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用于猪卵母细胞封装的蛋白水解降解海藻酸盐水凝胶和疏水微生物反应器

Proteolytically Degraded Alginate Hydrogels and Hydrophobic Microbioreactors for Porcine Oocyte Encapsulation.

作者信息

Gorczyca Gabriela, Wartalski Kamil, Tabarowski Zbigniew, Duda Malgorzata

机构信息

Department of Endocrinology, Institute of Zoology and Biomedical Research, Faculty of Biology, Jagiellonian University in Krakow.

Department of Histology, Jagiellonian University Medical College.

出版信息

J Vis Exp. 2020 Jul 30(161). doi: 10.3791/61325.

Abstract

In reproductive biology, the biotechnology revolution that began with artificial insemination and embryo transfer technology led to the development of assisted reproduction techniques such as oocyte in vitro maturation (IVM), in vitro fertilization (IVF) and cloning of domestic animals by nuclear transfer from somatic cell. IVM is the method particularly of significance. It is the platform technology for the supply of mature, good quality oocytes for applications such as reduction of the generation interval in commercially important or endangered species, research concerning in vitro human reproduction, and production of transgenic animals for cell therapies. The term oocyte quality includes its competence to complete maturation, be fertilized, thereby resulting in healthy offspring. This means that oocytes of good quality are paramount for successful fertilization including IVF procedures. This poses many difficulties to develop a reliable culture method that would support growth not only of human oocytes but also of other large mammalian species. The first step in IVM is the in vitro culture of oocytes. This work describes two protocols for the 3D culture of porcine oocytes. In the first, 3D model cumulus-oocyte complexes (COCs) are encapsulated in a fibrin-alginate bead interpenetrating network, in which a mixture of fibrin and alginate are gelled simultaneously. In the second one, COCs are suspended in a drop of medium and encapsulated with fluorinated ethylene propylene (FEP; a copolymer of hexafluoropropylene and tetrafluoroethylene) powder particles to form microbioreactors defined as Liquid Marbles (LM). Both 3D systems maintain the gaseous in vitro culture environment. They also maintain COCs 3D organization by preventing their flattening and consequent disruption of gap junctions, thereby preserving the functional relationship between the oocyte, and surrounding follicular cells.

摘要

在生殖生物学领域,始于人工授精和胚胎移植技术的生物技术革命推动了辅助生殖技术的发展,如卵母细胞体外成熟(IVM)、体外受精(IVF)以及通过体细胞的核移植对家畜进行克隆。IVM是一项尤为重要的技术。它是一种平台技术,可为以下应用提供成熟、优质的卵母细胞:缩短商业上重要或濒危物种的世代间隔、开展体外人类生殖研究以及生产用于细胞治疗的转基因动物。卵母细胞质量这一术语包括其完成成熟、受精并最终产生健康后代的能力。这意味着优质卵母细胞对于包括IVF程序在内的成功受精至关重要。要开发一种不仅能支持人类卵母细胞生长,还能支持其他大型哺乳动物物种生长的可靠培养方法,存在诸多困难。IVM的第一步是卵母细胞的体外培养。这项工作描述了两种猪卵母细胞三维培养方案。第一种方案中,三维模型卵丘 - 卵母细胞复合体(COCs)被封装在纤维蛋白 - 藻酸盐珠互穿网络中,其中纤维蛋白和藻酸盐的混合物同时凝胶化。第二种方案中,COCs悬浮在一滴培养基中,并用氟化乙烯丙烯(FEP;六氟丙烯和四氟乙烯的共聚物)粉末颗粒进行封装,以形成定义为液体大理石(LM)的微生物反应器。两种三维系统都能维持体外气体培养环境。它们还通过防止COCs扁平以及随后间隙连接的破坏来维持其三维组织结构,从而保持卵母细胞与周围卵泡细胞之间的功能关系。

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