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Prinz, W.

Publications and source records attributed to Prinz, W..

2 recordsLinked to original sources

In vivo analyses reveal rapid and permissive lipid transport between the ER and mitochondria

Interorganelle lipid transport is essential for mitochondrial membrane biogenesis and function, yet its kinetics and substrate selectivity remain poorly understood in vivo. Here, we developed two complementary approaches to quantify lipid trafficking from the endoplasmic reticulum (ER) to mitochondria in yeast. Metabolic labeling combined with organelle fractionation revealed that newly synthesized phospholipids rapidly accumulate in mitochondria, with 20-35% of newly synthesized molecules detected in mitochondrial fractions within minutes of synthesis. To directly quantify lipid flux, we established a synthetic transport assay based on the production of heterologous galactolipids absent from yeast. This approach revealed an ER-to-mitochondria transport flux of approximately 2.6 x 105 lipid molecules per cell per minute. Remarkably, galactolipids were transported with high efficiency despite their absence from fungal membranes, indicating limited substrate selectivity of ER-mitochondria lipid transport pathways. Together, these complementary assays provide quantitative tools to investigate intracellular lipid transport and reveal the rapid and permissive nature of lipid exchange between the ER and mitochondria. SummaryUsing complementary metabolic labeling and synthetic lipid reporter assays, we quantitatively measured ER-mitochondria lipid transport in yeast. Our results reveal rapid lipid exchange, high transport fluxes and limited substrate selectivity, indicating that mitochondrial lipid trafficking efficiently accommodates structurally diverse membrane lipids.

Cell Biology↗

Pln1 Mediates Lipid Droplet-Vacuole Tethering During Microlipophagy Saccharomyces cerevisiae

Lipid droplets (LDs) are dynamic organelles that undergo growth or degradation depending on the metabolic state of the cell. One form of LD degradation is autophagy-mediated, referred to as lipophagy. Here, we demonstrate that Pln1, a perilipin located on the surface of LDs in Saccharomyces cerevisiae, previously known for its role in LD biogenesis, is essential for lipophagy. Pln1 facilitates the docking of cytosolic LDs to vacuoles, the lysosome-like organelles responsible for LD degradation, under various nutrient conditions. Molecular dissection of Pln1 revealed that the N-terminal PAT (Perilipin (PLN1), Adipophilin (PLN2), and TIP47 (PLN3)) domain and a hydrophobic region are critical for the localization and binding of LDs to vacuoles. Site-specific mutagenesis within the PAT domain identified a semi-hydrophobic LD Interacting Motif (LIM), which is vital for this interaction. Furthermore, an intrinsically disordered region (IDR) near the center of Pln1 is required for efficient LD-vacuole tethering. These findings support a model in which Pln1 bridges LDs and vacuoles by simultaneously interacting with both organelles. Notably, deleting PLN1 did not impair survival during prolonged nitrogen starvation and enhanced viability in autophagy-defective (atg8{Delta}) cells, suggesting that balancing Pln1-mediated LD biogenesis and lipophagy is crucial for yeast survival under starvation conditions.

cell biology↗