Cullen D Kacy, Vukasinovic Jelena, Glezer Ari, Laplaca Michelle C
Wallace H Coulter Department of Biomedical Engineering, Parket H Petit Institute for Bioengineering and Bioscience, Laboratory for Neuroengineering, Georgia Institute of Technology, Atlanta, GA, USA.
J Neural Eng. 2007 Jun;4(2):159-72. doi: 10.1088/1741-2560/4/2/015. Epub 2007 Apr 4.
Three-dimensional (3D) neural cultures with cells distributed throughout a thick, bioactive protein scaffold may better represent neurobiological phenomena than planar correlates lacking matrix support. Neural cells in vivo interact within a complex, multicellular environment with tightly coupled 3D cell-cell/cell-matrix interactions; however, thick 3D neural cultures at cell densities approaching that of brain rapidly decay, presumably due to diffusion limited interstitial mass transport. To address this issue, we have developed a novel perfusion platform that utilizes forced intercellular convection to enhance mass transport. First, we demonstrated that in thick (>500 microm) 3D neural cultures supported by passive diffusion, cell densities <or=5.0 x 10(3) cells mm(-3) were required for survival. In 3D neuronal and neuronal-astrocytic co-cultures with increased cell density (10(4) cells mm(-3)), continuous medium perfusion at 2.0-11.0 microL min(-1) improved viability compared to non-perfused cultures (p < 0.01), which exhibited widespread cell death and matrix degradation. In perfused cultures, survival was dependent on proximity to the perfusion source at 2.00-6.25 microL min(-1) (p < 0.05); however, at perfusion rates of 10.0-11.0 microL min(-1) survival did not depend on the distance from the perfusion source, and resulted in a preservation of cell density with >90% viability in both neuronal cultures and neuronal-astrocytic co-cultures. This work demonstrates the utility of forced interstitial convection in improving the survival of high cell density 3D engineered neural constructs and may aid in the development of novel tissue-engineered systems reconstituting 3D cell-cell/cell-matrix interactions.
与缺乏基质支持的平面培养物相比,细胞分布在厚的生物活性蛋白质支架中的三维(3D)神经培养物可能更能代表神经生物学现象。体内神经细胞在复杂的多细胞环境中相互作用,具有紧密耦合的3D细胞-细胞/细胞-基质相互作用;然而,细胞密度接近大脑的厚3D神经培养物会迅速衰退,可能是由于扩散限制的间质质量传输所致。为了解决这个问题,我们开发了一种新型灌注平台,该平台利用强制细胞间对流来增强质量传输。首先,我们证明在由被动扩散支持的厚(>500微米)3D神经培养物中,细胞密度≤5.0×10³个细胞/立方毫米才能存活。在细胞密度增加(10⁴个细胞/立方毫米)的3D神经元和神经元-星形胶质细胞共培养物中,与未灌注的培养物相比,以2.0 - 11.0微升/分钟的速度连续灌注培养基可提高细胞活力(p < 0.01),未灌注的培养物表现出广泛的细胞死亡和基质降解。在灌注培养物中,在2.00 - 6.25微升/分钟的灌注速度下,细胞存活取决于与灌注源的距离(p < 0.05);然而,在10.0 - 11.0微升/分钟的灌注速度下,细胞存活不依赖于与灌注源的距离,并且在神经元培养物和神经元-星形胶质细胞共培养物中均能保持细胞密度,细胞活力>90%。这项工作证明了强制间质对流在提高高细胞密度3D工程神经构建体存活率方面的实用性,并可能有助于开发重建3D细胞-细胞/细胞-基质相互作用的新型组织工程系统。