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Amari, C.

Publications and source records attributed to Amari, C..

2 recordsLinked to original sources

Functional study of Phaeodactylum tricornutum Seipin homolog highlights unique features of lipid droplets biogenesis in diatoms.

Diatoms are a major phylum of microalgae, playing crucial ecological roles. They derive from secondary endosymbiosis of a red alga by an unknown heterotrophic eukaryote, leading to a complex intracellular organization. In response to unfavorable conditions (stress), diatoms store oil in lipid droplets (LD), raising interest for applications, in particular biofuels. In spite of numerous investigations aiming to increase their oil content, LD biogenesis mechanisms in these organisms remain poorly understood. In this study, we functionally characterized the homolog of Seipin, a major actor of LD biogenesis, in the diatom Phaeodactylum tricornutum. PtSeipin shares conserved structural features with other Seipins, yet presents unique characteristics, that appear common to diatoms and more broadly Stramenopiles. We provide evidence that Stramenopiles Seipins were inherited from the host during secondary endosymbiosis. The localization of PtSeipin highlights that LD biogenesis can arise simultaneously from the endoplasmic reticulum (ER) and the plastids most external membrane. Finally, the knock-out of PtSeipin leads to a strong increase of TAG accumulation, a feature that is not observed in other organisms and is greatly enhanced following high light exposure. Our results suggest a redirection of lipid fluxes towards TAG synthesis, reduced TAG recycling or a combination of both.

plant biology↗

Controlling lipid droplet dynamics via tether condensates

Lipid droplets (LDs) exhibit remarkable diversity and functionality within cells, depending on the metabolic needs of cells and the maintenance of lipid homeostasis. Such versatility is acquired through dynamic spatial and temporal positioning, enabling tight communication with other organelles. However, this complexity poses challenges in understanding LD biology. Controlled sequestration and release of LDs within their intracellular environment could offer a method to synchronize their behavior and better understand their function. Here, to advance in this direction, we developed ControLD (Controlled Trapping of Lipid Droplets), a novel approach designed to manipulate LDs and influence their dynamics and life cycle. By orchestrating the assembly/disassembly of engineered condensates, ControLD allows precise sequestration and release of LDs in cells. This technique effectively isolates LDs from the intracellular environment, drastically reducing interactions with other organelles. Notably, our experiments demonstrate that physically isolating LDs impairs their dynamics and remobilization during metabolic needs. ControLD represents a versatile tool for reversible LD trapping, with potential applications in controlling various cellular organelles.

cell biology↗