Nature Cell Biology
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All preprints, ranked by how well they match Nature Cell Biology's content profile, based on 118 papers previously published here. The average preprint has a 0.12% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.
Zhang, W.; Latham, A. P.; Ronchi, P.; Schnorrenberg, S.; Heriche, J.-K.; Huang, Z.; Hossain, M. J.; Morero, N. R.; Pflaumer, H.; Hantsche-Grininger, M.; Schwab, Y.; Sali, A.; Ellenberg, J.
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Nuclear envelope (NE) reformation after mitosis is essential for daughter cell viability and requires tightly coordinated nuclear pore complex (NPC) assembly and nuclear membrane reformation. To reveal how these processes are mechanistically linked, we combined acute molecule perturbations in live cells with correlative 3D electron tomography or MINFLUX super-resolution microscopy. We show that degrading Nup62 during mitosis arrests NPC assembly at an intermediate step with smaller membrane pores and removes the whole central transport channel. Molecular dynamics simulations predicted that 32 copies of the central channel subcomplex, recruited into the previously unoccupied pore center, can self-associate via hydrophobic interactions to occupy the volume required for full pore size and exert an outward pushing force; indeed, disrupting these interactions during NPC assembly blocked pore dilation. Later in mitotic exit, perturbed cells exhibited impaired nuclear import, smaller nuclei, and looser NE spacing. Acute inhibition of nuclear import recapitulated these NE defects without affecting NPC assembly. Together, our findings reveal a new, two-step molecular mechanism linking NPC assembly and NE reformation. First, hydrophobic FG-nucleoporins dilate the assembling nuclear pore to its full width by forming the central transport channel, which then allows nuclear import-driven nuclear expansion leading to tight, regular NE membrane spacing.
Lu, D.; Zhang, R.; Shi, W.; Zhan, D.; Yang, Y.; Sun, X.; Zhang, H.; Li, Y.; Li, X.; Yu, L.
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Lysosomes containing multilamellar membrane whorls are a hallmark of cellular aging and storage disorders, yet the biogenesis of these structures has remained elusive for decades. Here, we identify a distinct form of endoplasmic reticulum (ER) remodeling, termed autolamellasomes, which mediates bulk ER degradation under chronic mTOR inhibition. Unlike canonical ER-phagy, autolamellasomes are concentric ER stacks that form via an autophagy-dependent but receptor-independent mechanism. Using Cryo-ET, CLEM, and a reconstituted cell-free system, we demonstrate that these structures arise from the cytosolic compaction of fragmented ER membranes, driven by the core autophagy machinery. We find that autolamellasomes accumulate in senescent cells and fibroblasts from patients with Hutchinson-Gilford progeria syndrome, linking sustained mTOR suppression to lysosomal membrane homeostasis. Our results resolve the origin of intralysosomal whorls and define a conserved pathway that couples nutrient sensing to membrane turnover and cellular aging.
LI, X.; Zhang, Y.; ZHAO, K.; Chen, G.; Cui, D.; Nikan, M.; Young, S.; Bennett, F.; Seth, P. P.; Ni, T.; Gutierrez, M. G.; Jiang, H.
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Endolysosomal membrane damage is a detrimental process in mammalian cells that results in leakage of the luminal contents into the cytosol. However, the nature and extent of the leakage during membrane damage is unknown. Here, we show that endomembrane damage induces the rapid formation of intraluminal condensates in endolysosomes. A subset of resident luminal proteins undergo spatially coordinated condensation upon endomembrane damage. Electron microscopy reveals distinct luminal morphology, and cryo-electron tomography confirms the condensed ultrastructure in their native state. Condensate formation occurs across mechanistically distinct modes of membrane injury and is reversibly dissociated upon lysosomal recovery. Remarkably, these condensates impose a previously unrecognised barrier to endolysosomal escape of therapeutic oligonucleotides. Despite endomembrane damage, luminal oligonucleotide therapeutics are sequestered in damaged endolysosomes through condensate-mediated biophysical immobilisation. Targeting condensate sequestration could represent a novel strategy to improve oligonucleotide-based therapeutics.
