bims-cebooc Biomed News
on Cell biology of oocytes
Issue of 2026–08–16
eleven papers selected by
Gabriele Zaffagnini, Universität zu Köln



  1. Nat Aging. 2026 Aug;6(8): 1580-1591
      Female fertility depends on a finite pool of oocytes that depletes during aging1,2, yet the spatiotemporal dynamics of this depletion remain poorly understood. Traditional methods obscure the three-dimensional architecture of the ovary, limiting quantitative insights. Here we combine light-sheet microscopy, artificial intelligence-driven segmentation and mathematical modeling to map over 85,000 oocytes in whole ovaries across the reproductive lifespan in mouse. We find that newly activated oocytes represent a fixed fraction of the total oocyte pool despite an age-related decline in oocyte numbers. Spatial analysis revealed that oocytes are enriched along the lateral ovarian axis, and local oocyte density positively correlates with activation. We also uncover a bimodal distribution of oocyte sizes, suggesting a bottleneck during oogenesis. Finally, a differential equation-based model captures the kinetics of oocyte activation and loss. Our findings establish a quantitative framework for understanding ovarian aging and suggest that an organ-scale regulatory mechanism coordinates the age-related decline in oocyte numbers.
    DOI:  https://doi.org/10.1038/s43587-026-01178-z
  2. Aging Cell. 2026 Aug;25(8): e70668
      Female reproductive aging is associated with ovarian functional decline, leading to infertility. During aging, biochemical and biophysical changes in the ovarian extracellular matrix (ECM) occur, yet how these properties affect follicle growth and oocyte quality remains poorly understood. Here we describe spatiotemporal changes in the ovarian ECM with age using mass spectrometry, immunohistochemistry, and nanoindentation. While follicle stiffness remains unchanged, stromal matrix remodeling is associated with a ~2.5-fold increase in stiffness. To understand how this increase in stromal stiffness affects age-related follicular dysfunction, isolated young follicles were cultured in soft and stiff hydrogels mimicking young and aged ovarian stromal stiffness, respectively. Higher stiffness lead to a decrease in granulosa cell (GC) proliferation, oocyte quality, and GC-oocyte interactions mediated via transzonal projections (TZPs). RNA-seq revealed TGF-β signaling as a major pathway affected by stiffness, and activation of TGF-β signaling through Smad7 silencing rescued TZP formation and oocyte quality in stiff matrix. These findings provide mechanistic insight into how changes in ECM mechanics contribute to ovarian aging functional decline and reveal potential therapeutic targets to counter fertility loss associated with tissue aging and fibrosis.
    Keywords:  TGF‐β; infertility; ovarian stroma; stiffness; transzonal projections
    DOI:  https://doi.org/10.1111/acel.70668
  3. Development. 2026 08 01. pii: dev205442. [Epub ahead of print]153(15):
      Programmed cell death (apoptosis) during oogenesis is conserved across metazoans and linked to regulation of oocyte number and quality. In oogenic germlines, the removal of developing oocytes by apoptosis ensures that oocytes do not contain DNA damage or multiple nuclei. Beyond this chromatin-quality control assurance role, it was unknown how apoptosis contributes to oocyte quality. We used the nematode Caenorhabditis elegans to study the consequences of loss of apoptosis on oogenesis. Blocking apoptosis reduced fecundity in hermaphrodites at peak fertility and caused germline architectural defects, such as abnormal rachis morphology and perturbed arrangement and distribution of oogenic germline compartments. Our results suggest that the loss of germline apoptosis arises due to lack of sufficient space for, and reduced cytoplasmic flows into, developing oogonia. In support of this idea, oocytes and embryos are abnormally small and exhibit low viability in animals unable to execute apoptosis. These findings suggest that, in addition to preventing ploidy defects during oogenesis, apoptosis contributes to fertility by preserving the homeostatic germline structure required for the fidelity of oogenesis.
