AI Article Synopsis

  • Dicot seeds store proteins in protein storage vacuoles (PSVs), which form from reconfigured lytic vacuoles during seed development.
  • Researchers explored how PSVs change shape in living cells, finding that liquid droplets of storage proteins form via phase separation inside the vacuoles and affect the tonoplast's shape.
  • The study proposes a model showing that varying conditions of membrane curvature and wettability either promote the budding of multiple PSVs or create a network of nanotubes for molecular exchange between droplets and the vacuole.

Article Abstract

Seeds of dicotyledonous plants store proteins in dedicated membrane-bounded organelles called protein storage vacuoles (PSVs). Formed during seed development through morphological and functional reconfiguration of lytic vacuoles in embryos [M. Feeney , 177, 241-254 (2018)], PSVs undergo division during the later stages of seed maturation. Here, we study the biophysical mechanism of PSV morphogenesis in vivo, discovering that micrometer-sized liquid droplets containing storage proteins form within the vacuolar lumen through phase separation and wet the tonoplast (vacuolar membrane). We identify distinct tonoplast shapes that arise in response to membrane wetting by droplets and derive a simple theoretical model that conceptualizes these geometries. Conditions of low membrane spontaneous curvature and moderate contact angle (i.e., wettability) favor droplet-induced membrane budding, thereby likely serving to generate multiple, physically separated PSVs in seeds. In contrast, high membrane spontaneous curvature and strong wettability promote an intricate and previously unreported membrane nanotube network that forms at the droplet interface, allowing molecule exchange between droplets and the vacuolar interior. Furthermore, our model predicts that with decreasing wettability, this nanotube structure transitions to a regime with bud and nanotube coexistence, which we confirmed in vitro. As such, we identify intracellular wetting [J. Agudo-Canalejo et al., Nature 591, 142-146 (2021)] as the mechanism underlying PSV morphogenesis and provide evidence suggesting that interconvertible membrane wetting morphologies play a role in the organization of liquid phases in cells.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8433588PMC
http://dx.doi.org/10.1073/pnas.2024109118DOI Listing

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