Moriizumi, H.; Shi, R.; Schraivogel, D.; Reid, A. J.; Steinmetz, L. M.; Skotheim, J. M.; Zatulovskiy, E. A.
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The proportional scaling between nuclear and cell size was first described more than 150 years ago and is among the most conserved features of cellular organization. Yet the mechanisms that establish this scaling and its physiological significance have remained unresolved. Here, we address both questions by combining image-enabled cell sorting with genome-wide CRISPR screening, transcriptomics and functional analyses. We identify more than 180 regulators of the nuclear-to-cell ratio and show that distinct classes of genes independently control nuclear and cell size. RNA metabolism predominantly regulates nuclear size, whereas protein synthesis and degradation primarily regulate cell size. This supports a model in which differences in macromolecular partitioning between the nucleus and cytoplasm contribute to osmotic regulation of nuclear size together with mechanical constraints imposed by chromatin, the cytoskeleton, and the nuclear envelope. Changes in nuclear size cause widespread transcriptional remodeling that is independent of changes in cell size. Cells with smaller nuclei exhibit reduced PRC2-dependent H3K27 trimethylation, activation of developmental gene-expression programmes and repression of cell-cycle genes. Consistent with these changes, mouse embryonic stem cells with smaller nuclei show an increased propensity to exit pluripotency and initiate differentiation in response to retinoic acid. Together, our findings provide a mechanistic framework for nuclear size scaling and establish nuclear size as a physical regulator of gene expression and cell-state transitions, linking cellular architecture to cell fate.
Xun, J.; Yi, Z.; Yang, H.; Cheng, J.; Dion, W. A.; Yang, R.; Yu, X.; Tian, F.; Lv, B.; Liu, H. F.; Peri, A. K.; Zhu, B.; Tan, J. X.
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Lysosomal damage is increasingly recognized as a hallmark of aging. Understanding lysosomal quality control may open new therapeutic strategies to enhance lysosomal resilience. Here, we identify SOLAR (SQSTM1/p62 Oligomer-mediated Lysosomal Antioxidant Defense And Membrane Repair), a lysosomal quality control pathway that links CASM (conjugation of ATG8 to single membranes) to p62-driven membrane repair and redox signaling. In this pathway, CASM, but not macroautophagy, recruited p62 to damaged lysosomes. Efficient lysosomal recruitment of p62 required its ATG8-binding and self-oligomerizing domains, enabling p62 assemblies to promote membrane repair. p62 mutations associated with neurodegeneration interfered with p62 recruitment and compromised lysosomal repair. Besides membrane repair, the SOLAR pathway also activated the p62-KEAP1-NRF2 redox signaling axis, driving transcriptional upregulation of antioxidative genes and cholesterol biosynthesis. By integrating membrane repair and redox defense, SOLAR establishes a coordinated lysosomal quality control pathway with implications for aging and degenerative disease.
Aich, S.; Gonczy, P.
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Centriole copy number is tightly regulated, with one procentriole emanating from a torus surrounding each pre-existing centriole. Which proteins are sufficient to generate a full-fledged organelle is unclear. We address this question by engineering a high valency low copy number phase-separated droplet platform to concentrate proteins in an ectopic cellular location. We establish that droplet targeting of the torus protein Cep63 suffices to initiate procentriole assembly. Ectopic procentrioles mature when a limiting interaction involving STIL is alleviated or when pre-existing centrioles are lacking. Ectopic procentrioles disengage from the droplet during mitosis in a PLK1-dependent manner, organize supernumerary spindle poles, and seed procentriole formation at the next cell cycle, demonstrating that synthetic centrioles have been reconstituted. Moreover, we uncover that procentriole number scales with platform surface area. Since the torus surface area is set by pre-existing centriole dimensions, we propose that this constitutes a closed circuit mechanism dictating organelle number homeostasis.
Walsh, P. J.; Kraeutler, E. B.; Linares-Saldana, R.; Wai, M.; Nguyen, S. C.; Zhang, S.; Shah, P. P.; Park, D. S.; Muzaffar, H. A.; Jain, R.; Joyce, E. F.
