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Merck
CN

A functional network of highly pure enteric neurons in a dish.

Frontiers in neuroscience (2023-01-24)
Martial Caillaud, Morgane E Le Dréan, Adrien De-Guilhem-de-Lataillade, Catherine Le Berre-Scoul, Jérôme Montnach, Steven Nedellec, Gildas Loussouarn, Vincent Paillé, Michel Neunlist, Hélène Boudin
摘要

The enteric nervous system (ENS) is the intrinsic nervous system that innervates the entire digestive tract and regulates major digestive functions. Recent evidence has shown that functions of the ENS critically rely on enteric neuronal connectivity; however, experimental models to decipher the underlying mechanisms are limited. Compared to the central nervous system, for which pure neuronal cultures have been developed for decades and are recognized as a reference in the field of neuroscience, an equivalent model for enteric neurons is lacking. In this study, we developed a novel model of highly pure rat embryonic enteric neurons with dense and functional synaptic networks. The methodology is simple and relatively fast. We characterized enteric neurons using immunohistochemical, morphological, and electrophysiological approaches. In particular, we demonstrated the applicability of this culture model to multi-electrode array technology as a new approach for monitoring enteric neuronal network activity. This in vitro model of highly pure enteric neurons represents a valuable new tool for better understanding the mechanisms involved in the establishment and maintenance of enteric neuron synaptic connectivity and functional networks.

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脱氧核糖核酸酶 I 来源于牛胰腺, lyophilized powder, Protein ≥85 %, ≥400 Kunitz units/mg protein
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磷酸酶抑制剂混合物3, DMSO solution
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胰蛋白酶 来源于牛胰腺, TPCK Treated, essentially salt-free, lyophilized powder, ≥10,000 BAEE units/mg protein
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单克隆抗 β-肌动蛋白抗体 小鼠抗, clone AC-15, ascites fluid
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单克隆抗 β-微管蛋白 III 小鼠抗, clone SDL.3D10, ascites fluid