Fuentes Paloma, Torres María José, Arancibia Rodrigo, Aulestia Francisco, Vergara Mauricio, Carrión Flavio, Osses Nelson, Altamirano Claudia
Escuela de Ingeniería Bioquímica, Facultad de Ingeniería, Pontificia Universidad Católica de Valparaíso, Valparaíso, Chile.
Cellus Medicina Regenerativa S.A., Santiago, Chile.
Front Bioeng Biotechnol. 2022 Aug 15;10:916229. doi: 10.3389/fbioe.2022.916229. eCollection 2022.
In recent years, conditioned medium (CM) obtained from the culture of mesenchymal stromal/stem cells (MSCs) has been shown to effectively promote tissue repair and modulate the immune response and in different animal models, with potential for application in regenerative medicine. Using CM offers multiple advantages over the implantation of MSCs themselves: 1) simpler storage, transport, and preservation requirements, 2) avoidance of the inherent risks of cell transplantation, and 3) potential application as a ready-to-go biologic product. For these reasons, a large amount of MSCs research has focused on the characterization of the obtained CM, including soluble trophic factors and vesicles, preconditioning strategies for enhancing paracrine secretion, such as hypoxia, a three-dimensional (3D) environment, and biochemical stimuli, and potential clinical applications. preconditioning strategies can increase the viability, proliferation, and paracrine properties of MSCs and therefore improve the therapeutic potential of the cells and their derived products. Specifically, dynamic cultivation conditions, such as fluid flow and 3D aggregate culture, substantially impact cellular behaviour. Increased levels of growth factors and cytokines were observed in 3D cultures of MSC grown on orbital or rotatory shaking platforms, in stirred systems, such as spinner flasks or stirred tank reactors, and in microgravity bioreactors. However, only a few studies have established dynamic culture conditions and protocols for 3D aggregate cultivation of MSCs as a scalable and reproducible strategy for CM production. This review summarizes significant advances into the upstream processing, mainly the dynamic generation and cultivation of MSC aggregates, for de CM manufacture and focuses on the standardization of the soluble factor production.
近年来,从间充质基质/干细胞(MSC)培养物中获得的条件培养基(CM)已被证明能在不同动物模型中有效促进组织修复和调节免疫反应,具有再生医学应用潜力。与直接植入MSC本身相比,使用CM具有多个优势:1)储存、运输和保存要求更简单;2)避免细胞移植的固有风险;3)有作为即用型生物制品的潜在应用价值。基于这些原因,大量关于MSC的研究聚焦于所获得的CM的特性,包括可溶性营养因子和囊泡、增强旁分泌分泌的预处理策略(如缺氧、三维(3D)环境和生化刺激)以及潜在的临床应用。预处理策略可提高MSC的活力、增殖能力和旁分泌特性,从而提高细胞及其衍生产品的治疗潜力。具体而言,动态培养条件,如流体流动和3D聚集体培养,会对细胞行为产生重大影响。在轨道或旋转振荡平台上生长的MSC的3D培养物、搅拌系统(如转瓶或搅拌罐反应器)以及微重力生物反应器中,均观察到生长因子和细胞因子水平升高。然而,只有少数研究建立了用于MSC 3D聚集体培养的动态培养条件和方案,作为一种可扩展且可重复的CM生产策略。本综述总结了用于CM制造的上游加工方面的重大进展,主要是MSC聚集体的动态生成和培养,并着重于可溶性因子生产的标准化。