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The nuclear periphery is a key site for heterochromatin organization in eukaryotic cells, where lamina-associated domains (LADs) promote transcriptional repression and genome stability. Despite their importance, the mechanisms governing LAD positioning in human cells remain poorly understood. To this end, we performed a genome-wide imaging-based siRNA screen and identified over 100 genes critical for perinuclear LAD localization, with a striking enrichment for RNA-binding proteins. Among these, hnRNPK emerged as a key regulator, required for the perinuclear positioning of approximately two-thirds of LADs genome-wide. Loss of hnRNPK led to LAD repositioning away from the nuclear periphery without altering their heterochromatin state, yet resulted in misexpression of genes within these domains. Notably, hnRNPK-sensitive LADs are uniquely marked by both H3K9me2 and H3K27me3, distinguishing them from hnRNPK-insensitive LADs that are enriched for H3K9me2 and H3K9me3. These findings reveal at least two mechanistically and epigenetically distinct LAD classes, suggesting that specialized pathways underlie their spatial organization. Our results uncover a pivotal role for hnRNPK in regulating the spatial organization of chromatin and highlight the broader diversity of LAD localization mechanisms.
Schwayer, C.; Barbiero, S.; Brückner, D. B.; Baader, C.; Repina, N. A.; Diaz, O. E.; Meylan, L. C.; Kalck, V.; Suppinger, S.; Yang, Q.; Schnabl, J.; Kilik, U.; Camp, J. G.; Stockinger, B.; Bühler, M.; Stadler, M. B.; Hannezo, E.; Liberali, P.
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Tissue regeneration relies on the ability of cells to undergo de novo patterning. While tissue patterning has been viewed as the transition from initially identical un-patterned cells to an arrangement of different cell types, recent evidence suggests that initial heterogeneities between cells modulate tissue-scale pattern formation. Yet, how such heterogeneities arise and, thereafter, regulate cell type emergence in a population of cells is poorly understood. Using in vivo and in vitro mouse regenerative systems, we identify a critical tissue density that is required to induce heterogeneous inactivation of the mechanosensor YAP1. Experimental and biophysical approaches demonstrate that YAP1 cell-to-cell heterogeneity pre-patterns the first cell fate decision, via both chromatin remodelling and a supracellular feedback between FOXA1 and Delta-Notch signalling. This feedback motif induces cell fate bistability endowing memory to the system and the maintenance of patterns during homeostasis. These findings reveal a generalisable framework in which transient cell-to-cell heterogeneity, regulated by tissue-scale properties, serves as a critical control parameter for the emergence of cell fate and stable patterning during regeneration.
Watson, N. A.; Melli, M.; Cosenza, M. R.; Oorschot, V.; Frankel, L. B.; Korbel, J. O.; Cecconi, F.
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Chromosomal instability (CIN) arising from mitotic errors generates pervasive structural and numerical chromosome alterations fueling cancer evolution1-3. Entrapment of missegregated chromosomes within micronuclei exacerbates CIN by fostering repeated rounds of aberrant mitotic segregation4-6 and, following micronucleus rupture, promoting catastrophic chromosomal rearrangement processes such as chromothripsis5-9. Whether cellular mechanisms exist to restrain micronucleus-driven CIN has remained unclear. Developing a live-cell chromatin acidification sensor, we tracked micronuclei from genesis through subsequent cell cycles and observed frequent whole-micronucleus capture and acidification via the autophagy pathway. Autophagic targeting is selective for micronuclei with nuclear envelope defects seeded at mitotic exit. Our data indicate that these defects drive progressive loss of chromatin-nuclear envelope tethering, producing a mechanically altered state that is recognised by the autophagic machinery. Autophagy and rupture represent distinct micronuclear fates with opposing genomic consequences. Single-cell sequencing of fate-matched cells demonstrates complete digestion of the chromosomal contents of autophagy-targeted micronuclei, a process we term chromophagy (chromosome-autophagy). By eliminating micronuclei, chromophagy promotes chromosomal loss and arrests the intergenerational transmission of missegregated chromosomal material. This constrains the mutational consequences of micronucleation and suppresses micronucleus-mediated CIN.
