4.7 Article

Cvm1 is a component of multiple vacuolar contact sites required for sphingolipid homeostasis

Journal

JOURNAL OF CELL BIOLOGY
Volume 221, Issue 8, Pages -

Publisher

ROCKEFELLER UNIV PRESS
DOI: 10.1083/jcb.202103048

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Funding

  1. Schering and Fritz Thyssen foundations [20.18.0.029MN]
  2. Deutsche Forchungsgemeinschaft [SFB944, SFB1190]
  3. Volkswagen Foundation Life Grant [93092MS]
  4. European Molecular Biology Organization Advanced Long-term Fellowship [aALTF 609-2018]
  5. Dutch Research Council [ALWOP.355]
  6. European Molecular Biology Organization Long-term Fellowship [ALTF-580-2017]

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Membrane contact sites are specialized platforms between organelles that facilitate metabolite exchange and influence dynamics. This study identifies a novel protein, Cvm1, that forms multiple contact sites in the yeast vacuole and plays a crucial role in sphingolipid homeostasis.
Membrane contact sites are specialized platforms formed between most organelles that enable them to exchange metabolites and influence the dynamics of each other. The yeast vacuole is a degradative organelle equivalent to the lysosome in higher eukaryotes with important roles in ion homeostasis and metabolism. Using a high-content microscopy screen, we identified Ymr160w (Cvm1, for contact of the vacuole membrane 1) as a novel component of three different contact sites of the vacuole: with the nuclear endoplasmic reticulum, the mitochondria, and the peroxisomes. At the vacuole-mitochondria contact site, Cvm1 acts as a tether independently of previously known tethers. We show that changes in Cvm1 levels affect sphingolipid homeostasis, altering the levels of multiple sphingolipid classes and the response of sphingolipid-sensing signaling pathways. Furthermore, the contact sites formed by Cvm1 are induced upon a decrease in sphingolipid levels. Altogether, our work identifies a novel protein that forms multiple contact sites and supports a role of lysosomal contacts in sphingolipid homeostasis.

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