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Benitez-Fuente, F.

Publications and source records attributed to Benitez-Fuente, F..

3 recordsLinked to original sources

Integration of SYT1 Interactomics and Dual-Localization Proteomics Links ER-PM Contacts to Lignin Deposition

Membrane contact sites (MCSs) are evolutionarily conserved intracellular nanodomains that physically bridge opposing lipid bilayers to facilitate non-vesicular communication and maintain cellular homeostasis. In plants, endoplasmic reticulum-plasma membrane (ER-PM) contact sites play fundamental roles in environmental adaptation, and are populated by specialized proteins which act as tethers such as Synaptotagmin 1 (SYT1). However, a comprehensive view of the molecular machinery governing processes at these junctions is still needed. In this work, we integrate affinity purification mass spectrometry, TurboID proximity labeling, and a dual-localization reanalysis of HyperLOPIT spatial proteomics to functionally map the protein interaction landscape of the ER-PM contact sites protein SYT1. Beyond recovering established ER-PM MCS functions, our analysis identified uncharacterized proteins as bona fide resident components of these junctions, and revealed that these nanodomains act as docking platforms that anchor the monolignol biosynthetic complex. By spatially organizing Membrane Steroid Binding Proteins and cytochrome P450 enzymes, our findings support a model where SYT1-mediated anchoring of this metabolon to ER-PM contact sites optimizes monolignol export required for stress-induced lignification. Ultimately, this proteomic framework expands the functional repertoire of ER-PM contact sites, opening new avenues to uncover hidden roles of MCSs across diverse eukaryotic systems.

molecular biology↗

Molecular mechanisms of E-Syt-mediated stress resistance

Membrane contact sites (MCS) between the endoplasmic reticulum (ER) and the plasma membrane (PM) enable direct intermembrane exchange of signals and metabolites. The Extended Synaptotagmins (E-Syts) are an evolutionary conserved family of ER-PM tethers essential to maintain PM integrity under stress conditions. To investigate the underlying molecular mechanisms, we employed cellular reconstitution experiments in yeast and plants. We show that E-Syt-mediated stress tolerance relies on ER-PM MCS targeting, which requires the E-Syt N-terminal membrane anchor, a minimal set of two C2 domains and an SMP domain. C2 domains are sufficiently conserved that interspecies domains can sustain both PM localization and stress response. The role of the SMP domain in ER-PM localization is also conserved, but SMP function in stress resistance is species-specific. Furthermore, cryo-electron tomography uncovers a scaffolding role for the SMP domain in maintaining ER-PM distance, and in the formation of ER membrane peaks with extreme curvature that appear necessary for stress tolerance. Collectively, our findings reveal the individual and synergistic roles of all E-Syt modules in maintaining cellular homeostasis under stress.

cell biology↗

Unravelling Different Biological Roles Of Plant Synaptotagmins

Endoplasmic Reticulum-Plasma Membrane contact sites (ER-PM CS) are evolutionarily conserved membrane domains found in all eukaryotes, where the endoplasmic reticulum (ER) closely interfaces with the plasma membrane (PM). This short distance, typically 10-30 nm, is achieved in Arabidopsis through the action of tether proteins such as Synaptotagmins (SYTs). Arabidopsis comprises five SYT members (SYT1-SYT5), but whether they possess overlapping or distinct biological functions remains elusive. SYT1 is the best-characterized gene member and plays an essential role in the resistance to abiotic stress. This study reveals that while the functionally redundant SYT1 and SYT3 genes are involved in salt and cold stress resistance, SYT5 is associated with Pseudomonas syringae resistance despite evidence of in vivo interaction between SYT1 and SYT5. Structural phylogenetic analysis indicates that SYT1 and SYT5 clades emerged early in the evolution of land plants. These protein clades exhibit different structural features, rationalizing their distinct biological roles.

plant biology↗