Lee, S.; Mizielinska, S.
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Nucleocytoplasmic transport through the nuclear pore complex is essential for the maintenance of cellular homeostasis by regulating the movement of molecules between the nucleus and the cytoplasm. This process becomes dysfunctional in many diseases but has been particularly implicated in amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD) linked to the C9ORF72 mutation and associated aberrantly produced polypeptides. To directly study nucleocytoplasmic transport in intact non-genetically modified cells we have developed two new approaches for single molecule tracking through nuclear pore subdomains and super-resolved imaging of nuclear pore structural organisation. Using these techniques we have examined the early impact of the neurotoxic C9ORF72 polypeptide poly(glycine-arginine) on nuclear pore transport dynamics and structure. We find that soluble poly(glycine-arginine) peptides can disrupt molecular flow of passive cargo predominantly during nuclear export which is associated with altered structural organisation and molecular interaction of nuclear basket and central nuclear pore complex domains. These changes converge with perturbed nucleocytoplasmic homeostasis of the key ALS/FTD pathological protein TDP-43 and begin to explain this initiating step in disease.
Nguyen, N. T. B.; Kok, R. N. U.; Gevers, S.; Zheng, X.; Betjes, M. A.; Ritter, L.; Feijtel, D.; Smith, M. B.; van Beuningen, S. F. B.; van Zon, J. S.; Tans, S. J.; Rodriguez Colman, M. J.
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Organoid models have transformed our understanding of intestinal renewal. Fluorescent imaging has been extensively used to identify key cell types and their differentiation pathways, but immunofluorescence provides only static readouts, whereas live imaging requires fluorescent-reporter engineering and is constrained by limited multiplexing and spectral overlap. Here, we introduce NuclearIDTracker, an explainable machine-learning framework that infers cell identity directly from 3D nuclear segmentations. Using a single nuclear marker, NuclearIDTracker accurately classifies intestinal cell types and integrates with single-cell tracking to resolve lineages and reconstruct dynamic state transitions during organoid development. We show that TA-like cells, rather than stem cells, drive early crypt formation and generate enterocyte and Paneth lineages, as well as the stem-cell population, which emerges only later and subsequently replenishes the TA-like compartment. Following stem-cell ablation, crypt regeneration was not driven by a single discrete cell type. Instead, multiple epithelial populations converged on a proliferative regenerative state with a nuclear phenotypic signature that resembled, but remained distinct from, that of homeostatic TA-like cells, and a YAP/TAZ-associated fetal-like transcriptional signature. Thus, nuclear phenotypic signatures resolve cell identity and reveal coordinated epithelial plasticity during crypt regeneration. NuclearIDTracker establishes a non-perturbative tool to quantify cell identity and state dynamics at single-cell resolution, revealing previously inaccessible biological dynamics and expanding the toolkit for studying epithelial homeostasis, regeneration, and disease.
Geerlings, C.; Darmasaputra, G.; Jordan Ortiz, C.; Chuva de Sousa Lopes, S. M.; Clevers, H. M.; Galli, M.
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Polyploid cells, which contain more than two copies of the genome, are widely present across plants and animals, where they are often found in tissues with high biosynthetic and metabolic demands, such as the mammalian liver and placenta. While somatic polyploidy is frequently associated with increased cell growth and biosynthetic capacity, unscheduled polyploidization in cell types that are not normally programmed to become polyploid is often linked to reduced cellular fitness and genome instability. To understand whether these divergent outcomes stem from distinct immediate cellular responses to increased ploidy, we systematically compared the early consequences of polyploidization across naturally occurring and experimentally induced systems. Specifically, we examined physiological polyploid cells in the Caenorhabditis elegans intestine and human hepatocyte organoids, alongside unscheduled polyploid human retinal pigment epithelial (RPE1) cells generated through cytokinesis failure. Using quantitative imaging, flow cytometry, and FUCCI based cell-cycle reporters we measured cell size and protein translation dynamics during G1 in diploid and polyploid cells. Across all systems, we observed a strikingly conserved relationship between ploidy, cell size, and biosynthetic capacity: both cell size and protein translation showed similar scaling patterns after polyploidization, regardless of whether polyploidization occurred as part of normal development or by inducing cytokinesis failure. These findings indicate that the immediate cellular response to increased ploidy is broadly similar across contexts. However, in contrast to unscheduled polyploid RPE1 cells, polyploid human hepatocytes extend their G1 phase, leading to a higher accumulation of proteins before cell-cycle progression. Together, our findings suggest that polyploidization elicits similar growth responses across contexts, and that cell-type specific cell-cycle adaptations may determine whether polyploidy becomes advantageous or deleterious.
