Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress

The intracellular level of bilirubin (BR), an endogenous antioxidant that is cytotoxic at high concentrations, is tightly controlled within the optimal therapeutic range. We have recently described a concerted intracellular BR regulation by two microsomal enzymes: heme oxygenase 1 (HMOX1), essential...

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Published in:Toxicology and Applied Pharmacology
Main Author: Muhsain S.N.F.; Lang M.A.; Abu-Bakar A.
Format: Article
Language:English
Published: Academic Press Inc. 2015
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84916887437&doi=10.1016%2fj.taap.2014.11.010&partnerID=40&md5=eb0327cd75cbd5c4287709b1864b63ea
id 2-s2.0-84916887437
spelling 2-s2.0-84916887437
Muhsain S.N.F.; Lang M.A.; Abu-Bakar A.
Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress
2015
Toxicology and Applied Pharmacology
282
1
10.1016/j.taap.2014.11.010
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84916887437&doi=10.1016%2fj.taap.2014.11.010&partnerID=40&md5=eb0327cd75cbd5c4287709b1864b63ea
The intracellular level of bilirubin (BR), an endogenous antioxidant that is cytotoxic at high concentrations, is tightly controlled within the optimal therapeutic range. We have recently described a concerted intracellular BR regulation by two microsomal enzymes: heme oxygenase 1 (HMOX1), essential for BR production and cytochrome P450 2A5 (CYP2A5), a BR oxidase. Herein, we describe targeting of these enzymes to hepatic mitochondria during oxidative stress. The kinetics of microsomal and mitochondrial BR oxidation were compared. Treatment of DBA/2J mice with 200. mg. pyrazole/kg/day for 3. days increased hepatic intracellular protein carbonyl content and induced nucleo-translocation of Nrf2. HMOX1 and CYP2A5 proteins and activities were elevated in microsomes and mitoplasts but not the UGT1A1, a catalyst of BR glucuronidation. A CYP2A5 antibody inhibited 75% of microsomal BR oxidation. The inhibition was absent in control mitoplasts but elevated to 50% after treatment. An adrenodoxin reductase antibody did not inhibit microsomal BR oxidation but inhibited 50% of mitochondrial BR oxidation. Ascorbic acid inhibited 5% and 22% of the reaction in control and treated microsomes, respectively. In control mitoplasts the inhibition was 100%, which was reduced to 50% after treatment. Bilirubin affinity to mitochondrial and microsomal CYP2A5 enzyme is equally high. Lastly, the treatment neither released cytochrome c into cytoplasm nor dissipated membrane potential, indicating the absence of mitochondrial membrane damage. Collectively, the observations suggest that BR regulatory enzymes are recruited to mitochondria during oxidative stress and BR oxidation by mitochondrial CYP2A5 is supported by mitochondrial mono-oxygenase system. The induced recruitment potentially confers membrane protection. © 2014.
Academic Press Inc.
0041008X
English
Article

author Muhsain S.N.F.; Lang M.A.; Abu-Bakar A.
spellingShingle Muhsain S.N.F.; Lang M.A.; Abu-Bakar A.
Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress
author_facet Muhsain S.N.F.; Lang M.A.; Abu-Bakar A.
author_sort Muhsain S.N.F.; Lang M.A.; Abu-Bakar A.
title Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress
title_short Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress
title_full Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress
title_fullStr Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress
title_full_unstemmed Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress
title_sort Mitochondrial targeting of bilirubin regulatory enzymes: An adaptive response to oxidative stress
publishDate 2015
container_title Toxicology and Applied Pharmacology
container_volume 282
container_issue 1
doi_str_mv 10.1016/j.taap.2014.11.010
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84916887437&doi=10.1016%2fj.taap.2014.11.010&partnerID=40&md5=eb0327cd75cbd5c4287709b1864b63ea
description The intracellular level of bilirubin (BR), an endogenous antioxidant that is cytotoxic at high concentrations, is tightly controlled within the optimal therapeutic range. We have recently described a concerted intracellular BR regulation by two microsomal enzymes: heme oxygenase 1 (HMOX1), essential for BR production and cytochrome P450 2A5 (CYP2A5), a BR oxidase. Herein, we describe targeting of these enzymes to hepatic mitochondria during oxidative stress. The kinetics of microsomal and mitochondrial BR oxidation were compared. Treatment of DBA/2J mice with 200. mg. pyrazole/kg/day for 3. days increased hepatic intracellular protein carbonyl content and induced nucleo-translocation of Nrf2. HMOX1 and CYP2A5 proteins and activities were elevated in microsomes and mitoplasts but not the UGT1A1, a catalyst of BR glucuronidation. A CYP2A5 antibody inhibited 75% of microsomal BR oxidation. The inhibition was absent in control mitoplasts but elevated to 50% after treatment. An adrenodoxin reductase antibody did not inhibit microsomal BR oxidation but inhibited 50% of mitochondrial BR oxidation. Ascorbic acid inhibited 5% and 22% of the reaction in control and treated microsomes, respectively. In control mitoplasts the inhibition was 100%, which was reduced to 50% after treatment. Bilirubin affinity to mitochondrial and microsomal CYP2A5 enzyme is equally high. Lastly, the treatment neither released cytochrome c into cytoplasm nor dissipated membrane potential, indicating the absence of mitochondrial membrane damage. Collectively, the observations suggest that BR regulatory enzymes are recruited to mitochondria during oxidative stress and BR oxidation by mitochondrial CYP2A5 is supported by mitochondrial mono-oxygenase system. The induced recruitment potentially confers membrane protection. © 2014.
publisher Academic Press Inc.
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language English
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