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Foret, L.

Publications and source records attributed to Foret, L..

2 recordsLinked to original sources

Lipid droplet shape and tendency towards budding: insight from theory and molecular simulations

Lipid droplets (LDs) are cellular organelles responsible for lipid storage and metabolism. The mechanism of biogenesis of LDs involves phase separation of neutral lipids from the surrounding phospholipids, which generates oil lenses embedded in lipid bilayers, also known as nascent LDs. As nascent LDs grow, at some point they bud out of the bilayer, forming nearly spherical droplets. Nascent LDs have different propensity to bud, and it has been proposed that their shape provides information on such propensity; however, LD shape is difficult to determine experimentally. Here we studied the shape of lipid droplets using MD simulations at the coarse-grained level, and compared it to the predictions by an established theory. Our general system setup features an oil lens embedded into a flat, periodic bilayer. We found that the shape of simulated nascent LDs resembles a spherical cap (i.e., it has constant curvature over most of the surface), in excellent agreement with the theory, already for very small droplet sizes. The aspect ratio (height/radius) of nascent LDs increases with increasing LD volume, increasing membrane softness, and increasing surface tension between oil and water, also in agreement with theoretical predictions; however, it remains lower than 1 (i.e., the ratio for a sphere) for LDs of up to 40 nm in diameter. Fitting the simulated LD shapes with a theoretical shape equation suggests that a non-zero surface tension is present in both the monolayer and in the bilayer region. The existence of a relatively high surface tension in the bilayer region is confirmed by local stress calculations, and indicates that the periodic system setup does not reproduce the properties of nascent LDs in the endoplasmic reticulum, where the bilayer tension is two orders of magnitude lower. However, the simulations provide a microscopic view into the properties of droplet embedded vesicles.

biophysics↗

Steric Repulsion Counteracts ER-to-Lipid Droplet Protein Movement

Lipid droplets (LDs) are uniquely shaped organelles consisting of a neutral lipid core surrounded by a phospholipid monolayer, continuous with the cytosolic leaflet of the endoplasmic reticulum (ER). The dynamics and function of LDs are closely tied to their proteome composition, which is subject to dynamic remodeling. Key proteins essential for LD biology relocate from the ER to LDs, yet the mechanisms governing their movement and accumulation in LDs remain poorly understood. Here, we developed an innovative ex vivo tool to quantify and classify ER proteins based on their affinity for LDs. We found a broad spectrum of ER-to-LD partitioning affinities. We identified steric hindrance as a key factor in regulating ER-to-LD protein transfer, where proteins with only slightly higher LD affinity can effectively displace those with lower affinity from the LD surface. Consistent with this model, we observed that differentiation of 3T3 pre-adipocytes into adipocytes involves extensive remodeling of ER proteins targeting LDs, with Plin1--a high-affinity LD protein--becoming predominantly recruited and excluding other ER proteins. These findings highlight lateral protein-protein exclusion as a fundamental mechanism in shaping the LD proteome, providing new insights into LD biogenesis and function.

biophysics↗