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Evisceration of Mouse Vitreous and Retina for Proteomic Analyses
Published on: April 3, 2011
Aldehyde oxidase 1 activity and protein expression in human, rabbit, and pig ocular tissues
Anam Hammid1, John K Fallon2, Kati-Sisko Vellonen1
1School of Pharmacy, University of Eastern Finland, Yliopistonranta 1 C, FI-70210 Kuopio, Finland.
Abstract:
Aldehyde oxidase (AOX) is a cytosolic drug-metabolizing enzyme which has attracted increasing attention in drug development due to its high hepatic expression, broad substrate profile and species differences. In contrast, there is limited information on the presence and activity of AOX in extrahepatic tissues including ocular tissues. Because several ocular drugs are potential substrates for AOX, we performed a comprehensive analysis of the AOX1 expression and activity profile in seven ocular tissues from humans, rabbits, and pigs. AOX activities were determined using optimized assays for the established human AOX1 probe substrates 4-dimethylamino-cinnamaldehyde (DMAC) and phthalazine. Inhibition studies were undertaken in conjunctival and retinal homogenates using well-established human AOX1 inhibitors menadione and chlorpromazine. AOX1 protein contents were quantitated with targeted proteomics and confirmed by immunoblotting. Overall, DMAC oxidation rates varied over 10-fold between species (human ˃˃ rabbit ˃ pig) and showed 2- to 6-fold differences between tissues from the same species. Menadione seemed a more potent inhibitor of DMAC oxidation across species than chlorpromazine. Human AOX1 protein levels were highest in the conjunctiva, followed by most posterior tissues, whereas anterior tissues showed low levels. The rabbit AOX1 expression was high in the conjunctiva, retinal pigment epithelial (RPE), and choroid while lower in the anterior tissues. Quantification of pig AOX1 was not successful but immunoblotting confirmed the presence of AOX1 in all species. DMAC oxidation rates and AOX1 contents correlated quite well in humans and rabbits. This study provides, for the first time, insights into the ocular expression and activity of AOX1 among multiple species.
Insights
This study reveals significant variations in aldehyde oxidase 1 (AOX1) activity and expression across ocular tissues in humans, rabbits, and pigs. These findings are crucial for understanding ocular drug metabolism and development.
Area of Science:
- Pharmacology
- Drug Metabolism
- Ocular Biology
Background:
- Aldehyde oxidase (AOX) is a key drug-metabolizing enzyme with high liver expression and known species differences.
- Limited data exists on AOX presence and activity in ocular tissues, despite ocular drugs being potential AOX substrates.
Purpose of the Study:
- To comprehensively analyze aldehyde oxidase 1 (AOX1) expression and activity in seven human, rabbit, and pig ocular tissues.
- To investigate species-specific differences in ocular AOX1 profiles relevant to drug development.
Main Methods:
- AOX activity assays using 4-dimethylamino-cinnamaldehyde (DMAC) and phthalazine as substrates.
- Inhibition studies with menadione and chlorpromazine in ocular homogenates.
- Quantitative targeted proteomics and immunoblotting for AOX1 protein levels.
Main Results:
- DMAC oxidation rates showed >10-fold species variation (human > rabbit > pig) and 2-6 fold tissue variation within species.
- Menadione was a more potent inhibitor of DMAC oxidation than chlorpromazine across species.
- Human and rabbit AOX1 protein levels correlated with DMAC oxidation rates, with highest levels in conjunctiva and posterior tissues.
Conclusions:
- This is the first study to provide detailed insights into ocular AOX1 expression and activity across multiple species.
- Significant interspecies and inter-tissue variations in ocular AOX1 exist, impacting drug metabolism.
- Findings are critical for optimizing ocular drug design and predicting drug behavior in the eye.
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