bims-cebooc Biomed News
on Cell biology of oocytes
Issue of 2026–08–23
six papers selected by
Gabriele Zaffagnini, Universität zu Köln



  1. bioRxiv. 2026 Aug 03. pii: 2026.07.31.742119. [Epub ahead of print]
      Spatial patterning of mRNA translation is a fundamental process in early embryogenesis. Existing RNA translation profiling methods lack subcellular spatial resolution at the single-molecule level, limiting our understanding of spatial RNA biology in embryogenesis. To address this, we profiled the spatial translatome of intact mouse embryos at near-genomic scale by adapting RIBOmap and incorporating multiplexed organelle staining. In oocytes, 2-cell and 4-cell embryos, we systematically analyzed RNA translation across three spatial scales: organelle, subcellular, and intercellular. We found that functionally related genes exhibit spatially and temporally controlled translation patterns near distinct organelles. Using Harmonics, a graph signal processing framework, we demonstrate that embryo asymmetry emerges at the first cell division and is amplified at later stages. This work paves the way for comprehensively investigating the fundamental spatial post-transcriptional regulation at the earliest moments of mammalian life.
    DOI:  https://doi.org/10.64898/2026.07.31.742119
  2. bioRxiv. 2026 Aug 08. pii: 2026.08.04.742908. [Epub ahead of print]
      The small ubiquitin-like modifier SUMO regulates key events of meiosis, including pairing and crossing over between homologous chromosomes. Auto-sumoylation of the SUMO E2-conjugating enzyme UBC9 at lysine 14 alters its substrate selectivity in vitro, but the role of this modification in vivo is unknown. Here, we show that UBC9-K14 auto-sumoylation helps coordinate meiotic prophase and is important for maintenance of the ovarian reserve. Ubc9K14R/K14R knock-in mice show a variety of defects in meiotic prophase I, including altered assembly of DNA strand-exchange complexes, delayed and defective homolog synapsis, and unstable crossover recombination complexes. In spermatocytes, these defects are associated with reduced efficiency of crossing over between the X and Y chromosomes. Oocytes from Ubc9K14R/K14R females show related but distinct defects in recombination and synapsis. Moreover, maintenance of the primordial follicle reserve is defective in Ubc9K14R/K14R females, and their fecundity is reduced. Finally, we identify the meiosis-specific homolog-axis protein SYCP3 as a direct target of UBC9 in vitro and show that SYCP3 modification is strongly stimulated by K14 auto-sumoylation. We infer that auto-sumoylation enables UBC9 to modify a subset of targets in vivo, helping to coordinate key events of meiotic prophase and enhance the survival of primordial follicles to maximize fecundity.
    DOI:  https://doi.org/10.64898/2026.08.04.742908
  3. Hum Reprod. 2026 Aug 20. pii: deag134. [Epub ahead of print]
       STUDY QUESTION: Which proteins underpin oocyte developmental competence, as modelled by oocytes of variable competence matured in vivo or matured in vitro under different conditions (capacitation in vitro maturation (CAPA-IVM) or standard IVM)?
    SUMMARY ANSWER: Significant differences in the global proteome were observed in both oocytes and their corresponding cumulus cells depending on the mode of oocyte maturation, with key variations in eukaryotic translation, autophagy, and endocytosis pathways within oocytes, and changes in reactive oxygen species detoxification and serine biosynthesis in cumulus cells.
    WHAT IS KNOWN ALREADY: Within the ovarian follicle, mammalian oocytes must acquire the necessary molecular machinery to support successful fertilization and embryonic development. Close contact with the surrounding cumulus cells ensures coordinated nuclear and cytoplasmic maturation of the oocyte, along with the accumulation of proteins stored within the oocyte in cytoplasmic lattices and endo-lysosomal vesicular assemblies.
    STUDY DESIGN, SIZE, DURATION: This basic science study utilized a mouse model to assess proteomic changes across three oocyte competence models. Key proteins identified in mouse oocytes were also assessed in discarded immature human germinal vesicle (GV) oocytes and MII oocytes following rescue-IVM. Three oocyte maturation methods were tested: (i) in vivo maturation, (ii) CAPA-IVM, and (iii) standard IVM. In vivo maturation served as a positive control group, whereby metaphase II (MII) mature oocytes were collected from mice stimulated with pregnant mare serum gonadotropin (PMSG) and triggered with hCG, simulating full ovarian stimulation. For the IVM groups, immature cumulus-oocyte complexes (COCs) were collected from mildly stimulated (23 h PMSG) mice. For the standard IVM group, immature COCs were matured in media containing amphiregulin and epiregulin for 18 h. For the CAPA group, COCs were held for 24 h in pre-IVM conditions in the presence of c-type natriuretic peptide (CNP), oestradiol, insulin, and FSH, and then matured via IVM in media containing FSH, amphiregulin, and epiregulin. Four biological replicates were performed for mouse proteomics experiments; three biological replicates were performed for mouse immunocytochemistry experiments; and six replicates were performed for embryology experiments.
