Irons Hillary R, Cullen D Kacy, Shapiro Nicholas P, Lambert Nevin A, Lee Robert H, Laplaca Michelle C
Wallace H. Coulter Department of Biomedical Engineering, Laboratory for Neuroengineering, Georgia Institute of Technology and Emory University, 313 Ferst Drive, Atlanta, GA 30332-0535, USA.
J Neural Eng. 2008 Sep;5(3):333-41. doi: 10.1088/1741-2560/5/3/006. Epub 2008 Aug 28.
Morphological and electrophysiological properties of neural cells are substantially influenced by their immediate extracellular surroundings, yet the features of this environment are difficult to mimic in vitro. Therefore, there is a tremendous need to develop a new generation of culture systems that more closely model the complexity of nervous tissue. To this end, we engineered novel electrophysiologically active 3D neural constructs composed of neurons and astrocytes within a bioactive extracellular matrix-based scaffold. Neurons within these constructs exhibited extensive 3D neurite outgrowth, expressed mature neuron-specific cytoskeletal proteins, and remained viable for several weeks. Moreover, neurons assumed complex 3D morphologies with rich neurite arborization and clear indications of network connectivity, including synaptic junctures. Furthermore, we modified whole-cell patch clamp techniques to permit electrophysiological probing of neurons deep within the 3D constructs, revealing that these neurons displayed both spontaneous and evoked electrophysiological action potentials and exhibited functional synapse formation and network properties. This is the first report of individual patch clamp recordings of neurons deep within 3D scaffolds. These tissue engineered cellular constructs provide an innovative platform for neurobiological and electrophysiological investigations, serving as an important step towards the development of more physiologically relevant neural tissue models.
神经细胞的形态学和电生理特性在很大程度上受其紧邻的细胞外环境影响,然而这种环境的特征在体外很难模拟。因此,迫切需要开发新一代更能紧密模拟神经组织复杂性的培养系统。为此,我们构建了新型的具有电生理活性的三维神经结构,其由神经元和星形胶质细胞组成,并置于基于生物活性细胞外基质的支架内。这些结构中的神经元呈现出广泛的三维神经突生长,表达成熟的神经元特异性细胞骨架蛋白,并能存活数周。此外,神经元呈现出具有丰富神经突分支的复杂三维形态,并有明确的网络连接迹象,包括突触连接。此外,我们改进了全细胞膜片钳技术,以便对三维结构深处的神经元进行电生理探测,结果显示这些神经元既表现出自发性电生理动作电位,也表现出诱发性电生理动作电位,且呈现出功能性突触形成和网络特性。这是首次对三维支架深处的神经元进行单个膜片钳记录的报告。这些组织工程化细胞结构为神经生物学和电生理研究提供了一个创新平台,是朝着开发更具生理相关性的神经组织模型迈出的重要一步。