Department of Chemical and Biomolecular Engineering, University of Delaware, 590 Avenue 1743, Newark, DE 19713, USA.
Department of Chemical and Biomolecular Engineering, University of Delaware, 590 Avenue 1743, Newark, DE 19713, USA.
Biotechnol Adv. 2023 Sep;66:108158. doi: 10.1016/j.biotechadv.2023.108158. Epub 2023 Apr 25.
Extracellular vesicles (EVs) are cornerstones of intercellular communication with exciting fundamental, clinical, and more broadly biotechnological applications. However, variability in EV composition, which results from the culture conditions used to generate the EVs, poses significant fundamental and applied challenges and a hurdle for scalable bioprocessing. Thus, an understanding of the relationship between EV production (and for clinical applications, manufacturing) and EV composition is increasingly recognized as important and necessary. While chemical stimulation and culture conditions such as cell density are known to influence EV biology, the impact of biomechanical forces on the generation, properties, and biological activity of EVs remains poorly understood. Given the omnipresence of these forces in EV preparation and in biomanufacturing, expanding the understanding of their impact on EV composition-and thus, activity-is vital. Although several publications have examined EV preparation and bioprocessing and briefly discussed biomechanical stresses as variables of interest, this review represents the first comprehensive evaluation of the impact of such stresses on EV production, composition and biological activity. We review how EV biogenesis, cargo, efficacy, and uptake are uniquely affected by various types, magnitudes, and durations of biomechanical forces, identifying trends that emerge both generically and for individual cell types. We also describe implications for scalable bioprocessing, evaluating processes inherent in common EV production and isolation methods, and propose a path forward for rigorous EV quality control.
细胞外囊泡 (EVs) 是细胞间通讯的基石,具有令人兴奋的基础、临床和更广泛的生物技术应用。然而,由于用于产生 EV 的培养条件的不同,导致 EV 组成的可变性,这给基础研究和应用带来了重大挑战,也是可扩展生物加工的一个障碍。因此,越来越认识到了解 EV 生产(对于临床应用,即制造)和 EV 组成之间的关系是重要且必要的。虽然已知化学刺激和培养条件(如细胞密度)会影响 EV 生物学,但生物力学力对 EV 的产生、性质和生物活性的影响仍知之甚少。鉴于这些力在 EV 制备和生物制造中无处不在,扩大对它们对 EV 组成(因此,对其活性)的影响的理解至关重要。尽管有几项出版物研究了 EV 的制备和生物加工,并简要讨论了生物力学应激作为感兴趣的变量,但这篇综述代表了对这些应激对 EV 生产、组成和生物活性的影响的首次全面评估。我们回顾了 EV 生物发生、货物、功效和摄取如何受到各种类型、大小和持续时间的生物力学力的独特影响,确定了普遍存在的趋势和特定细胞类型的趋势。我们还描述了对可扩展生物加工的影响,评估了常见 EV 生产和分离方法固有的过程,并为严格的 EV 质量控制提出了前进的道路。