Abstract

A key transcriptional regulator of cell metabolism, the peroxisome proliferator-activated receptor γ co-activator 1-α (PPARGC-1-α or PGC-1α), also regulates mitochondrial biogenesis, but its role in antioxidant gene regulation is not well understood. Here, we asked whether genetic heterozygosity of PGC-1α modulates gene expression for the mitochondrial antioxidant enzyme SOD-2 during hepatic inflammatory stress. Using Staphylococcus aureus peritonitis in mice, we found significant Sod2 gene induction in WT mice, whereas PGC-1α heterozygotes (PGC-1α(+/-)) failed to augment Sod2 mRNA and protein levels. Impaired Sod2 regulation in PGC-1α(+/-) mice was accompanied by oxidative stress shown by elevated mitochondrial GSSG/GSH and protein carbonyls. In silico analysis of the mouse proximal Sod2 promoter region revealed consensus binding sites for the Nfe2l2 (Nrf2) transcription factor. Chromatin immunoprecipitation demonstrated diminished Nfe2l2 protein binding to the antioxidant response element promoter site proximal to the Sod2 start site in PGC-1α heterozygous mice, implicating PGC-1α in facilitation of Nfe2l2 DNA binding. Nuclear protein co-immunoprecipitation demonstrated an interaction between hepatic Nfe2l2 and PGC-1α in WT mice that was greatly reduced in PGC-1α(+/-) mice. The data indicate that PGC-1α promotes mitochondrial antioxidant enzyme expression through Nfe2l2-mediated SOD-2 expression in sepsis. The presence of this new PGC-1α-dependent signaling axis indicates that PGC-1α opposes mitochondrial oxidative stress by means of selective induction of one or more antioxidant response element-driven genes. By implication, exploitation of this axis could lead to new pharmacological interventions to improve the antioxidant defenses during oxidative stress-induced mitochondrial damage.

Highlights

  • PPARg co-activator 1 (PGC-1)␣ regulates mitochondrial biogenesis, and may participate in antioxidant gene regulation

  • Induction of Mitochondrial Biogenesis—The redox-dependent induction of mitochondrial biogenesis is a key survival factor in sepsis [28]; we evaluated mRNA and protein levels in our strains of mice for three key transcription factors involved in mitochondrial biogenesis: nuclear respiratory factor-1 (NRF-1), GABPA, and mitochondrial transcription factor A (mtTFA)

  • NRF-1 and GABPA are necessary for the up-regulation of mtTFA and other nucleus-encoded, mitochondria-targeted proteins involved in mtDNA transcription and replication

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Summary

Background

PGC-1␣ regulates mitochondrial biogenesis, and may participate in antioxidant gene regulation. Results: PGC-1␣-deficient mice in sepsis demonstrated increased hepatocellular mitochondrial oxidative stress and impaired antioxidant enzyme induction, reflecting PGC-1␣ interaction with the ARE-dependent Nfe2l2 transcription factor and Sod activation. The physiological demands of thermogenesis [2], exercise [3], and postnatal growth [4], all states of up-regulated metabolism, induce mitochondrial biogenesis This induction is responsive to external cues, indicating the need for increased ATP production, and is mediated by a variety of transcription factors, co-activators, and co-repressors. We hypothesized that a single Ppargc1␣ (PGC-1␣) allele would be insufficient for the transcriptional co-activation and maintenance of high expression levels of critical target antioxidant genes in a sentinel organ, the liver, under stress This could lead to depressed enzyme function and decreased defenses against increased hepatic ROS production in sepsis. After a series of exploratory studies, we further evaluated the role of PGC-1␣ in the antioxidant response element (ARE)-dependent expression of the key mitochondrial antioxidant enzyme SOD-2

EXPERIMENTAL PROCEDURES
42 JOURNAL OF BIOLOGICAL CHEMISTRY
RESULTS
DISCUSSION
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