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用于胰岛高密度培养的具有微金字塔图案的、氧气可渗透的底部培养皿。

Micropyramid-patterned, oxygen-permeable bottomed dish for high density culture of pancreatic islets.

机构信息

Department of Surgery and Biomedical Engineering, University of California, Irvine. 5200 Engineering Hall, Irvine, CA 92697, United States of America.

Department of Medical Engineering, California Institute of Technology, 1200 E. California Blvd., MC 136-93, Pasadena, CA 91125, United States of America.

出版信息

Biofabrication. 2022 Dec 20;15(1). doi: 10.1088/1758-5090/aca79a.

Abstract

The need for maintaining cell-spheroid viability and function within high-density cultures is unmet for various clinical and experimental applications, including cell therapies. One immediate application is for transplantation of pancreatic islets, a clinically recognized treatment option to cure type 1 diabetes; islets are isolated from a donor for subsequent culture prior to transplantation. However, high seeding conditions cause unsolicited fusion of multiple spheroids, thereby limiting oxygen diffusion to induce hypoxic cell death. Here we introduce a culture dish incorporating a micropyramid-patterned surface to prevent the unsolicited fusion and oxygen-permeable bottom for optimal oxygen environment. A 400m-thick, oxygen-permeable polydimethylsiloxane sheet topped with micropyramid pattern of 400m-base and 200m-height was fabricated to apply to the 24-well plate format. The micropyramid pattern separated the individual pancreatic islets to prevent the fusion of multiple islets. This platform supported the high oxygen demand of islets at high seeding density at 260 islet equivalents cm, a 2-3-fold higher seeding density compared to the conventional islet culture used in a preparation for the clinical islet transplantations, demonstrating improved islet morphology, metabolism and function in a 4 d-culture. Transplantation of these islets into immunodeficient diabetic mice exhibited significantly improved engraftment to achieve euglycemia compared to islets cultured in the conventional culture wells. Collectively, this simple design modification allows for high-density cultures of three-dimensional cell spheroids to improve the viability and function for an array of investigational and clinical replacement tissues.

摘要

高密度培养中维持细胞球体活力和功能的需求尚未得到满足,这在各种临床和实验应用中都存在,包括细胞治疗。一个直接的应用是胰岛移植,这是一种临床认可的治疗 1 型糖尿病的方法;胰岛从供体中分离出来,然后在移植前进行培养。然而,高接种条件会导致多个球体的自发融合,从而限制氧气扩散,导致缺氧细胞死亡。在这里,我们引入了一种培养皿,其中包含微金字塔图案表面以防止自发融合和氧气可渗透的底部,以提供最佳的氧气环境。我们制作了一个 400 微米厚的、氧气可渗透的聚二甲基硅氧烷薄片,顶部有一个 400 微米基底和 200 微米高度的微金字塔图案,以应用于 24 孔板格式。微金字塔图案将单个胰岛分开,防止多个胰岛融合。该平台支持高接种密度(260 胰岛当量/cm)下胰岛的高氧气需求,与用于临床胰岛移植准备的传统胰岛培养相比,接种密度提高了 2-3 倍,在 4 天培养中显示出改善的胰岛形态、代谢和功能。将这些胰岛移植到免疫缺陷型糖尿病小鼠中,与在传统培养孔中培养的胰岛相比,显著改善了胰岛的植入,从而实现了血糖正常化。总的来说,这种简单的设计修改允许进行三维细胞球体的高密度培养,以提高多种研究和临床替代组织的活力和功能。

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