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Published on: September 9, 2021
Transmembrane protein 135 regulates lipid homeostasis through its role in peroxisomal DHA metabolism
Michael Landowski1,2, Vijesh J Bhute1,3, Samuel Grindel1
1Department of Medical Genetics, University of Wisconsin-Madison, Madison, WI, USA.
Abstract:
Transmembrane protein 135 (TMEM135) is thought to participate in the cellular response to increased intracellular lipids yet no defined molecular function for TMEM135 in lipid metabolism has been identified. In this study, we performed a lipid analysis of tissues from Tmem135 mutant mice and found striking reductions of docosahexaenoic acid (DHA) across all Tmem135 mutant tissues, indicating a role of TMEM135 in the production of DHA. Since all enzymes required for DHA synthesis remain intact in Tmem135 mutant mice, we hypothesized that TMEM135 is involved in the export of DHA from peroxisomes. The Tmem135 mutation likely leads to the retention of DHA in peroxisomes, causing DHA to be degraded within peroxisomes by their beta-oxidation machinery. This may lead to generation or alteration of ligands required for the activation of peroxisome proliferator-activated receptor a (PPARa) signaling, which in turn could result in increased peroxisomal number and beta-oxidation enzymes observed in Tmem135 mutant mice. We confirmed this effect of PPARa signaling by detecting decreased peroxisomes and their proteins upon genetic ablation of Ppara in Tmem135 mutant mice. Using Tmem135 mutant mice, we also validated the protective effect of increased peroxisomes and peroxisomal beta-oxidation on the metabolic disease phenotypes of leptin mutant mice which has been observed in previous studies. Thus, we conclude that TMEM135 has a role in lipid homeostasis through its function in peroxisomes.
Insights
Transmembrane protein 135 (TMEM135) is crucial for docosahexaenoic acid (DHA) homeostasis. This study reveals TMEM135 facilitates DHA export from peroxisomes, impacting lipid metabolism and PPARa signaling.
Area of Science:
- Cell Biology
- Molecular Biology
- Lipid Metabolism
Background:
- Transmembrane protein 135 (TMEM135) is implicated in cellular lipid responses.
- Its precise molecular function in lipid metabolism remains undefined.
- TMEM135's role in docosahexaenoic acid (DHA) production is investigated.
Purpose of the Study:
- To elucidate the molecular function of TMEM135 in lipid metabolism.
- To determine TMEM135's role in docosahexaenoic acid (DHA) production and peroxisomal function.
- To investigate the link between TMEM135, DHA, and PPARa signaling.
Main Methods:
- Lipidomic analysis of tissues from Tmem135 mutant mice.
- Genetic ablation of Ppara in Tmem135 mutant mice.
- Assessment of peroxisomal number and beta-oxidation enzymes.
Main Results:
- Tmem135 mutant mice exhibit significant reductions in DHA levels.
- TMEM135 is hypothesized to be involved in DHA export from peroxisomes.
- TMEM135 deficiency leads to altered PPARa signaling, increasing peroxisomes and beta-oxidation.
- Increased peroxisomes and beta-oxidation in Tmem135 mutants protect against metabolic disease phenotypes.
Conclusions:
- TMEM135 plays a critical role in lipid homeostasis by facilitating DHA export from peroxisomes.
- TMEM135 function impacts PPARa signaling and peroxisomal activity.
- TMEM135 is essential for maintaining normal DHA levels and overall lipid balance.
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