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May 29, 2026Molecular Biology of the Cell1 citations

Sphingolipid regulation by yeast Mdm1 supports adaptive remodeling of the methionine transporter Mup1

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DADaniel AdebayoEOEseiwi ObasekiKVKashvi Vasudeva

Key Points

  • The study aims to understand the role of Mdm1 in linking sphingolipid homeostasis to the regulation of the methionine transporter Mup1 during nutrient starvation.
  • Investigated Mup1 trafficking in mdm1 Δ cells during starvation.
  • Analyzed amino acid homeostasis and sphingolipid composition.
  • Performed lipidomic analyses to assess sphingoid bases and ceramide composition.
  • Loss of Mdm1 results in persistent Mup1 retention at the plasma membrane and reduced intracellular methionine.
  • Decreased sphingoid bases and altered ceramide composition were observed in mdm1 Δ cells.
  • Phytosphingosine supplementation restored sphingolipid pools and rescued Mup1 endocytosis, improving amino acid homeostasis.

Abstract

Membrane lipid composition influences endocytic remodeling of nutrient transporters, yet how lipid metabolism is spatially coordinated to support sustained adaptation to nutrient limitations remains unclear. Here, we investigated whether the ER-vacuole tether Mdm1 links sphingolipid homeostasis to regulation of the high-affinity methionine permease Mup1 in budding yeast. To test this, we examined Mup1 trafficking, amino acid homeostasis, and sphingolipid composition in mdm1 Δ cells during starvation. We found that loss of Mdm1 causes persistent retention of Mup1 at the plasma membrane, accompanied by reduced intracellular methionine and broad amino acid depletion. Lipidomic analyses revealed decreased sphingoid bases and altered ceramide composition in mdm1 Δ cells. Importantly, supplementation with the sphingolipid precursor phytosphingosine restored sphingolipid pools, rescued Mup1 endocytosis, and improved amino acid homeostasis. Consistent with a chronic amino acid restriction-like state, mdm1 Δ cells exhibited extended chronological lifespan. Together, these findings support a model in which Mdm1 functions as a spatial organizer of sphingolipid metabolism contributing to adaptive endocytic remodeling of Mup1, thereby linking ER-vacuole contact site function to plasma membrane proteostasis and metabolic adaptation.

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Cite This Study

Adebayo et al. (2026) studied this question.

synapsesocial.com/papers/6a192f1bfab5b468c4418755https://doi.org/10.1091/mbc.e26-03-0111
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