Search bioRxiv⌕ Search

Biology subjects

Wettstein, R.

Publications and source records attributed to Wettstein, R..

2 recordsLinked to original sources

FilamentID reveals the composition and function of metabolic enzyme polymers during gametogenesis

Gamete formation and subsequent offspring development often involve extended phases of suspended cellular development or even dormancy. How cells adapt to recover and resume growth remains poorly understood. Here, we visualized budding yeast cells undergoing meiosis by cryo-electron tomography (cryoET) and discovered elaborate filamentous assemblies decorating the nucleus, cytoplasm, and mitochondria. To determine filament composition, we developed a "Filament IDentification" (FilamentID) workflow that combines multiscale cryoET/cryo-electron microscopy (cryoEM) analyses of gently lysed cells. FilamentID identified the mitochondrial filaments as the conserved aldehyde dehydrogenase Ald4ALDH2 and the nucleoplasmic/cytoplasmic filaments being composed of acetyl-CoA synthetase Acs1ACSS2. The near-native high-resolution structures revealed the mechanism underlying polymerization and enabled us to perturb filament formation. Acs1 polymerization facilitates the recovery of chronologically aged spores, and more generally, the cell cycle re-entry of starved cells. FilamentID is broadly applicable to characterize filaments of unknown identity in diverse cellular contexts. HIGHLIGHTSO_LIFilamentID: a multiscale imaging workflow to characterize cellular filaments of unknown composition C_LIO_LIThe conserved aldehyde dehydrogenase Ald4ALDH2 polymerizes into filament arrays within meiotic mitochondria C_LIO_LIThe conserved acetyl-CoA synthetase Acs1ACSS2 forms filament arrays in the nucleus and the cytoplasm C_LIO_LIMetabolites mediate Acs1 polymerization to store Acs1 in an inactive state in gametes and starved cells C_LIO_LIAcs1 filament formation is required for efficient return to growth from starvation stress C_LI

cell biology↗

Meiotic Nuclear Pore Complex Remodeling Provides Key Insights into Nuclear Basket Organization

Nuclear pore complexes (NPCs) are large proteinaceous assemblies that mediate nuclear compartmentalization. NPCs undergo largescale structural rearrangements during mitosis in metazoans and some fungi. However, our understanding of NPC remodeling beyond mitosis remains limited. Using time-lapse fluorescence microscopy, we discovered that NPCs undergo two mechanistically-separable remodeling events during budding yeast meiosis whereby parts or all of the nuclear basket transiently dissociate from the NPC core during meiosis I and II, respectively. Meiosis I detachment, observed for Nup60 and Nup2, is driven by Polo kinase-mediated phosphorylation of Nup60 at its interface with the Y-complex. Subsequent reattachment of Nup60-Nup2 to the NPC core is mediated by a lipid-binding amphipathic helix in Nup60. Preventing Nup60-Nup2 reattachment causes misorganization of the entire nuclear basket in gametes. Strikingly, meiotic nuclear basket remodeling also occurs in the distantly related fission yeast, Schizosaccharomyces pombe. Our study reveals a conserved and developmentally programmed aspect of NPC plasticity, providing key mechanistic insights into nuclear basket organization. SUMMARYKing and Wettstein et al. reveal that nuclear pore complexes undergo two distinct remodeling events during budding yeast meiosis: partial and full nuclear basket detachment. By dissecting the regulation of these events, the study provides mechanistic insights into NPC organization.

cell biology↗