Monika Fluks, Robert Milewski, Szymon Tamborski, Maciej Szkulmowski, Anna Ajduk
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引用次数: 0
摘要
胚胎的正常发育在很大程度上取决于卵母细胞的质量,因此对卵母细胞进行评估可能是体外受精程序中有用的第一步。此外,它还能让胚胎学家在为患者选择治疗方法时做出更明智的决定,并更好地管理患者的期望。光学相干显微镜(OCM)可对细胞内结构(如纺锤体或细胞核)进行非侵入式三维可视化,这些结构与胚胎发育的成功与否息息相关。在此,我们应用小鼠模型来研究 OCM 成像是否可用于成熟分裂期 II(MII)卵母细胞的质量评估。我们发现,描述 MII 纺锤体形状和体积的定量参数与胚胎质量有关,包括囊胚形成的可能性以及胚胎分化滋养层和原始内胚层的能力,但与上胚层无关。我们还创建了一个多变量线性回归模型,将基于 OCM 的 MII 纺锤体量化与胚胎形态动力学分析相结合,从而改进了胚胎质量评估。最后,我们证明 OCM 不会干扰扫描细胞的存活率,至少在植入前的发育过程中不会。因此,我们认为,基于 OCM 的 MII 纺锤体定量评估可改善体外受精程序中的卵母细胞和胚胎选择。
Spindle shape and volume differ in high- and low-quality metaphase II oocytes.
In brief: Optical coherence microscopy non-invasively visualizes metaphase II spindles allowing for quantitative analysis of their volume and shape, which may prove useful in the assessment of the oocyte quality. Using a mouse model, we showed also that analysis of spindle length combined with morphokinetics improves the evaluation of the resulting embryos.
Abstract: The proper development of embryos strongly depends on the quality of oocytes, so the evaluation of oocytes may be a useful initial step in IVF procedures. Additionally, it enables embryologists to make more informed decisions regarding the treatments chosen for the patients and better manage patients' expectations. Optical coherence microscopy (OCM) allows for non-invasive 3D visualization of intracellular structures, such as spindles or nuclei, which have been linked to the success of embryonic development. Here, we applied a mouse model to examine whether OCM imaging could be used in the quality assessment of metaphase II (MII) oocytes. We showed that quantitative parameters describing the shape and volume of the MII spindle were associated with the quality of the resulting embryos, including the likelihood of blastocyst formation and the embryos' ability to differentiate the trophectoderm and primitive endoderm, but not the epiblast. We also created a multivariate linear regression model, combining OCM-based quantification of MII spindles with morphokinetic analysis of the embryos, that allowed for improved evaluation of the embryo quality. Finally, we proved that OCM does not interfere with the viability of the scanned cells, at least during the preimplantation development. Therefore, we believe that OCM-based quantitative assessment of MII spindles can improve the oocyte and embryo selection in IVF procedures.
期刊介绍:
Reproduction is the official journal of the Society of Reproduction and Fertility (SRF). It was formed in 2001 when the Society merged its two journals, the Journal of Reproduction and Fertility and Reviews of Reproduction.
Reproduction publishes original research articles and topical reviews on the subject of reproductive and developmental biology, and reproductive medicine. The journal will consider publication of high-quality meta-analyses; these should be submitted to the research papers category. The journal considers studies in humans and all animal species, and will publish clinical studies if they advance our understanding of the underlying causes and/or mechanisms of disease.
Scientific excellence and broad interest to our readership are the most important criteria during the peer review process. The journal publishes articles that make a clear advance in the field, whether of mechanistic, descriptive or technical focus. Articles that substantiate new or controversial reports are welcomed if they are noteworthy and advance the field. Topics include, but are not limited to, reproductive immunology, reproductive toxicology, stem cells, environmental effects on reproductive potential and health (eg obesity), extracellular vesicles, fertility preservation and epigenetic effects on reproductive and developmental processes.