    PARTICIPANTS/MATERIALS, SETTINGS, METHODS: Four- to six-week-old C57BL/6JAusb mice were used for all mouse experiments. Embryology outcomes were used to confirm the variation in oocyte developmental competence between the three maturation groups. For the in vivo, CAPA and IVM groups, mature MII COCs were collected and separated into oocytes and cumulus cells. Oocytes and cumulus cells were subjected to mass spectrometry and bioinformatic analysis was performed using Proteome Discoverer and Ingenuity Pathway Analysis, with data validated by immunofluorescence. To assess conservation of proteins in human oocytes, 49 oocytes were collected from 36 patients following ART cycles and subject to immunofluorescence. Rescue-IVM was also performed with half of the human oocyte cohort to obtain MII oocytes.
    MAIN RESULTS AND THE ROLE OF CHANCE: Proteomic profiling (at least two peptides per protein) identified around 1600 proteins in mouse oocytes and 3100 proteins in mouse cumulus cells across all three treatment groups. Differential expression analysis and pattern analysis collectively revealed a signature of proteins that were consistently differentially expressed between in vivo and in vitro oocyte maturation systems (log2FC of ± 1 and a P-value ≤ 0.05). These subsets of proteins were mapped to biological processes including eukaryotic translation, autophagy, and endocytosis pathways within oocytes. Orthogonal validation of clathrin, ribosomal protein L24, and eukaryotic initiation factor 2A supported the proteomic findings, and their expression was conserved in human GV and MII oocytes. Changes in reactive oxygen species detoxification and serine biosynthesis were observed in mouse cumulus cells, with fluorescence intensity changes in ferredoxin-1 and phosphoglycerate dehydrogenase supporting the dysregulation of cumulus cell processes during IVM.
    LARGE SCALE DATA: The mass spectrometry data are available via ProteomeXchange with identifier PXD073269.
    LIMITATIONS, REASONS FOR CAUTION: The foundational mechanisms of oocyte developmental competence remain elusive, particularly in humans where MII oocytes are heterogenous in quality within the same stimulation cycle and patient. Limitations in this study include the detection and proteome coverage of poorly expressed proteins, the inability to check molecular conservation in human CAPA-IVM and IVM oocytes, the use of fetuin in the mouse in vitro systems, and the potential source of keratin proteins in oocyte samples, and these factors must all be carefully considered. C57Bl6/J mice were used as the model species, allowing precise control over differing models of oocyte quality and capacity to analyse large numbers of oocytes. However, care is required when interpreting the significance of these findings in mice to mechanisms regulating human oocyte quality. Nonetheless, the in vivo stimulation and both IVM protocols used in this study are clinically relevant and developmentally matched. This study has also not addressed oocyte developmental competence in gonadotropin-free IVM oocytes, which is now a clinical reality.
    WIDER IMPLICATIONS OF THE FINDINGS: This study adds to the wider literature indicating that oocytes matured in vitro, either through CAPA-IVM or IVM, are unable to achieve the developmental competence rates observed with in vivo stimulation. Through examination of the global proteome in oocytes, molecular pathways including eukaryotic translation, autophagy, and endocytosis were dysregulated in in vitro oocytes. Recent findings have revealed the critical role of these pathways to developmental competence in the context of in vivo development. In cumulus cells, changes in reactive oxygen species detoxification and serine biosynthesis were observed, adding to the extensive knowledge around metabolic activity in cumulus cells as a critical facet of oocyte quality. Combined, these data suggest that the necessary processes of protein storage and degradation in oocytes and metabolism in cumulus cells constitute important components of oocyte quality. These processes appear suboptimal in current IVM systems, providing a future research direction to optimize IVM protocols with consideration to these protein pathways.
    FUNDING: This study was funded by a National Health and Medical Research Council Investigator Fellowship (APP1023210) awarded to R.B.G. and by a gift from Open Philanthropy.
