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Myelinated 3D neural culture platform as a physiological model of diabetic peripheral neuropathy

机译:Myelized 3D神经文化平台作为糖尿病外周神经病变的生理模型

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Introduction: We present a microengineered 3D hydrogel platform for culture of myelinated embryonic peripheral neural tissue as shown in Figure 1. This novel in-vitro platform enables morphological and physiological metrics analogous to clinical nerve fiber density and nerve conduction tests. We demonstrate the feasibility of this model system for studying peripheral neuropathy caused by glucose-induced neurotoxicity, the most common form of neuropathy. Figure 1: Microengineered myelinated neural fiber tract 3D architecture resembling native peripheral nerve anatomy. Materials and Methods: Dorsal root ganglia (DRG) from embryonic day 15 rats were grown over a period of 4 weeks in a dual hydrogel system consisting of a methacrylated heparin gel in a polyethylene glycol micro-mold. The dual hydrogel system served to constrain the axon growth to be polarized with high density, fasciculation and myelination. The DRG's were subject to a three-stage media regimen including ascorbic acid (AA) in the final stage to induce Schwann Cell myelination. The myelinated cultures were subjected to 60mM concentrations of the D-glucose in media over a period of 48 hours to simulate diabetic neuropathy. The control cultures were exposed to a 25mM D-glucose concentration. Electrophysiological field recordings were taken with and without the exposure of high glucose, and changes in the compound action potentials in the field recording were observed and compared to the control. Results and Discussion: Compound action potentials show little or no synaptic input, increased delay and decreased amplitude with higher glucose concentration exposure as shown in Figure 2. The higher glucose concentration is thought to trigger the sorbitol pathway and induce oxidative stress in the neurons of the DRG, leading to apoptosis and axonal degeneration. Figure 2: Average traces representing compound action potentials recorded with and without high glucose treatment. The change in amplitude and latency are also quantified as bar plots. (n=10, * = p<0.05 and ***=p<0.001) Conclusion: Microengineered myelinated neural fiber tracts have morphology, physiology and, toxicity response analogous to a peripheral nerve. The platform could be used as an in-vitro model for neuropathy studies and drug development.
机译:介绍:我们介绍了一种微型3D水凝胶平台,用于髓鞘胚胎周围神经组织的培养平台,如图1所示。这种新型体外平台使类似于临床神经纤维密度和神经传导测试类似的形态学和生理指标。我们展示了这种模型系统用于研究葡萄糖诱导的神经毒性引起的周围神经病变,是神经病最常见的神经病变。图1:类似于天然周围神经解剖学的微能米氏髓神经纤维散发3D架构。材料和方法:在双水凝胶系统中,在聚乙二醇微模的甲基丙烯酸肝素凝胶组成的双水凝胶系统中,在4周内生长来自胚胎第15天的背根神经节(DRG)。双水凝胶系统用于约束轴突生长,以高密度,束状和髓鞘偏振。 DRG患有三阶段培养方案,包括抗坏血酸(AA),在最后阶段诱导施旺细胞髓鞘。在48小时内,在48小时内,在培养基中对培养基进行60mM浓度的培养基,以模拟糖尿病神经病变。将对照培养物暴露于25mm D-葡萄糖浓度。使用高葡萄糖的曝光,观察到电生理场记录,并观察到野外记录中的复合作用电位的变化并与对照进行比较。结果与讨论:复合动作电位显示突触输入少或没有,随着图2所示,具有较高的葡萄糖浓度暴露的延迟和幅度降低和降低幅度,如图2所示。认为较高的葡萄糖浓度被认为触发山梨糖醇途径并在神经元中诱导氧化应激DRG,导致细胞凋亡和轴突变性。图2:表示记录的复合动作电位的平均迹线,无需高葡萄糖处理。幅度和等待时间的变化也被量化为条形图。 (n = 10,* = P <0.05和*** = P <0.001)结论:微能髓鞘神经纤维束具有形态,生理学和毒性反应,类似于周围神经。该平台可用作神经病变研究和药物开发的体外模型。

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