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Murine ovarian follicle culture in PEG-hydrogel: Effects of mechanical properties and the hormones FSH and LH on development

机译:PEG水凝胶中的小鼠卵巢卵泡培养:力学性能以及FSH和LH激素对发育的影响

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The development of an in vitro culture system, comparable to the in vivo environment in terms of effects on oocyte growth and development, could provide a valuable experimental tool for studying the mechanisms governing oocyte development as well as practical clinical, agricultural, zoological, and biotechnological applications. This study reports on the importance of the microenvironment for the ovarian folliculogenesis process. The complexity of such a microenvironment was approached with a strategy based on functionalized PEG-hydrogels. The PEG matrix not only serves as a scaffold, but it is also used a reservoir of immobilized cues. Using tethered integrin-binding peptides in combination with other signaling factors, we aimed at better understanding the interactions of the oocyte and its surrounding granulosa that may determine the efficiency of the actual and the future in vitro mature oocyte production. In a first step, the mechanical properties of PEG-hydrogel were optimized for producing secondary follicles, in which the oocyte is surrounded by two layers of granulosa cells. Follicle growth was highly dependent on the mechanical properties of the surrounding environment, with the optimal elastic modulus being approx. 1 kPa. The effects of key soluble factors were also investigated to confirm their compatibility with the established 3-D culture system and to further qualitatively and quantitatively improve the produced mature oocytes. Accordingly, various combinations of the gonadotropins follicle-stimulating hormone (FSH) and luteinizing hormone (LH) were tested. Interestingly, the effects of the gonadotropins in the 3-D PEG system were close to their known in vivo effects. In conclusion, this study demonstrates the efficiency and the flexibility of a novel 3-D culture system, PEG-hydrogel. Circumventing problems inherent to the "on-plastic" standard culture, such as the loss of the granulosa-oocyte interactions, allowed the emergence of a culture system tailored for investigating fundamental folliculogenesis-related questions. Furthermore, the reported culture system may serve as a platform for developing clinical and biotechnology applications.
机译:就卵母细胞生长和发育的影响而言,体外培养系统的发展可与体内环境相媲美,可为研究控制卵母细胞发育的机制以及实用的临床,农业,动物学和生物技术方面提供有价值的实验工具应用程序。这项研究报告了微环境对卵巢卵泡形成过程的重要性。这种微环境的复杂性是通过基于功能化PEG水凝胶的策略来解决的。 PEG基质不仅可以用作支架,还可以用作固定线索的储存库。通过将束缚整联蛋白结合肽与其他信号因子结合使用,我们旨在更好地了解卵母细胞及其周围颗粒的相互作用,这可能决定实际和未来体外成熟卵母细胞生产的效率。第一步,优化PEG-水凝胶的机械性能以产生次级卵泡,其中卵母细胞被两层颗粒细胞包围。卵泡的生长高度依赖于周围环境的机械性能,最佳的弹性模量约为1。 1 kPa。还研究了关键可溶性因子的作用,以确认它们与已建立的3-D培养系统的相容性,并进一步定性和定量地改善产生的成熟卵母细胞。因此,测试了促性腺激素促卵泡激素(FSH)和促黄体激素(LH)的各种组合。有趣的是,促性腺激素在3-D PEG系统中的作用接近其已知的体内作用。总之,这项研究证明了新型3-D培养系统PEG-水凝胶的效率和灵活性。规避“塑性”标准培养所固有的问题,例如颗粒-卵母细胞相互作用的丧失,使得出现了专门为研究卵泡发生相关问题而量身定制的培养系统。此外,报告的培养系统可以作为开发临床和生物技术应用程序的平台。

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