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Determination of Mitochondrial Membrane Potential and Reactive Oxygen Species in Live Rat Cortical Neurons
Published on: May 23, 2011
Differential expression and activities of cytochrome P450 3A in the rat brain microsomes and mitochondria
Nouf Alshammari1, Devaraj Venkatapura Chandrashekar1, Mamunur Rashid1
1Department of Biomedical and Pharmaceutical Sciences, School of Pharmacy, Chapman University, Irvine, California, USA.
Abstract:
Midazolam (MDZ), a benzodiazepine derivative, is metabolized to 1'- and 4-hydroxylated metabolites (1'-OH-MDZ and 4-OH-MDZ, respectively) by cytochrome P450 3A (CYP3A). The purpose of this study was to investigate the CYP3A-mediated hydroxylation of MDZ in the rat brain mitochondria (MT). Brain microsomes (MC) and MT fractions were prepared from rats (n = 8) using differential and density gradient centrifugations, and the purity of the fractions was evaluated using VDAC1 and calreticulin as markers of MT and MC, respectively. The formation rates of 1'-OH-MDZ and 4-OH-MDZ in the rat brain MC and MT samples were determined using an LC-MS/MS method after validation. Subsequently, Michaelis-Menten kinetics of 1'- and 4-hydroxylation of MDZ were estimated. Western blot (WB) analysis was used to determine the protein expression of CYP3A in the rat brain MC and MT. The MC fractions had 5.93% ± 3.01% mitochondrial impurity, and the MT fractions had 19.3% ± 7.8% microsomal impurity (mean ± SD). The maximum velocity (Vmax ) values of the formation of the hydroxylated metabolites in the brain MT were 2.4-9-fold higher than those in MC. Further, the Vmax values of 4-OH-MDZ in both MC and MT fractions were substantially higher than those of 1'-OH-MDZ. The WB analysis showed that the intensity of the CYP3A immunoreactive band in MT was more than twofold higher than that in MC. It is concluded that compared with MC, rat brain MT contains substantial CYP3A, which may affect the pharmacology or toxicology of centrally acting xenobiotic and endogenous substrates of this enzyme.
Insights
Rat brain mitochondria (MT) exhibit significant cytochrome P450 3A (CYP3A) activity, metabolizing midazolam (MDZ) more rapidly than microsomes. This suggests MT plays a crucial role in the brain
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Midazolam (MDZ), a benzodiazepine, is metabolized by cytochrome P450 3A (CYP3A) into 1'- and 4-hydroxylated metabolites.
- Understanding the localization and activity of CYP3A in the brain is crucial for comprehending drug metabolism and potential neurotoxicity.
Purpose of the Study:
- To investigate the hydroxylation of midazolam (MDZ) mediated by cytochrome P450 3A (CYP3A) within rat brain mitochondria (MT).
- To compare the metabolic activity of CYP3A in rat brain mitochondria (MT) versus brain microsomes (MC).
Main Methods:
- Preparation of rat brain microsomes (MC) and mitochondria (MT) using differential and density gradient centrifugations.
- Quantification of midazolam (MDZ) hydroxylation rates using a validated LC-MS/MS method.
- Estimation of Michaelis-Menten kinetics and determination of CYP3A protein expression via Western blot analysis.
Main Results:
- Rat brain mitochondria (MT) exhibited 2.4- to 9-fold higher maximum velocity (Vmax) for MDZ hydroxylation compared to microsomes (MC).
- The formation of 4-hydroxy-midazolam (4-OH-MDZ) was significantly higher than 1'-hydroxy-midazolam (1'-OH-MDZ) in both fractions.
- Western blot analysis revealed more than twofold higher CYP3A protein expression in MT compared to MC.
Conclusions:
- Rat brain mitochondria (MT) possess substantial CYP3A content and activity, exceeding that of brain microsomes (MC).
- The presence of active CYP3A in MT may significantly influence the central pharmacology and toxicology of xenobiotic and endogenous compounds metabolized by this enzyme.

