ReviewBiological reviews of the Cambridge Philosophical Society2023
Common mechanisms of physiological and pathological rupture events in biology: novel insights into mammalian ovulation and beyond.
Review in Biological reviews of the Cambridge Philosophical Society, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers.
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Who cites it
16 citing papers in PubMed, 21 citations in OpenAlex.
- Delayed ovulation in cattle: Physiological mechanisms, diagnostic approaches, and reproductive management strategies.Veterinary world · 2026Article
- CACNA2D1 promotes ovulation by regulating ovarian immune cell infiltration.BMC veterinary research · 2026Article
- Stage-Specific lncRNA-mRNA Co-Expression Networks in Chicken Granulosa Cells Across Hierarchical Follicle Development.Animals : an open access journal from MDPI · 2026Article
- Extracellular Matrix Remodeling and Matrix Metalloproteinases in Ovarian Function and Infertility.International journal of molecular sciences · 2026Review
- The potential role of NLRP3 inflammasome in integrating redox, metabolic, and inflammatory signals during follicular development: a hypothesis-driven redox-metabolic integrator framework.Frontiers in cell and developmental biology · 2026Review
- Microscale pressure measurements and optical coherence tomography reveal time-dependent biomechanical stages of ovulation in mice.iScience · 2025Article
- Inflammatory and Redox Mediators in Rat and Human Ovulation.International journal of molecular sciences · 2025Review
- Expression of New Gene Markers Regulating Protein Metabolism in Porcine Ovarian Granulosa Cells In Vitro.International journal of molecular sciences · 2025Article
- Neurotensin Regulates Primate Ovulation Via Multiple Neurotensin Receptors.Endocrinology · 2025Article
- Transcriptomic Response of the Ovarian Follicle Complex in Post-Vitellogenic Rainbow Trout to 17α,20β-Dihdroxy-4-pregnen-3-one In Vitro.International journal of molecular sciences · 2024Article
- Follicle-intrinsic and spatially distinct molecular programs drive follicle rupture and luteinization during ex vivo mammalian ovulation.Communications biology · 2024Article
- Novel imaging and biophysical approaches to study tissue hydraulics in mammalian folliculogenesis.Biophysical reviews · 2024Review
- Actomyosin contraction in the follicular epithelium provides the major mechanical force for follicle rupture duringProceedings of the National Academy of Sciences of the United States of America · 2024Article
- Ameliorative Effect of Lycopene on Follicular Reserve Depletion, Oxidative Damage, Apoptosis Rate, and Hormonal Profile during Repeated Superovulations in Mice.Veterinary sciences · 2024Article
- Three-Dimensionally Printed Agarose Micromold Supports Scaffold-Free Mouse Ex Vivo Follicle Growth, Ovulation, and Luteinization.Bioengineering (Basel, Switzerland) · 2024Article
- Zearalenone exposure differentially affects the ovarian proteome in pre-pubertal gilts during thermal neutral and heat stress conditions.Journal of animal science · 2024Article
Corrections and comments
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Authors and funding
3 authors at 1 institution in 1 country.
Funding
Abstract
Ovulation is a cyclical biological rupture event fundamental to fertilisation and endocrine function. During this process, the somatic support cells that surround the germ cell undergo a remodelling process that culminates in breakdown of the follicle wall and release of a mature egg. Ovulation is driven by known proteolytic and inflammatory pathways as well as structural alterations to the follicle vasculature and the fluid-filled antral cavity. Ovulation is one of several types of systematic remodelling that occur in the human body that can be described as rupture. Although ovulation is a physiological form of rupture, other types of rupture occur in the human body which can be pathological, physiological, or both. In this review, we use intracranial aneurysms and chorioamniotic membrane rupture as examples of rupture events that are pathological or both pathological and physiological, respectively, and compare these to the rupture process central to ovulation. Specifically, we compared existing transcriptomic profiles, immune cell functions, vascular modifications, and biomechanical forces to identify common processes that are conserved between rupture events. In our transcriptomic analysis, we found 12 differentially expressed genes in common among two different ovulation data sets and one intracranial aneurysm data set. We also found three genes that were differentially expressed in common for both ovulation data sets and one chorioamniotic membrane rupture data set. Combining analysis of all three data sets identified two genes (Angptl4 and Pfkfb4) that were upregulated across rupture systems. Some of the identified genes, such as Rgs2, Adam8, and Lox, have been characterised in multiple rupture contexts, including ovulation. Others, such as Glul, Baz1a, and Ddx3x, have not yet been characterised in the context of ovulation and warrant further investigation as potential novel regulators. We also identified overlapping functions of mast cells, macrophages, and T cells in the process of rupture. Each of these rupture systems share local vasoconstriction around the rupture site, smooth muscle contractions away from the site of rupture, and fluid shear forces that initially increase and then decrease to predispose one specific region to rupture. Experimental techniques developed to study these structural and biomechanical changes that underlie rupture, such as patient-derived microfluidic models and spatiotemporal transcriptomic analyses, have not yet been comprehensively translated to the study of ovulation. Review of the existing knowledge, transcriptomic data, and experimental techniques from studies of rupture in other biological systems yields a better understanding of the physiology of ovulation and identifies avenues for novel studies of ovulation with techniques and targets from the study of vascular biology and parturition.
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Registered trials
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