Odell, J.; Tang, Y.; Ambekar, Y. S.; Kidiyoor, G. R.; Saadi, H.; Woodworth, G.; Holt, L. J.; scarcelli, G.; Yu, H.; Lammerding, J.
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Lamins are nuclear intermediate filament proteins with diverse functions, ranging from organizing chromatin and regulating gene expression to providing structural support to the nucleus. Mammalian cells express two types of lamins, A-type and B-type, which, despite their similar structure and biochemical properties, exhibit distinct differences in expression, interaction partners, and function. One major difference is that A-type lamins have a significantly larger effect on the mechanical properties of the nucleus, which are crucial for protecting the nucleus from cytoskeletal forces, enabling cell migration through confined spaces, and contributing to cellular mechanotransduction. The molecular mechanism underlying this difference has remained unresolved. Here, we applied custom-developed biophysical and proteomic assays to lamin-deficient cell lines engineered to express specific full-length lamin proteins, lamin truncations, or chimeras combining domains from A- and B-type lamins, to systematically determine their contributions to nuclear mechanics. We found that although all expressed lamins contribute to the biophysical properties of the nuclear interior and confer some mechanical stability to the nuclear envelope, which is sufficient to protect the nuclear envelope from small cell-intrinsic forces and ensure proper positioning of nuclear pores, A-type lamins endow cells with a unique ability to resist large forces on the nucleus. Surprisingly, this effect was conferred through the A-type lamin rod domain, rather than the head or tail domains, which diverge more substantially between A- and B-type lamins and play important roles in lamin network formation. Collectively, our work provides an improved understanding of the distinct functions of different lamins in mammalian cells and may also explain why mutations in the A-type lamin rod domain cause more severe muscle defects in mouse models than other mutations.
Lin, J.; Agote-Aran, A.; Liao, Y.; Schoch, R.; Ronchi, P.; Cochard, V.; Zhu, R.; Kleiss, C.; Ruff, M.; Chevreux, G.; Schwab, Y.; Klaholz, B.; Sumara, I.
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Nuclear pore complexes (NPCs) enable nucleocytoplasmic transport. While NPCs primarily localize to the nuclear envelope (NE), they also appear in cytoplasmic endoplasmic reticulum (ER) membranes called annulate lamellae (AL). Though discovered in the mid-20th century, ALs function and biogenesis remain unclear. Previously considered exclusive to embryonic and malignant cells, we find AL in somatic mammalian cells. Under normal conditions, AL store pre-assembled NPCs (AL-NPCs) that integrate into the NE during G1 to support nuclear expansion. Upon pathological stimuli, AL transfer to the NE is impaired, leading to their cytoplasmic accumulation. RanBP2 (Nup358) is essential for AL biogenesis, with its phenylalanine-glycine (FG) repeats promoting AL-NPC scaffold oligomerization. ER-associated Climp63 (CKAP4) directs AL-NPCs to ER sheets and the NE. This AL-driven nuclear pore formation is complementary to the canonical routes, constituting a distinct NPC assembly pathway. Our work uncovers the biogenesis mechanism of AL and the nuclear function of this key cellular organelle.
Bozic, M.; Lim, T. E.; Kemp, A. J.; Winnington-Ingram, K.; Murphy, L.; Dhir, A.; Wheeler, A.; Jimenez-Moreno, N.; Wilkinson, S.
