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非接触式三明治型神经元-星形胶质细胞共培养中对原代海马神经元进行神经兼容的代谢聚糖标记

Neuro-Compatible Metabolic Glycan Labeling of Primary Hippocampal Neurons in Noncontact, Sandwich-Type Neuron-Astrocyte Coculture.

作者信息

Choi Ji Yu, Park Matthew, Cho Hyeoncheol, Kim Mi-Hee, Kang Kyungtae, Choi Insung S

机构信息

Center for Cell-Encapsulation Research, Department of Chemistry, KAIST , Daejeon 34141, Korea.

Department of Applied Chemistry, Kyung Hee University , Yongin, Gyeonggi 17104, Korea.

出版信息

ACS Chem Neurosci. 2017 Dec 20;8(12):2607-2612. doi: 10.1021/acschemneuro.7b00300. Epub 2017 Sep 29.

Abstract

Glycans are intimately involved in several facets of neuronal development and neuropathology. However, the metabolic labeling of surface glycans in primary neurons is a difficult task because of the neurotoxicity of unnatural monosaccharides that are used as a metabolic precursor, hindering the progress of metabolic engineering in neuron-related fields. Therefore, in this paper, we report a neurosupportive, neuron-astrocyte coculture system that neutralizes the neurotoxic effects of unnatural monosaccharides, allowing for the long-term observation and characterization of glycans in primary neurons in vitro. Polysialic acids in neurons are selectively imaged, via the metabolic labeling of sialoglycans with peracetylated N-azidoacetyl-d-mannosamine (AcManNAz), for up to 21 DIV. Two-color labeling shows that neuronal activities, such as neurite outgrowth and recycling of membrane components, are highly dynamic and change over time during development. In addition, the insertion sites of membrane components are suggested to not be random, but be predominantly localized in developing neurites. This work provides a new research platform and also suggests advanced 3D systems for metabolic-labeling studies of glycans in primary neurons.

摘要

聚糖密切参与神经元发育和神经病理学的多个方面。然而,由于用作代谢前体的非天然单糖具有神经毒性,对原代神经元表面聚糖进行代谢标记是一项艰巨的任务,这阻碍了神经元相关领域代谢工程的进展。因此,在本文中,我们报告了一种神经支持性的神经元-星形胶质细胞共培养系统,该系统可中和非天然单糖的神经毒性,从而能够在体外对原代神经元中的聚糖进行长期观察和表征。通过用全乙酰化的N-叠氮乙酰基-D-甘露糖胺(AcManNAz)对唾液酸聚糖进行代谢标记,对神经元中的多唾液酸进行了长达21天体外培养(DIV)的选择性成像。双色标记显示,神经元活动,如神经突生长和膜成分的循环利用,在发育过程中具有高度动态性且随时间变化。此外,膜成分的插入位点并非随机分布,而是主要定位于正在发育的神经突中。这项工作提供了一个新的研究平台,也为原代神经元中聚糖的代谢标记研究提出了先进的三维系统。

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