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Measurement of Heme Synthesis Levels in Mammalian Cells
Published on: July 9, 2015
Nrf2 Activation Ameliorates Hepatotoxicity Induced by a Heme Synthesis Inhibitor
Keiko Taguchi1, Saho Masui1, Tohru Itoh2
1Department of Medical Biochemistry, Tohoku University Graduate School of Medicine, Aoba, Sendai 980-8575, Japan.
Abstract:
Transcription factor Nrf2 protects hepatocytes against various toxicants by upregulating cytoprotective genes. The heme synthesis inhibitor 3, 5-diethoxycarbonyl-1, 4-dihydrocollidine (DDC) leads to liver injury around the portal vein, unlike other groups of toxicants that cause hemorrhage and necrosis in the centrilobular area. To examine whether and how Nrf2 protects livers from the injury, we fed DDC to Nrf2 knockout (Nrf2KO), wild-type (WT), Keap1flox/flox (Keap1-knockdown; Keap1KD), and liver-specific Keap1 knockout (Keap1-Alb) mice, as these lines of mice exhibit stepwise increases in Nrf2 protein expression levels. Liver-specific Keap1::Nrf2 double-knockout (Keap1::Nrf2-Alb) mice were also exploited to examine the contribution of Nrf2. Two weeks after DDC feeding, Keap1-Alb mice were fully recovered from body weight loss, but the WT and Nrf2KO mice were not. The liver-to-body-weight ratio of Keap1-Alb mice was significantly larger than that of WT and Nrf2KO mice. Two indicators of hepatotoxicity, alanine aminotransferase and bilirubin in plasma, were both elevated in WT mice, but downregulated in Keap1-Alb mice after the DDC-feeding. DDC-induced porphyrin accumulation was reduced in the livers of Keap1-Alb and Keap1KD mice compared with that of WT mice. When assessed by the Nqo1 level, Nrf2 expression was further enhanced by DDC in Keap1-Alb mice, suggesting that DDC may have a Keap1 independent potential to activate Nrf2. Genetic activation of Nrf2 in Keap1-Alb mice increased the extracellular excretion of porphyrins, but contrary to our expectation, hepatic damages in Nrf2KO mice appeared to be similar to that of WT mice. Based on these observations, we conclude that Nrf2 activation protects livers against DDC-elicited hepatotoxicity.
Insights
Nuclear factor erythroid 2-related factor 2 (Nrf2) activation protects the liver from 3,5-diethoxycarbonyl-1,4-dihydrocollidine (DDC)-induced toxicity. Enhanced Nrf2 expression in mice reduced liver injury and improved recovery after DDC exposure.
Area of Science:
- Hepatology
- Toxicology
- Molecular Biology
Background:
- Transcription factor Nrf2 upregulates cytoprotective genes, protecting hepatocytes from toxicants.
- 3,5-diethoxycarbonyl-1,4-dihydrocollidine (DDC) causes unique liver injury around the portal vein, distinct from other toxicants.
- Investigating Nrf2's role in DDC-induced hepatotoxicity is crucial for understanding liver protection mechanisms.
Purpose of the Study:
- To determine if and how Nrf2 protects the liver from DDC-induced injury.
- To evaluate the protective effects of varying Nrf2 expression levels against DDC toxicity.
- To elucidate the contribution of Nrf2 to liver recovery following DDC exposure.
Main Methods:
- Utilized Nrf2 knockout (Nrf2KO), wild-type (WT), Keap1-knockdown (Keap1KD), and liver-specific Keap1 knockout (Keap1-Alb) mice.
- Administered DDC to mice and assessed liver injury markers, body weight changes, and liver-to-body-weight ratios.
- Analyzed plasma alanine aminotransferase, bilirubin, hepatic porphyrin accumulation, and Nqo1 levels to evaluate hepatotoxicity and Nrf2 activation.
Main Results:
- Keap1-Alb mice, with enhanced Nrf2, showed full body weight recovery and reduced liver injury indicators compared to WT and Nrf2KO mice after DDC feeding.
- DDC-induced porphyrin accumulation was significantly lower in Keap1-Alb and Keap1KD mice.
- Nrf2 activation in Keap1-Alb mice enhanced extracellular porphyrin excretion, and DDC further upregulated Nrf2, suggesting Keap1-independent activation.
Conclusions:
- Nrf2 activation confers significant protection against DDC-elicited hepatotoxicity.
- Enhanced Nrf2 expression promotes liver recovery and reduces toxicant-induced liver damage.
- DDC may possess a Keap1-independent mechanism for activating Nrf2, contributing to its protective effects.
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