Vega L Johana C M, Lee Min Kyung, Qin Ellen C, Rich Max, Lee Kwan Young, Kim Dong Hyun, Chung Hee Jung, Leckband Deborah E, Kong Hyunjoon
Neuroscience Program, University of Illinois at Urbana-Champaign, Urbana, IL, USA.
Department of Chemical and Biomolecular Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, USA.
J Mater Chem B. 2016 Nov 14;4(42):6803-6811. doi: 10.1039/C6TB01814A. Epub 2016 Sep 21.
Living cells are extensively being studied to build functional tissues that are useful for both fundamental and applied bioscience studies. Increasing evidence suggests that cell-cell adhesion controlled by intercellular cadherin junction plays important roles in the quality of the resulting engineered tissue. These findings prompted efforts to interrogate biological effects of cadherin at a molecular scale; however, few efforts were made to harness the effects of cadherin on cells cultured in an -like three dimensional matrix. To this end, this study reports a hydrogel matrix three dimensionally functionalized with a controlled number of Fc-tagged recombinant N-cadherins (N-Cad-Fc). To retain the desired conformation of N-Cad, these cadherins were immobilized and oriented to the gel by anti-Fc-antibodies chemically coupled to gels. The gels were processed to present N-Cad-Fc in uniaxially aligned microchannels or randomly oriented micropores. Culturing cortical cells in the functionalized gels generated a large fraction of neurons that are functional as indicated by increased intracellular calcium ion concentrations with the microchanneled gel. In contrast, direct N-Cad-Fc immobilization to microchannel or micropore walls of the gel limited the growth of neurons and increased the glial to neuron ratio. The results of this study will be highly useful to organize a wide array of cadherin molecules in a series of biomaterials used for three-dimensional cell culture and to regulate phenotypic activities of tissue-forming cells in an elaborate manner.
活细胞正被广泛研究,以构建对基础和应用生物科学研究都有用的功能性组织。越来越多的证据表明,由细胞间钙黏蛋白连接控制的细胞间黏附在所得工程组织的质量中起着重要作用。这些发现促使人们努力在分子尺度上探究钙黏蛋白的生物学效应;然而,很少有人致力于利用钙黏蛋白对在类似三维基质中培养的细胞的影响。为此,本研究报告了一种水凝胶基质,其用可控数量的Fc标签重组N-钙黏蛋白(N-Cad-Fc)进行三维功能化。为了保持N-Cad的所需构象,这些钙黏蛋白通过化学偶联到凝胶上的抗Fc抗体固定并定向到凝胶上。凝胶经过处理后,在单轴排列的微通道或随机取向的微孔中呈现N-Cad-Fc。在功能化凝胶中培养皮质细胞产生了大量功能性神经元,微通道凝胶中细胞内钙离子浓度的增加表明了这一点。相比之下,将N-Cad-Fc直接固定在凝胶的微通道或微孔壁上会限制神经元的生长并增加胶质细胞与神经元的比例。本研究结果对于在用于三维细胞培养的一系列生物材料中组织多种钙黏蛋白分子,并以精细方式调节组织形成细胞的表型活性将非常有用。