    Keywords:   C. elegans; Apoptosis; Germline architecture; Infertility; Oogenesis
    DOI:  https://doi.org/10.1242/dev.205442
  4. J Cell Biol. 2026 Oct 05. pii: e202511199. [Epub ahead of print]225(10):
      Oocyte meiotic spindles must achieve bipolarity and segregate chromosomes in the absence of centrosomes. Here, we use high-resolution immunofluorescence microscopy and live imaging to investigate the differential contributions of β-tubulin isotypes (TBB-1 and TBB-2) to assembly and function of acentrosomal spindles in Caenorhabditis elegans oocytes. By combining strains with altered β-tubulin isotype composition with mutations affecting microtubule-crosslinking motor KLP-18 and/or mutations affecting katanin-mediated microtubule severing, we show that TBB-1 and TBB-2 make distinct contributions to promoting spindle bipolarity. Further, by measuring multiple spindle features in wild-type and β-tubulin isotype substitution strains, we reveal contributions of isotype composition to spindle morphology, kinetics of anaphase chromosome separation, and maintenance of spindle structural integrity under stress. Together, our data support a model in which β-tubulin isotype composition helps to maintain a balance between microtubule-crosslinking and severing activities during oocyte meiosis. We further propose that this balance is crucial for establishing spindle bipolarity, maintaining spindle structures, and modulating the dynamics of chromosome separation.
    DOI:  https://doi.org/10.1083/jcb.202511199
  5. Genetics. 2026 Aug 12. pii: iyag213. [Epub ahead of print]
      Sexual reproduction relies on meiotic recombination and the accurate segregation of homologous chromosomes to generate viable, genetically diverse gametes. While the molecular mechanisms of recombination and chromosome segregation are well studied, the upstream regulatory cues that drive expression of key meiotic genes remain poorly understood, especially in metazoans. Emerging evidence suggests that post-transcriptional regulation plays a central role in initiating and coordinating the meiotic program in both fruit flies and mammals. Here, we identify the RNA-binding protein Ataxin-2 (Atx2) as a crucial regulator of meiosis in Drosophila melanogaster. We show that Atx2 positively regulates meiotic factors, especially components of the synaptonemal complex (SC), a structure essential for pairing, recombination and segregation of homologous chromosomes. In Atx2-depleted germ cells, SC component mRNA and protein levels are markedly reduced, leading to defective SC assembly and maintenance. Consequently, homologous chromosomes fail to pair properly, which is essential for proper homolog segregation and the prevention of aneuploidy. These findings uncover Atx2 as a key regulator of the SC and highlight an underappreciated layer of gene regulation essential for accurate meiotic chromosome segregation and fertility.
    Keywords:  Ataxin-2; Drosophila; germline; meiosis; oogenesis; synaptonemal complex
    DOI:  https://doi.org/10.1093/genetics/iyag213
  6. Elife. 2026 Aug 13. pii: RP108371. [Epub ahead of print]14
      During zygotic genome activation in Drosophila, broad domains of Polycomb-modified chromatin are rapidly established across the genome. Here, we investigate the spatial and temporal dynamics by which Polycomb group (PcG) histone modifications, H3K27me3 and H2Aub, emerge during early embryogenesis. Using ChIP-seq and live imaging of CRISPR-engineered GFP-tagged PcG components, we show that PRC2-dependent H3K27me3 accumulates adjacent to a subset of E(z)-bound prospective Polycomb response elements (PREs) beginning in nuclear cycle 14 (NC14), with patterns indicative of nucleation followed by spreading. Surprisingly, PRE-binding factors Pho, Combgap, and GAGA-factor are excluded from interphase nuclei prior to NC10, despite nuclear localization of E(z) throughout early interphases. Loss-of-function studies further demonstrate that GAGA-factor is largely dispensable for PcG domain establishment, whereas the pioneer factor Zelda is required for proper deposition of H3K27me3 and H2Aub at a subset of Polycomb domains. The role of Zelda at Polycomb domains is context-dependent; a subset of targets requires Zelda not for E(z) recruitment, but instead to license an E(z)-loaded PRE to deposit H3K27me3. Our findings support a model where licensing of PcG domains is an initial step in the regulatory processes governing Polycomb-regulated developmental genes.
