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Buridan, M.

Publications and source records attributed to Buridan, M..

4 recordsLinked to original sources

The phytolongin AtPhyl2.1 is involved in cell plate formation and root development

SNAREs are critical elements of the membrane trafficking machinery with a wide variety of functionality across this family of proteins. Phytolongins are a recently identified subfamily of longins which possess the typical longin domain but lack a SNARE motif. Phytolongins have an ubiquitous tissue expression in Arabidopsis and are distributed throughout the secretory pathway. We focused on Phytolongin 2.1 (PHYL2.1) which localizes to the endoplasmic reticulum, and observed a strong root growth phenotype in the loss-of-function Atphyl2.1-1 mutant. We demonstrate that whilst cell elongation efficiency was not affected in the mutant, cell division was significantly reduced. The resulting decrease in root length in the Atphyl2.1-1 mutant is explained by a smaller number of cells which then elongate to enable root growth. Root apical meristem architecture of Atphyl2.1-1 and another mutant Atphyl2.1-2 was disturbed and distances from the root quiescent center to the transition zone and the first areas of mis-organized cells were affected in both mutants. Investigation of the SNARE AtKNOLLE revealed significant perturbation of Atphyl2.1-1 cell plate formation in the mis-organised areas. Our results provide a first characterization of the phytolongin AtPHYL2.1 which appears involved in root cell plate formation, root cell division and therefore root development. HighlightThe phytolongin AtPHYL2.1 significantly affects the efficiency of cell plate formation and root development in Arabidopsis thaliana.

plant biology↗

Clathrin-coated vesicles are targeted for selective autophagy during osmotic stress.

Plants frequently encounter hyperosmotic stress due to drought and salinity, leading to rapid water loss, reduced turgor pressure, and decreased cell volume. This contraction drastically alters plasma membrane tension, a physical parameter that must be strictly maintained to support mechanosignaling and cell expansion. However, the mechanisms by which plants adjust their membrane surface area to match a shrinking cell volume remain poorly understood. Here, we identify selective autophagy dependent degradation of plasma membrane-derived clathrin-coated vesicles (CCVs) in response to hyperosmotic shock. This pathway involves the recruitment of the endocytic TPLATE complex (TPC) to autophagosomes in an osmotic-stress dependent manner. Through correlative light and electron microscopy (CLEM) and electron tomography (ET), we provide ultrastructural evidence of the physical association of CCVs with autophagosome membranes. These autophagosomes contain endocytic machinery, including TPC and clathrin, and are targeted to the vacuole. Mechanistically, we show that the conserved ATG8-interacting motifs (AIMs) in the AtEH1/Pan1 and AtEH2/Pan1 TPC subunits interact with ATG8, suggesting that they facilitate the recruitment of CCVs to autophagosomes. Using time-lapse imaging, we demonstrate that the acute induction of autophagy is precisely coupled to the reduction in cell volume under hyperosmolar conditions. Our results suggest that endocytic removal of excess plasma membrane to maintain membrane tension and cellular integrity is coupled to TPC-mediated CCV-phagy. These findings reveal a homeostatic mechanism that enables plants to adapt to the challenges of drought and salinity. Significance StatementAll living cells must maintain the physical integrity of their outer membrane. How cells can adapt their surface area to respond to rapid changes in cell volume, such as those caused by drought or salt stress, remains a fundamental question in biology. We identify a mechanism in plants involving autophagy - a cellular recycling pathway - where plasma membrane-derived vesicles are targeted for degradation following salt or osmotic stress. This pathway involves the TPLATE complex, an evolutionary ancient and essential endocytic complex in plants, which directly interacts with the autophagy protein ATG8. This discovery reveals how plants adapt to osmotic stress by modulating their membrane properties, supporting a framework for future improvement of crop resilience in response to salinity and drought.

plant biology↗

Unveiling the molecular identity of plant autophagic compartments: A proteo-lipidomic study in Arabidopsis thaliana

Autophagy is an intracellular degradation and recycling pathway essential for cell quality control and plant tolerance to stress. The formation and maturation of autophagosomes, the cargo-packing vesicles, rely on extensive membrane remodeling, yet little is known about the nature, dynamics and functions of lipids in these events. Here, we established a method combing cell fractionation and immuno-isolation in native conditions to purify autophagic membranes from Arabidopsis thaliana. By integrating proteomic and lipidomic analyses, we defined their molecular footprint which, coupled to colocalization analyses, revealed potent actors involved in lipid metabolism, membrane trafficking and membrane remodeling, supporting a close interplay between lipid homeostasis and autophagosome biology. Characterization of the phagophore lipid composition showed low sterol and sphingolipid content, a predominance of glycerophospholipids, including phosphoinositides, and a particular enrichment in phosphatidylcholine and phosphatidylglycerol. Comparisons with other plant endomembranes and autophagic compartments from other organisms revealed the singularity of this lipid signature and notably identified phosphatidylglycerol as a plant-specific component of autophagic membranes. Analyses of inducible phosphatidylglycerol-deficient plants showed defects in autophagy activity thereby supporting the functional relevance of the phagophore lipid composition, particularly that of phosphatidylglycerol homeostasis. Together, our findings place lipids as fundamental components of the autophagy molecular landscape and provide a framework to further investigate their contribution to autophagosome biology and functions in plant acclimation to environmental changes. Significance StatementAutophagy is catabolic pathway critical for eukaryotic life and essential for plant acclimation to stress. It hinges on the remarkable plasticity of a specialized membrane, the phagophore, to orchestrate and support intense membrane remodeling events towards the formation of the autophagic vesicle containing cargo. To resolve their elusive molecular bases, we need to integrate inputs from both components of biological membranes: proteins and lipids, yet information regarding lipids is still very limited. Here, we isolated plant phagophores, established their protein and lipid molecular footprint, revealed its singularity and showed its physiological and functional relevance for autophagy activity. Our work highlights lipids as key regulators of plant autophagy and opens new doors for investigating how membrane dynamics shape cellular stress responses.

plant biology↗

A dual component system instructs membrane hydrolysis during the final stages of plant autophagy

Autophagy is an intracellular catabolic process conserved across eukaryotes and critical for plant stress tolerance. Upon their delivery in the vacuole, how autophagic bodies containing cargo are hydrolyzed to warrant autophagy degradation remains poorly characterized. Here, we identify two Arabidopsis phospholipases as core components of the autophagy machinery. We find that LCAT3 and LCAT4 traffic to the vacuolar lumen and converge on autophagic bodies using differential pathways, placing them on the outer and inner side of the vesicle, respectively. Double knockouts lcat3,4 accumulate autophagic bodies and show reduced autophagy activity. In vivo reconstitution demonstrates that LCAT3 can hydrolyze the membrane of autophagic bodies, enabling the activity of LCAT4 to enhance this process. In sum, our work reveals that the concerted action of a multi-component system is required for the efficient and specific disruption of autophagic bodies as an obligatory step for the completion of the autophagy pathway.

plant biology↗