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在体外支持人类神经元基本突触功能和活性的神经元培养基。

Neuronal medium that supports basic synaptic functions and activity of human neurons in vitro.

作者信息

Bardy Cedric, van den Hurk Mark, Eames Tameji, Marchand Cynthia, Hernandez Ruben V, Kellogg Mariko, Gorris Mark, Galet Ben, Palomares Vanessa, Brown Joshua, Bang Anne G, Mertens Jerome, Böhnke Lena, Boyer Leah, Simon Suzanne, Gage Fred H

机构信息

Salk Institute for Biological Studies, Sanford Consortium for Regenerative Medicine, La Jolla, CA 92037;

Salk Institute for Biological Studies, Sanford Consortium for Regenerative Medicine, La Jolla, CA 92037; Department of Psychiatry and Neuropsychology, Division of Translational Neuroscience, Maastricht University, 6200 MD, Maastricht, The Netherlands;

出版信息

Proc Natl Acad Sci U S A. 2015 May 19;112(20):E2725-34. doi: 10.1073/pnas.1504393112. Epub 2015 Apr 13.

Abstract

Human cell reprogramming technologies offer access to live human neurons from patients and provide a new alternative for modeling neurological disorders in vitro. Neural electrical activity is the essence of nervous system function in vivo. Therefore, we examined neuronal activity in media widely used to culture neurons. We found that classic basal media, as well as serum, impair action potential generation and synaptic communication. To overcome this problem, we designed a new neuronal medium (BrainPhys basal + serum-free supplements) in which we adjusted the concentrations of inorganic salts, neuroactive amino acids, and energetic substrates. We then tested that this medium adequately supports neuronal activity and survival of human neurons in culture. Long-term exposure to this physiological medium also improved the proportion of neurons that were synaptically active. The medium was designed to culture human neurons but also proved adequate for rodent neurons. The improvement in BrainPhys basal medium to support neurophysiological activity is an important step toward reducing the gap between brain physiological conditions in vivo and neuronal models in vitro.

摘要

人类细胞重编程技术为获取患者的活人类神经元提供了途径,并为体外模拟神经疾病提供了一种新的替代方法。神经电活动是体内神经系统功能的本质。因此,我们研究了广泛用于培养神经元的培养基中的神经元活动。我们发现经典基础培养基以及血清会损害动作电位的产生和突触通讯。为了克服这个问题,我们设计了一种新的神经元培养基(BrainPhys基础培养基+无血清补充剂),在其中调整了无机盐、神经活性氨基酸和能量底物的浓度。然后我们测试了这种培养基能够充分支持培养的人类神经元的活动和存活。长期暴露于这种生理培养基中还提高了具有突触活性的神经元的比例。该培养基旨在培养人类神经元,但也证明适用于啮齿动物神经元。BrainPhys基础培养基在支持神经生理活动方面的改进是缩小体内脑生理条件与体外神经元模型之间差距的重要一步。

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