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Acute lysosome damage triggers the endolysosome damage response (ELDR) in order to co-ordinate vesicle repair or removal by autophagy (lysophagy). However, it is unclear whether persistent damage, as occurs after chronic challenge to lysosome integrity, triggers wider cellular responses. Here, we show that longitudinal treatment with a lysosomotropic cancer therapeutic, the CDK4/6 inhibitor Palbociclib, invokes chronic lysosome damage in breast and lung cancer cells. Autophagy ameliorates but does not avert this phenotype, which persists over days. Damaged lysosomes form contacts with mitochondria, which correlates with mitochondrial stress and cytosolic efflux of immunostimulatory mitochondrial nucleic acids. Importantly, mitochondrial nucleic acid release is necessary for the anti-cancer interferon response to Palbociclib. In conclusion, chronic lysosome damage rewires cellular signalling responses in a mitochondrion-dependent manner and this effect should be considered when assessing the cellular actions of cancer therapeutics. Summary statementBozic et al suggest that lysosome damage can trigger interferon responses dependent upon mitochondrial release of immunogenic nucleic acid. This is associated with damaged lysosome-mitochondrion contacts and is prevented by autophagy.
Lewis, R.; Sinigiani, V.; Koos, K.; Bersaglieri, C.; Ashiono, C.; Santoro, R.; Ciaudo, C.; Horvath, P.; Sharma, P.; Kutay, U.
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In most eukaryotic cells, euchromatin is localized in the nuclear interior, whereas heterochromatin is enriched at the nuclear envelope (NE). This conventional chromatin organization is established by heterochromatin tethering to the NE, however its importance for cellular homeostasis is largely unexplored. Peripheral heterochromatin localization relies on redundant NE-tethering systems. One tether is constituted by the lamin B receptor (LBR) in mammals, but the enigmatic nature of the other tethers has hampered functional analyses. Here we demonstrate that the downregulation of abundant, ubiquitous NE proteins can induce the global detachment of heterochromatin from the NE. Among these factors, we identify LBR and LAP2 as major players in bulk heterochromatin attachment to the NE in pluripotent and differentiated mammalian cells. Their loss leads to repositioning of heterochromatin to the nuclear interior, changes in chromatin accessibility, deregulation of gene expression including activation of antiviral innate immunity, and defects in cell fate determination.
Pessina, P.; Nevo, M.; Shi, J.; Kodali, S.; Casas, E.; Cui, Y.; Richards, A. L.; Park, E. J.; Chen, X.; Levin-Ferreyra, F.; Stevenson, E.; Krogan, N. J.; Swaney, D. L.; Ying, Q.; Chen, Q.; Brumbaugh, J.; Di Stefano, B.
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Recent studies have emphasized the significance of biomolecular condensates in modulating gene expression through RNA processing and translational control. However, the functional roles of RNA condensates in cell fate specification remains poorly understood. Here, we profiled the coding and non-coding transcriptome within intact biomolecular condensates, specifically P-bodies, in diverse developmental contexts, spanning multiple vertebrate species. Our analyses revealed the conserved, cell type-specific sequestration of untranslated RNAs encoding key cell fate regulators. Notably, P-body contents did not directly reflect active gene expression profiles for a given cell type, but rather were enriched for translationally repressed transcripts characteristic of the preceding developmental stage. Mechanistically, microRNAs (miRNAs) direct the selective sequestration of RNAs into P-bodies in a context-dependent manner, and perturbing AGO2 or alternative polyadenylation profoundly reshapes P-body RNA content. Building on these mechanistic insights, we demonstrate that modulating P-body assembly or miRNA activity dramatically enhances both activation of a totipotency transcriptional program in naive pluripotent stem cells as well as the programming of primed human embryonic cells towards the germ cell lineage. Collectively, our findings establish a direct link between biomolecular condensates and cell fate decisions across vertebrate species and provide a novel framework for harnessing condensate biology to expand clinically relevant cell populations.
Gemble, S.; Budzyk, M.; Simon, A.; Lambuta, R.; Weiss, N.; Forest, A.; Miroshnikova, Y.; Scotto Di Carlo, F.; Marthiens, V.; Verdel, C.; Fang, J.; Desdouets, C.; Wickstrom, S.; Ciriello, G.; Oricchio, E.; Almouzni, G.; Basto, R.
