McMurtrey Richard J
Institute of Neural Regeneration & Tissue Engineering , Highland, Utah.
Stem Cells Dev. 2017 Sep 15;26(18):1293-1303. doi: 10.1089/scd.2017.0066. Epub 2017 Aug 14.
Recent advancements in the ability to construct three-dimensional (3D) tissues and organoids from stem cells and biomaterials have not only opened abundant new research avenues in disease modeling and regenerative medicine but also have ignited investigation into important aspects of molecular diffusion in 3D cellular architectures. This article describes fundamental mechanics of diffusion with equations for modeling these dynamic processes under a variety of scenarios in 3D cellular tissue constructs. The effects of these diffusion processes and resultant concentration gradients are described in the context of the major molecular signaling pathways in stem cells that both mediate and are influenced by gas and nutrient concentrations, including how diffusion phenomena can affect stem cell state, cell differentiation, and metabolic states of the cell. The application of these diffusion models and pathways is of vital importance for future studies of developmental processes, disease modeling, and tissue regeneration.
利用干细胞和生物材料构建三维(3D)组织和类器官的能力取得的最新进展,不仅为疾病建模和再生医学开辟了大量新的研究途径,还引发了对3D细胞结构中分子扩散重要方面的研究。本文描述了扩散的基本力学原理,并给出了在3D细胞组织构建体的各种情况下对这些动态过程进行建模的方程。这些扩散过程及其产生的浓度梯度的影响,将在干细胞的主要分子信号通路的背景下进行描述,这些信号通路既介导气体和营养物质浓度,又受其影响,包括扩散现象如何影响干细胞状态、细胞分化以及细胞的代谢状态。这些扩散模型和信号通路的应用对于发育过程、疾病建模和组织再生的未来研究至关重要。