    Keywords:  D. melanogaster; chromatin; chromosomes; developmental biology; embryonic development; epigenetics; gene expression; polycomb
    DOI:  https://doi.org/10.7554/eLife.108371
  7. J Cell Sci. 2026 Aug 10. pii: jcs.264992. [Epub ahead of print]
      TRIM28, a member of the tripartite motif (TRIM) family, functions as a transcriptional coregulator involved in maintaining genome stability during mitosis. However, transcriptional activity is barely detectable during oocyte meiotic maturation. In this study, we explored the role of TRIM28 in mouse oocytes and found that it was constitutively expressed in the early stages of oocyte meiotic maturation, with predominant nuclear localization in germinal vesicle (GV)-stage oocytes. TRIM28 depletion caused defective germinal vesicle breakdown (GVBD), but oocytes that successfully underwent GVBD displayed unimpaired first polar body (PB1) extrusion. TRIM28 depletion impaired CDK1 activity and reduced cyclin B1 levels, leading to a delay in the G2/M transition. This delay may be attributed to altered levels of HDAC2-mediated H4K12ac and H3K4me2-modulated H3K9me2 in nonsurrounded nucleolus (NSN)-type GV oocytes, which decreased transcription activity. Additionally, TRIM28-depleted oocytes exhibited elevated γ-H2A.X expression, accompanied by aberrant expression of CHK1 and CHK2, as well as dysregulated expression of RAD51, which were collectively contributed to GVBD failure in mouse oocytes. In conclusion, our findings indicate that TRIM28 participates in the regulation of the G2/M transition during mouse oocyte meiotic maturation, acting through the modulation of histone modifications and DNA damage repair.
    Keywords:  G2/M transition; Meiosis; Oocyte; TRIM28; Transcription
    DOI:  https://doi.org/10.1242/jcs.264992
  8. EMBO J. 2026 Aug 10.
      Cytoplasmic lattices (CPLs) are filamentous assemblies essential for mammalian embryonic development. They are known to regulate organelle organization, spindle assembly, and protein homeostasis, but their molecular functions remain unclear. Here, we develop a strategy combining cryo-focused ion beam milling and cryo-electron tomography to resolve macromolecular complexes directly in mammalian embryos. Using this approach, we determine the in situ structure of cytoplasmic lattices within 6/8-cell mouse embryos at ~4.7 Å resolution. CPL filaments are built from multiple copies of at least fourteen proteins arranged into a ~4.5 MDa repeating unit. The repeat contains a central cavity that is open at the back and lined with multiple FBXW-SKP1 complexes and three modules, each containing the E2 ubiquitin-conjugating enzyme UBE2D and the E3 ligase UHRF1. We resolve two CPL states: one is consistent with a ubiquitin-charged UBE2D, where ubiquitin is held in an open, inactive conformation by binding the scaffold protein PADI6; the second lacks discernible ubiquitin density and shows structural changes compatible with ubiquitin becoming available for transfer. Our findings support a model in which CPLs function as large ubiquitin ligase assemblies during early embryonic development.
    DOI:  https://doi.org/10.1038/s44318-026-00895-w
  9. Front Cell Dev Biol. 2026 ;14 1889968
       Introduction: Polycystic ovary syndrome (PCOS) is the leading cause of anovulatory infertility and is consistently associated with poor oocyte developmental competence, yet the molecular basis of this qualitative defect remains poorly defined. Because the germinal vesicle (GV)-to-metaphase II (MII) transition occurs under global transcriptional silence and depends entirely on the post-transcriptional remodeling of pre-stored maternal mRNAs, we hypothesized that PCOS may selectively disrupt this regulatory program rather than impose a constitutive transcriptomic lesion.
    Methods: To test this, we established a DHEA-induced PCOS mouse model, validated by estrous acyclicity, hyperandrogenism, and polycystic ovarian morphology, and performed parallel Smart-seq2 profiling of oocytes at both the GV and MII stages. Integrated analyses combining differential expression, maturation trajectory modeling, weighted gene co-expression network analysis (WGCNA), and protein-protein interaction mapping, together with independent RT-qPCR validation of four hub transcripts, were used to dissect stage-specific transcriptomic dynamics.
    Results: Control and PCOS oocytes were largely similar at the single-gene level at the GV stage (35 differentially expressed genes), with subtle network-level perturbations detectable only by co-expression analysis, but diverged dramatically upon meiotic maturation (292 differentially expressed genes), with the majority of dynamic transcripts diverted into pathological trajectories. This maturation-coupled collapse manifested as a dual-layered post-transcriptional failure: aberrant retention of maternal mitochondrial OXPHOS transcripts (Sdhb, Cox6a1) reflecting impaired mRNA clearance, and concurrent hyper-depletion of oocyte identity genes (Figla, Zp3). Mechanistically, Lsm14b, an essential P-body assembly factor, failed to execute its physiological upregulation during the GV-to-MII transition in PCOS oocytes (1.49-fold induction in PCOS versus 9.63-fold in controls; an ∼6.5-fold reduction), providing a proximal explanation for the global decay-machinery failure. RT-qPCR independently confirmed stage-specific dysregulation, including ∼34-fold excessive depletion of Figla exclusively at the MII stage. Western blot analysis of Lsm14b, Sdhb, and Figla proteins in GV and MII oocytes confirmed that all three key transcriptomic findings are recapitulated at the protein level, establishing that the mRNA-level dysregulation has functional consequences for protein output.
