首页> 外文期刊>Tissue engineering, Part C. Methods >Analytic Models of Oxygen and Nutrient Diffusion, Metabolism Dynamics, and Architecture Optimization in Three-Dimensional Tissue Constructs with Applications and Insights in Cerebral Organoids
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Analytic Models of Oxygen and Nutrient Diffusion, Metabolism Dynamics, and Architecture Optimization in Three-Dimensional Tissue Constructs with Applications and Insights in Cerebral Organoids

机译:三维组织结构中氧和养分扩散,代谢动力学和结构优化的分析模型及其在脑类器官中的应用和见解

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Diffusion models are important in tissue engineering as they enable an understanding of gas, nutrient, and signaling molecule delivery to cells in cell cultures and tissue constructs. As three-dimensional (3D) tissue constructs become larger, more intricate, and more clinically applicable, it will be essential to understand internal dynamics and signaling molecule concentrations throughout the tissue and whether cells are receiving appropriate nutrient delivery. Diffusion characteristics present a significant limitation in many engineered tissues, particularly for avascular tissues and for cells whose viability, differentiation, or function are affected by concentrations of oxygen and nutrients. This article seeks to provide novel analytic solutions for certain cases of steady-state and nonsteady-state diffusion and metabolism in basic 3D construct designs (planar, cylindrical, and spherical forms), solutions that would otherwise require mathematical approximations achieved through numerical methods. This model is applied to cerebral organoids, where it is shown that limitations in diffusion and organoid size can be partially overcome by localizing metabolically active cells to an outer layer in a sphere, a regionalization process that is known to occur through neuroglial precursor migration both in organoids and in early brain development. The given prototypical solutions include a review of metabolic information for many cell types and can be broadly applied to many forms of tissue constructs. This work enables researchers to model oxygen and nutrient delivery to cells, predict cell viability, study dynamics of mass transport in 3D tissue constructs, design constructs with improved diffusion capabilities, and accurately control molecular concentrations in tissue constructs that may be used in studying models of development and disease or for conditioning cells to enhance survival after insults like ischemia or implantation into the body, thereby providing a framework for better understanding and exploring the characteristics and behaviors of engineered tissue constructs.
机译:扩散模型在组织工程中很重要,因为它们能够了解气体,营养物质以及将信号分子传递到细胞培养物和组织构建体中的细胞。随着三维(3D)组织构造变得越来越大,越来越复杂并且在临床上越来越有用,了解整个组织的内部动力学和信号分子浓度以及细胞是否正在接受适当的营养传递将至关重要。扩散特性在许多工程组织中表现出明显的局限性,特别是对于无血管组织以及其生存力,分化或功能受氧气和养分浓度影响的细胞。本文旨在为基本3D构造设计(平面,圆柱和球形)中的稳态和非稳态扩散和代谢的某些情况提供新颖的解析解,否则将需要通过数值方法实现数学近似的解决方案。该模型应用于脑类器官,其中显示了通过将代谢活性细胞定位于球体的外层可以部分克服扩散和类器官大小的局限性,已知该区域化过程是通过神经胶质前体的迁移而发生的。类器官和大脑早期发育。给定的原型解决方案包括对许多细胞类型的代谢信息的综述,可以广泛应用于多种形式的组织构建体。这项工作使研究人员能够对向细胞输送的氧气和营养进行建模,预测细胞活力,研究3D组织构建体中物质传输的动力学,设计具有改善的扩散能力的构建体,并精确控制可用于研究模型的组织构建体中的分子浓度。诸如缺血或植入体内等侮辱后的发育和疾病,或通过调节细胞来增强存活,从而为更好地理解和探索工程组织构造的特征和行为提供了框架。

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