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Measurement of Heme Synthesis Levels in Mammalian Cells
Published on: July 9, 2015
Homocysteine downregulates gene expression of heme oxygenase-1 in hepatocytes
Xiaoqin Luo1, Lei Xiao2, Haixia Yang1
1Cardiovascular Research Center, School of Medicine, Xi'an Jiaotong University, Xi'an, 710061 China ; Department of Public Health, School of Medicine, Xi'an Jiaotong University, Xi'an, 710061 China ; Nutrition and Food Safety Engineering Research Center of Shaanxi Province, School of Medicine, Xi'an Jiaotong University, Xi'an, 710061 China.
Insights
High homocysteine (Hcy) levels impair liver antioxidant defenses by reducing heme oxygenase-1 (HO-1) expression. This occurs through Bach1, a repressor that interferes with Nrf2, highlighting a mechanism in liver disease.
Area of Science:
- Biochemistry
- Hepatology
- Oxidative Stress
Background:
- Hyperhomocysteinemia (HHcy) is a known risk factor for liver diseases like fatty liver and fibrosis.
- The precise mechanisms by which homocysteine (Hcy) promotes oxidative stress in hepatocytes are not fully understood.
- Investigating Hcy's impact on heme oxygenase-1 (HO-1), a key antioxidant enzyme, is crucial for understanding cellular redox homeostasis.
Purpose of the Study:
- To elucidate the effect of Hcy on the gene expression of HO-1 in hepatocytes.
- To determine the role of Hcy in oxidative stress and antioxidant enzyme regulation within the liver.
- To identify the specific molecular pathways involved in Hcy-induced liver damage.
Main Methods:
- In vivo: Mice were fed a standard chow diet or a methionine-supplemented diet for 4 weeks.
- In vitro: HepG2 cells were treated with varying concentrations of Hcy.
- Analysis included plasma Hcy levels, liver HO-1 expression, SOD activity, MDA levels, and nuclear localization of transcription factors.
Main Results:
- Methionine supplementation significantly increased plasma Hcy and decreased hepatic HO-1 expression, SOD activity, and increased MDA levels.
- Hcy treatment dose-dependently reduced HO-1 mRNA and protein levels in cultured hepatocytes.
- Hcy increased Bach1 expression and nuclear localization while decreasing Nrf2 nuclear localization, and Bach1 knockdown reversed Hcy's suppression of HO-1.
Conclusions:
- Bach1 is a key mediator in Hcy-induced oxidative stress by inhibiting HO-1 expression.
- The disturbed interplay between Bach1 and Nrf2 contributes to Hcy-triggered reactive oxygen species (ROS) generation.
- Targeting the Bach1-Nrf2-HO-1 axis may offer therapeutic strategies for Hcy-related liver conditions.
Background:
Hyperhomocysteinemia (HHcy) is an independent risk factor for liver diseases, such as fatty liver and hepatic fibrosis. However, the mechanisms underlying this pro-oxidative effect of homocysteine (Hcy) in hepatocytes remain largely unknown. Thus, we investigated the effect of Hcy on the gene expression of heme oxygenase-1 (HO-1), the primary rate-limiting enzyme in heme catabolism and a key anti-oxidant detoxification enzyme in maintaining cellular redox homeostasis.
Methods:
In vivo, twenty male C57BL/6 mice at 8 weeks of age were randomly divided into two groups. One group was fed a chow diet (chow group; n = 10), the other group of mice was fed a methionine-supplemented diet (Met group, 1 mg kg(-1) day(-1) L-methionine in drinking water; n = 10) for 4 weeks. In vitro, HepG2 cells were stimulated with different doses of homocysteine (Hcy).
Results:
Four weeks' methionine supplementation caused a significant increase of plasma Hcy concentration and a decrease of HO-1 expression in the liver of C57BL/6 mice than mice received chow diet. Besides, SOD enzyme activities were impaired and the level of oxidative stress markers, such as malondialdehyde (MDA) were elevated in the liver from mice supplemented with methionine compared with control mice. In cultured hepatocytes, Hcy treatment reduced both the mRNA and protein levels of HO-1 dose-dependently. However, Hcy had no effect on the gene expression of Nrf2, the major transcriptional regulator of HO-1. Instead, Hcy induced the expression of Bach1, a transcriptional repressor of HO-1. In addition, Hcy stimulated the nuclear localization of Bach1 but prevented that of Nrf2. Furthermore, we found that knockdown of Bach1 attenuated the suppression of the HO-1 expression by Hcy.
Conclusions:
Collectively, our results demonstrated that Bach1 plays an important role in Hcy-triggered ROS generations through inhibiting HO-1 expression, likely, resulting from the disturbed interplay between Bach1 and Nrf2.
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