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Whole-genome duplication (WGD), leading to polyploidy can arise in physiological and pathological contexts1-5. WGD can occur via non-canonical cell cycles such as mitotic slippage, cytokinesis failure or endoreplication1,3. Whether the routes to WGD influence the behaviour of the resulting polyploid cells remains unclear. Here, we compared these routes under both physiological and non-physiological conditions. Remarkably, only mitotic slippage led to widespread nuclear abnormalities defined by highly variable nuclear deformations that we termed nuclear instability. Mechanistically, we found that these nuclei were softer - due to high levels of histone 3 phosphorylation in G1 altering chromatin compaction - and thus more vulnerable to microtubule-driven deformations. The resulting nuclear instability leads to local nuclear reorganisation and changes in 3D genome organisation impacting ultimately gene expression. Importantly, we observed similar nuclear instability in megakaryocytes, which are physiological polyploid cells that we show here to be generated by mitotic slippage, providing a molecular mechanism for their atypical nuclear architecture6,7. In striking contrast, nuclear shape was stable in different physiological polyploid cells generated by cytokinesis failure and endoreplication. Overall, our findings highlight that the route towards WGD matters and that mitotic slippage uniquely destabilizes nuclear architecture, with implications for both physiology and disease.
Kenny, S.; Chen, X.; Ge, L.; Xu, K.
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Autophagy is an essential physiological process by which eukaryotic cells degrade and recycle cellular materials. Although the biochemical hierarchies of the mammalian autophagy pathway have been identified, questions remain regarding the sequence, subcellular location, and structural requirements of autophagosome formation. Here, we characterize the structural organization of key components of the mammalian autophagic initiation machinery at [~]20 nm spatial resolution via three-color, three-dimensional super-resolution fluorescence microscopy. We thus show that upon cell starvation, FIP200, a large structural protein of the ULK1 complex with no direct yeast homolog, scaffolds the formation of cup-like structures located at SEC12-enriched remodeled ER-exit sites prior to LC3 lipidation. This cup scaffold, then, provides a structural asymmetry to enforce the directional recruitment of downstream components, including the Atg12-Atg5-Atg16 complex, WIPI2, and LC3, to the cup inside. Moreover, we provide evidence that the early autophagic machinery is recruited in its entirety to these cup structures prior to LC3 lipidation, and gradually disperses and dissociates on the outer face of the phagophore membrane during elongation. We thus shed new light on the physical process of mammalian autophagic initiation and development at the nanometer-scale.
Day, J. H.; Farrell, J. D.; Yang, D.; Neira, F. N.; Allen, E. A.; Byrne, A. M.; Leksa, N. C.; Klinger, K. W.; de Nola, G.; Al-Jazrawe, M.; Boyer, L. A.
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Quantitative image analysis of subcellular organization requires sufficient spatial resolution to resolve individual organelles and sample size to capture heterogeneity both within cells and between cells. Existing imaging approaches often force a tradeoff between spatial resolution and throughput, limiting the ability to measure organelle-level phenotypes across cell populations. Here, we establish high-throughputs expansion microscopy (HiExM) as a scalable pipeline for single-organelle analysis. As a benchmark, we focus on mapping late endosomes and lysosomes (LELs), a heterogeneous organelle class whose small size, dense intracellular distribution, and functional diversity make it difficult to quantify accurately using conventional light microscopy. HiExM increases effective spatial resolution while preserving compatibility with large-scale image acquisition, enabling robust segmentation and quantitative profiling of individual LELs across large cell populations. Using this pipeline, we identified differences in intracellular trafficking behavior among anti-transferrin receptor antibodies that could not be captured by conventional colocalization analysis alone. We further integrate spatial and morphological features with learned image-based representations that can define relationships between LEL morphology and subcellular position as well as how these relationships respond to perturbations. Together, our work establishes HiExM as a generalizable platform for scalable single-organelle profiling, enabling an analytical framework for quantifying discrete organelles across cells and conditions.