A Spatiotemporal Microenvironment Model to Improve Design of a Three-Dimensional Bioreactor for Red Cell Production.

Tissue Engineering Part A Pub Date : 2022-01-01 Epub Date: 2021-09-29 DOI:10.1089/ten.TEA.2021.0028
Mark C Allenby, Naoki Okutsu, Kate Brailey, Joana Guasch, Qiming Zhang, Nicki Panoskaltsis, Athanasios Mantalaris
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引用次数: 2

Abstract

Cellular microenvironments provide stimuli, including paracrine and autocrine growth factors and physicochemical cues, which support efficient in vivo cell production unmatched by current in vitro biomanufacturing platforms. While three-dimensional (3D) culture systems aim to recapitulate niche architecture and function of the target tissue/organ, they are limited in accessing spatiotemporal information to evaluate and optimize in situ cell/tissue process development. Herein, a mathematical modeling framework is parameterized by single-cell phenotypic imaging and multiplexed biochemical assays to simulate the nonuniform tissue distribution of nutrients/metabolites and growth factors in cell niche environments. This model is applied to a bone marrow mimicry 3D perfusion bioreactor containing dense stromal and hematopoietic tissue with limited red blood cell (RBC) egress. The model characterized an imbalance between endogenous cytokine production and nutrient starvation within the microenvironmental niches and recommended increased cell inoculum density and enhanced medium exchange, guiding the development of a miniaturized prototype bioreactor. The second-generation prototype improved the distribution of nutrients and growth factors and supported a 50-fold increase in RBC production efficiency. This image-informed bioprocess modeling framework leverages spatiotemporal niche information to enhance biochemical factor utilization and improve cell manufacturing in 3D systems. Impact statement Three-dimensional (3D) culture systems are becoming increasingly important because they recapitulate the architecture and, consequently, physiological function of the target tissue/organ. Design and optimization of these 3D biomanufacturing platforms require evaluation of in situ spatiotemporal information. We have developed an integrated experimental-computational framework that captures the spatiotemporal distribution of cells, nutrients, and cytokines within a marrow biomimicry perfusion bioreactor. The model simulated biochemical factor utilization and guided the design of an improved second-generation bioreactor that achieved 50-fold increase in RBC production with improved cost efficiency. Such a modeling framework provides an essential platform for the optimization of 3D biomanufacturing systems.

利用时空微环境模型改进三维红细胞生成生物反应器设计。
细胞微环境提供刺激,包括旁分泌和自分泌生长因子以及物理化学线索,支持有效的体内细胞生产,这是目前体外生物制造平台无法比拟的。虽然三维(3D)培养系统旨在重现目标组织/器官的生态位结构和功能,但它们在获取时空信息以评估和优化原位细胞/组织过程发育方面受到限制。本文通过单细胞表型成像和多重生化分析参数化数学建模框架,模拟细胞生态位环境中营养/代谢物和生长因子的不均匀组织分布。该模型应用于骨髓模拟3D灌注生物反应器,该生物反应器含有致密基质和造血组织,红细胞(RBC)出口有限。该模型描述了微环境生态位内内源性细胞因子产生与营养缺乏之间的不平衡,并建议增加细胞接种密度和加强培养基交换,指导小型化原型生物反应器的开发。第二代原型改善了营养物质和生长因子的分布,并支持将RBC生产效率提高50倍。这种基于图像的生物过程建模框架利用时空生态位信息来增强生化因子的利用,并改善3D系统中的细胞制造。三维(3D)培养系统正变得越来越重要,因为它们概括了目标组织/器官的结构和生理功能。这些三维生物制造平台的设计和优化需要对现场时空信息进行评估。我们开发了一个集成的实验计算框架,可以捕获骨髓仿生灌注生物反应器中细胞、营养物质和细胞因子的时空分布。该模型模拟了生化因子的利用,并指导了改进的第二代生物反应器的设计,使RBC产量提高了50倍,同时提高了成本效率。这样的建模框架为三维生物制造系统的优化提供了一个重要的平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Tissue Engineering Part A
Tissue Engineering Part A CELL & TISSUE ENGINEERING-BIOTECHNOLOGY & APPLIED MICROBIOLOGY
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