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细胞培养的进展:贴壁依赖性

Advances in cell culture: anchorage dependence.

作者信息

Merten Otto-Wilhelm

机构信息

R&D, Généthon, 1, rue de l'Internationale, 91000 Evry, France

出版信息

Philos Trans R Soc Lond B Biol Sci. 2015 Feb 5;370(1661):20140040. doi: 10.1098/rstb.2014.0040.

Abstract

Anchorage-dependent cells are of great interest for various biotechnological applications. (i) They represent a formidable production means of viruses for vaccination purposes at very large scales (in 1000-6000 l reactors) using microcarriers, and in the last decade many more novel viral vaccines have been developed using this production technology. (ii) With the advent of stem cells and their use/potential use in clinics for cell therapy and regenerative medicine purposes, the development of novel culture devices and technologies for adherent cells has accelerated greatly with a view to the large-scale expansion of these cells. Presently, the really scalable systems--microcarrier/microcarrier-clump cultures using stirred-tank reactors--for the expansion of stem cells are still in their infancy. Only laboratory scale reactors of maximally 2.5 l working volume have been evaluated because thorough knowledge and basic understanding of critical issues with respect to cell expansion while retaining pluripotency and differentiation potential, and the impact of the culture environment on stem cell fate, etc., are still lacking and require further studies. This article gives an overview on critical issues common to all cell culture systems for adherent cells as well as specifics for different types of stem cells in view of small- and large-scale cell expansion and production processes.

摘要

贴壁依赖型细胞在各种生物技术应用中备受关注。(i)它们是用于大规模(在1000 - 6000升反应器中)生产用于疫苗接种的病毒的强大手段,通过使用微载体,并且在过去十年中,利用这种生产技术开发了更多新型病毒疫苗。(ii)随着干细胞的出现及其在临床中用于细胞治疗和再生医学目的的使用/潜在使用,为了大规模扩增这些细胞,用于贴壁细胞的新型培养装置和技术的开发大大加速。目前,用于干细胞扩增的真正可扩展系统——使用搅拌罐反应器的微载体/微载体团块培养——仍处于起步阶段。仅对最大工作体积为2.5升的实验室规模反应器进行了评估,因为在保留多能性和分化潜能的同时,对于细胞扩增的关键问题以及培养环境对干细胞命运的影响等方面,仍缺乏全面的了解和基本认识,需要进一步研究。本文概述了所有贴壁细胞培养系统共有的关键问题,以及从小规模和大规模细胞扩增及生产过程角度来看不同类型干细胞的具体情况。

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