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下行系统直接调控关键脊髓运动回路的发育。

Descending Systems Direct Development of Key Spinal Motor Circuits.

作者信息

Smith Calvin C, Paton Julian F R, Chakrabarty Samit, Ichiyama Ronaldo M

机构信息

School of Biomedical Sciences, University of Leeds, Leeds LS2 9JT, United Kingdom, and

Department of Physiology, School of Medical Sciences, University of Bristol, Bristol BS8 1TH, United Kingdom.

出版信息

J Neurosci. 2017 Jun 28;37(26):6372-6387. doi: 10.1523/JNEUROSCI.0149-17.2017. Epub 2017 Jun 2.

Abstract

The formation of mature spinal motor circuits is dependent on both activity-dependent and independent mechanisms during postnatal development. During this time, reorganization and refinement of spinal sensorimotor circuits occurs as supraspinal projections are integrated. However, specific features of postnatal spinal circuit development remain poorly understood. This study provides the first detailed characterization of rat spinal sensorimotor circuit development in the presence and absence of descending systems. We show that the development of proprioceptive afferent input to motoneurons (MNs) and Renshaw cells (RCs) is disrupted by thoracic spinal cord transection at postnatal day 5 (P5TX). P5TX also led to malformation of GABApre neuron axo-axonic contacts on Ia afferents and of the recurrent inhibitory circuit between MNs and RCs. Using a novel perfused preparation for studying motor control, we show that malformation of these spinal circuits leads to hyperexcitability of the monosynaptic reflex. Our results demonstrate that removing descending input severely disrupts the development of spinal circuits and identifies key mechanisms contributing to motor dysfunction in conditions such as cerebral palsy and spinal cord injury. Acquisition of mature behavior during postnatal development correlates with the arrival and maturation of supraspinal projections to the spinal cord. However, we know little about the role that descending systems play in the maturation of spinal circuits. Here, we characterize postnatal development of key spinal microcircuits in the presence and absence of descending systems. We show that formation of these circuits is abnormal after early (postnatal day 5) removal of descending systems, inducing hyperexcitability of the monosynaptic reflex. The study is a detailed characterization of spinal circuit development elucidating how these mechanisms contribute to motor dysfunction in conditions such as cerebral palsy and spinal cord injury. Understanding these circuits is crucial to developing new therapeutics and improving existing ones in such conditions.

摘要

成熟脊髓运动回路的形成在出生后发育过程中依赖于活动依赖和非依赖机制。在此期间,随着脊髓上投射的整合,脊髓感觉运动回路会发生重组和细化。然而,出生后脊髓回路发育的具体特征仍知之甚少。本研究首次详细描述了在有和没有下行系统的情况下大鼠脊髓感觉运动回路的发育情况。我们发现,出生后第5天进行胸段脊髓横断(P5TX)会破坏运动神经元(MNs)和闰绍细胞(RCs)的本体感觉传入输入的发育。P5TX还导致GABA能神经元在Ia传入纤维上的轴-轴突触接触以及MNs和RCs之间的回返抑制回路畸形。使用一种用于研究运动控制的新型灌注制剂,我们发现这些脊髓回路的畸形会导致单突触反射的兴奋性过高。我们的结果表明,去除下行输入会严重破坏脊髓回路的发育,并确定了导致脑瘫和脊髓损伤等疾病中运动功能障碍的关键机制。出生后发育过程中成熟行为的获得与脊髓上投射到达脊髓并成熟相关。然而,我们对下行系统在脊髓回路成熟中所起的作用知之甚少。在这里,我们描述了在有和没有下行系统的情况下关键脊髓微回路的出生后发育情况。我们表明,在早期(出生后第5天)去除下行系统后,这些回路的形成异常,导致单突触反射的兴奋性过高。这项研究是对脊髓回路发育的详细描述,阐明了这些机制如何导致脑瘫和脊髓损伤等疾病中的运动功能障碍。了解这些回路对于开发新疗法和改善此类疾病的现有疗法至关重要。

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J Neurosci. 2017 Jun 28;37(26):6372-6387. doi: 10.1523/JNEUROSCI.0149-17.2017. Epub 2017 Jun 2.

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