    DISCLOSURES: R.B.G. is a consultant to Dioseve Inc. L.E.W. is a co-founder, shareholder, director, and advisor of Jumpstart Fertility Inc. L.E.W. is also an advisor and shareholder in EdenRoc Sciences, the parent company of Metro Biotech NSW and Metro Biotech, and in Life Biosciences LLC and its daughter companies. His UNSW Industry Scientia position is partly funded by Proto Axiom. All other authors have no competing interests to disclose.
    Keywords:  assisted reproductive technologies; capacitation-IVM (CAPA-IVM); cumulus cells; developmental competence; folliculogenesis; in vitro maturation (IVM); mass spectrometry; proteomics
    DOI:  https://doi.org/10.1093/humrep/deag134
  4. Cell Discov. 2026 Aug 18. pii: 60. [Epub ahead of print]12(1):
      Asymmetric transcription of noncoding RNA LincGET is currently recognized as the earliest event regulating the first cell fate decision in mammalian embryogenesis. However, whether key protein factors modulate this process remains elusive. Here, we identify RBBP7 as the earliest protein factor regulating developmental cell fate in mammals. Loss of RBBP7 drives cells towards ICM lineage. In mouse late 2-cell embryos, unequal translation of Rbbp7 contributes to its asymmetric protein distribution, which subsequently induces inversed asymmetric histone acetylation H3K9ac by interaction with HDAC1, thereby promoting cell differentiation. Interestingly, RBBP7 and LincGET exhibit a consistent asymmetric tendency but direct different cell fates; depletion or overexpression of both Rbbp7 and LincGET restored the cell fate bias, suggesting a coordinated regulatory mechanism during initial lineage specification. In summary, our study reveals RBBP7 as a new protein factor and elucidates its role in the first cell fate decision.
    DOI:  https://doi.org/10.1038/s41421-026-00912-6
  5. Cell Stem Cell. 2026 Aug 17. pii: S1934-5909(26)00273-0. [Epub ahead of print]
      Ovarian aging may contribute to systemic aging via the ovarian-systemic axis. This review outlines intrinsic ovarian cellular defects such as genomic instability, epigenetic shifts, and mitochondrial and proteostasis damage, which may trigger senescence-associated secretory phenotype (SASP)-related inflammaging, fibrosis, and distal pro-aging signals. Ovarian-derived endocrine disruption, especially estrogen decline, broadly affects bodily physiology. We summarize emerging multimodal interventions, including senolytics, metabolic reprogramming, regenerative medicine, and systemic approaches, and we discuss their dual potential to preserve fertility and intercept ovarian contributions to systemic aging. Ovarian aging is possibly associated with female age-related multimorbidity. Ovary-targeted prevention may extend healthspan, as assessed by combined reproductive and systemic clinical evaluations.
    Keywords:  healthspan extension; inflammaging; interventions; ovarian aging; ovarian-systemic axis
    DOI:  https://doi.org/10.1016/j.stem.2026.07.013
  6. bioRxiv. 2026 Aug 07. pii: 2026.08.06.743297. [Epub ahead of print]
      Direct experimental analysis of the mammalian oviduct is constrained by limited tissue access and the short lifespan of ex vivo preparations. Extracellular matrix-embedded three-dimensional epithelial organoids provide longer-term in vitro models. However, their inward-facing apical surface and the absence of supporting stromal cells limit physiological studies of the oviduct, including ciliary activity and maternal-embryonic interactions. Here, we provide a step-wise protocol detailing the generation of mouse and human oviductal assembloids in which epithelial cells form an outward-facing (apical-out) layer around a stromal core. Epithelial and stromal cells from adult mouse oviducts or human Fallopian tubes are isolated, expanded separately, and subsequently aggregated in a rotational culture system. The protocol also outlines morphological and immunostaining criteria for confirming cellular organization, whole-mount detection of external cilia, measurement of ciliary beat frequency, and co-culture of mouse assembloids with preimplantation embryos. Mouse and human assembloids retained epithelial and stromal identity and displayed cilia at the accessible outer surface. In a proof-of-concept experiment, embryos co-cultured with the assembloids developed to blastocysts at a rate similar to that of in vivo -derived blastocysts. This reductionist system provides a straightforward and tractable model to investigate oviduct physiology and embryo-maternal communication while allowing direct manipulation and observation of the epithelial interface.
    Summary: The protocol for generating mouse and human oviductal assembloids by combining epithelial and stromal cells for studying oviductal function in an in vitro setting.
    DOI:  https://doi.org/10.64898/2026.08.06.743297