissue hypoxia. This hypoxia-activated narcotic antagonist offers a potential feedback mechanism to counteract respiratory depression from analgesic drugs.
Area of Science:
- Pharmacology
- Medicinal Chemistry
- Biochemistry
Background:
- Narcotic analgesics can cause respiratory depression, leading to tissue hypoxia.
- Existing treatments lack targeted delivery or feedback mechanisms for managing this side effect.
Purpose of the Study:
- To synthesize hypoxia-sensitive pro-drugs of the narcotic antagonist naloxone.
- To create a system for targeted naloxone release in response to hypoxic conditions.
Main Methods:
- Synthesis of three naloxone pro-drugs utilizing an indolequinone hypoxia-sensitive moiety.
- In vitro stability studies in phosphate buffered saline and human plasma.
- Assessment of naloxone release kinetics under normoxic and hypoxic conditions, including enzymatic assays with DT-Diaphorase.
Main Results:
- Two pro-drugs with carbamate linkers demonstrated stability in vitro.
- Reductive release of naloxone was achieved using DT-Diaphorase.
- Pro-drug 2 showed hypoxia-dependent release in human plasma, with over 99% naloxone release under hypoxic conditions.
Conclusions:
- Developed hypoxia-activated naloxone pro-drugs offer targeted delivery.
- This system presents a potential feedback control for managing narcotic-induced respiratory depression.
- Further research may explore in vivo efficacy and pharmacokinetic profiles.
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