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Regional complexity in enteric neuron wiring reflects diversity of motility patterns in the mouse large intestine

机译:肠神经元布线的区域复杂性反映了小鼠大肠运动模式的多样性

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摘要

The enteric nervous system controls a variety of gastrointestinal functions including intestinal motility. The minimal neuronal circuit necessary to direct peristalsis is well-characterized but several intestinal regions display also other motility patterns for which the underlying circuits and connectivity schemes that coordinate the transition between those patterns are poorly understood. We investigated whether in regions with a richer palette of motility patterns, the underlying nerve circuits reflect this complexity. Using Ca2+ imaging, we determined the location and response fingerprint of large populations of enteric neurons upon focal network stimulation. Complemented by neuronal tracing and volumetric reconstructions of synaptic contacts, this shows that the multifunctional proximal colon requires specific additional circuit components as compared to the distal colon, where peristalsis is the predominant motility pattern. Our study reveals that motility control is hard-wired in the enteric neural networks and that circuit complexity matches the motor pattern portfolio of specific intestinal regions.
机译:肠神经系统控制各种胃肠道功能,包括肠蠕动。定向蠕动所必需的最小神经元回路已被很好地表征,但是几个肠道区域还显示了其他运动模式,对于这些运动模式,协调这些模式之间的过渡的基础电路和连通性方案知之甚少。我们调查了在运动模式丰富的区域中,潜在的神经回路是否反映了这种复杂性。使用Ca 2 + 成像,我们确定了局域网络刺激后大肠神经元群体的位置和响应指纹。与神经元追踪和突触接触的体积重建相辅相成,这表明与蠕动是主要运动模式的远端结肠相比,多功能近端结肠需要特定的附加回路组件。我们的研究表明,运动控制在肠道神经网络中是硬连线的,并且电路复杂性与特定肠道区域的运动模式组合相匹配。

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