    Discussion: These findings reframe PCOS-associatedoocyte dysfunction as a stage-specific failure of post-transcriptional remodeling competence and identify the Lsm14b-P-body axis as a candidate molecular target for improving oocyte quality in assisted reproduction.
    Keywords:  GV-to-MII transition; Lsm14b; maternal mRNA clearance; oocyte maturation; polycystic ovary syndrome; processing body; transcriptomics
    DOI:  https://doi.org/10.3389/fcell.2026.1889968
  10. J Cell Sci. 2026 Aug 13. pii: jcs.264997. [Epub ahead of print]
      Epithelial morphogenesis and homeostasis depend on dynamic remodeling of cell-cell junctions. Tricellular junctions (TCJs) control epithelial permeability and plasticity, yet how TCJs are remodeled remains unclear. In the Drosophila ovarian follicular epithelium, TCJs open transiently in a process called patency to allow passage of yolk proteins for uptake by the oocyte. Here we investigated how a TGF-β signaling gradient represses patency along the follicular epithelium. We show that TGF-β signaling blocks patency cell-autonomously by strengthening E-Cadherin (E-Cad)-based adhesion through inducing E-Cad transcription and preventing E-Cad removal from vertices. Elevated E-Cad levels alone are not sufficient to block patency, implying that additional TGF-β-dependent mechanisms stabilize E-Cad at vertices. We identify p120-catenin upregulation as a mechanism that may contribute to strengthened adhesion. In parallel, TGF-β signaling activates myosin II through Rho-Rok signaling. However, myosin II activity is dispensable for TGF-β-mediated patency suppression. Thus, our findings suggest that TGF-β signaling controls TCJ remodeling in follicle cells primarily by reinforcing E-Cad-based adhesion, disentangling the roles of adhesion and actomyosin contractility in maintaining TCJ integrity and revealing how a morphogen gradient spatially patterns epithelial permeability.
    Keywords:   Drosophila ; BMP; Cell vertex; E-Cadherin; Epithelium; Myosin II; TGF-β; Tricellular junction
    DOI:  https://doi.org/10.1242/jcs.264997
  11. Proc Natl Acad Sci U S A. 2026 Aug 11. 123(32): e2605383123
      The luminal epithelium of the oviduct exhibits ciliary beating oriented along the ovary-uterus (O-U) axis, driving oocyte transport toward the uterus. Longitudinal epithelial folds have also been proposed to facilitate this transport, but their functional contribution has not been tested because the mechanisms that orient these folds remain unclear. In this study, we found that in Vangl1gt/gt oviducts, which lack the core planar cell polarity (PCP) protein VANGL1, ciliary beating orientation is largely preserved, whereas longitudinal folds are disrupted. Despite fold malformation, Vangl1gt/gt females were able to produce offspring, suggesting that oocyte transport to the uterus can occur even when longitudinal fold alignment is disrupted. Polarized distributions of core PCP proteins at cell boundaries have been proposed to establish O-U-oriented ciliary beating and cell elongation, and theoretical work predicts that O-U-aligned cell elongation drives longitudinal fold formation. Consistent with this, our three-dimensional cell-shape analysis revealed a loss of cell elongation in Vangl1gt/gt oviducts. Moreover, although other core PCP proteins remained polarized, their polarity axes were misaligned with ciliary orientation in Vangl1gt/gt oviducts, suggesting that ciliary orientation can be guided by mechanisms that are at least partly independent of canonical core-protein polarity. Together, our findings help define the physiological contribution of longitudinal folds and illuminate how distinct polarity systems-fold orientation, cell elongation, and ciliary beating-are established and coordinated in the oviduct.
    Keywords:  mouse oviduct; oocyte transport; planar cell polarity; reproduction
    DOI:  https://doi.org/10.1073/pnas.2605383123