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Updated: Sep 25, 2025

Monitoring Stub1-Mediated Pexophagy
Published on: May 12, 2023
OXPHOS deficiencies affect peroxisome proliferation by downregulating genes controlled by the SNF1 signaling pathway
Jean-Claude Farre1, Krypton Carolino1, Lou Devanneaux1
1Section of Molecular Biology, Division of Biological Sciences, University of California, San Diego, La Jolla, United States.
Abstract:
How environmental cues influence peroxisome proliferation, particularly through organelles, remains largely unknown. Yeast peroxisomes metabolize fatty acids (FA), and methylotrophic yeasts also metabolize methanol. NADH and acetyl-CoA, produced by these pathways enter mitochondria for ATP production and for anabolic reactions. During the metabolism of FA and/or methanol, the mitochondrial oxidative phosphorylation (OXPHOS) pathway accepts NADH for ATP production and maintains cellular redox balance. Remarkably, peroxisome proliferation in Pichia pastoris was abolished in NADH-shuttling- and OXPHOS mutants affecting complex I or III, or by the mitochondrial uncoupler, 2,4-dinitrophenol (DNP), indicating ATP depletion causes the phenotype. We show that mitochondrial OXPHOS deficiency inhibits expression of several peroxisomal proteins implicated in FA and methanol metabolism, as well as in peroxisome division and proliferation. These genes are regulated by the Snf1 complex (SNF1), a pathway generally activated by a high AMP/ATP ratio. In OXPHOS mutants, Snf1 is activated by phosphorylation, but Gal83, its interacting subunit, fails to translocate to the nucleus. Phenotypic defects in peroxisome proliferation observed in the OXPHOS mutants, and phenocopied by the Δgal83 mutant, were rescued by deletion of three transcriptional repressor genes (MIG1, MIG2, and NRG1) controlled by SNF1 signaling. Our results are interpreted in terms of a mechanism by which peroxisomal and mitochondrial proteins and/or metabolites influence redox and energy metabolism, while also influencing peroxisome biogenesis and proliferation, thereby exemplifying interorganellar communication and interplay involving peroxisomes, mitochondria, cytosol, and the nucleus. We discuss the physiological relevance of this work in the context of human OXPHOS deficiencies.
Insights
Mitochondrial energy production is crucial for peroxisome proliferation in yeast. Impaired oxidative phosphorylation (OXPHOS) disrupts peroxisome biogenesis by affecting gene expression via the Snf1 pathway.
Area of Science:
- Cell Biology
- Mitochondrial Biology
- Yeast Genetics
Background:
- Peroxisome proliferation is influenced by environmental cues, but the mechanisms involving organelle interactions are unclear.
- Yeast peroxisomes metabolize fatty acids and methanol, producing intermediates that fuel mitochondrial ATP production and redox balance via oxidative phosphorylation (OXPHOS).
Purpose of the Study:
- To investigate the link between mitochondrial function and peroxisome proliferation in yeast.
- To elucidate the molecular pathways connecting mitochondrial energy metabolism to peroxisome biogenesis.
Main Methods:
- Utilized Pichia pastoris mutants deficient in mitochondrial oxidative phosphorylation (OXPHOS) and NADH-shuttling.
- Analyzed gene expression of peroxisomal proteins using quantitative methods.
- Investigated the role of the Snf1 signaling pathway and its regulatory subunits (Gal83).
- Employed gene deletion strategies for transcriptional repressors (MIG1, MIG2, NRG1).
Main Results:
- Peroxisome proliferation was abolished in OXPHOS and NADH-shuttling mutants, linked to ATP depletion.
- Mitochondrial OXPHOS deficiency reduced the expression of key peroxisomal proteins involved in metabolism and proliferation.
- Snf1 pathway activation was observed in OXPHOS mutants, but nuclear translocation of Gal83 was impaired.
- Deletion of Snf1-controlled repressors (MIG1, MIG2, NRG1) rescued proliferation defects.
Conclusions:
- Mitochondrial energy status, particularly ATP levels, directly impacts peroxisome proliferation.
- A signaling pathway involving Snf1, Gal83, and transcriptional repressors mediates the influence of mitochondria on peroxisome biogenesis.
- This study highlights critical interorganellar communication between mitochondria and peroxisomes for cellular homeostasis and function.
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