Department of Physical Therapy, University of Florida, Gainesville, FL 32610, United States; McKnight Brain Institute, University of Florida, Gainesville, FL 32601, United States; Center for Respiratory Research and Rehabilitation, University of Florida, Gainesville, FL 32610, United States.
Department of Physical Therapy, University of Florida, Gainesville, FL 32610, United States; Center for Respiratory Research and Rehabilitation, University of Florida, Gainesville, FL 32610, United States.
Respir Physiol Neurobiol. 2020 Jan;271:103305. doi: 10.1016/j.resp.2019.103305. Epub 2019 Sep 22.
Spinal interneuron (IN) networks can facilitate respiratory motor recovery after spinal cord injury (SCI). We hypothesized that excitatory synaptic connectivity between INs located immediately caudal to unilateral cervical SCI would be most prevalent in a contra- to ipsilateral direction. Adult rats were studied following chronic C2 spinal cord hemisection (C2Hx) injury. Rats were anesthetized and ventilated and a multi-electrode array was used to simultaneously record INs on both sides of the C4-5 spinal cord. The temporal firing relationship between IN pairs was evaluated using cross-correlation with directionality of synaptic connections inferred based on electrode location. During baseline recordings, the majority of detectable excitatory IN connections occurred in a contra- to- ipsilateral direction. However, acute respiratory stimulation with hypoxia abolished this directionality, while simultaneously increasing the detectable inhibitory connections within the ipsilateral cord. We conclude that propriospinal networks caudal to SCI can display a contralateral-to-ipsilateral directionality of synaptic connections and that these connections are modulated by acute exposure to hypoxia.
脊髓中间神经元 (IN) 网络可以促进脊髓损伤 (SCI) 后的呼吸运动恢复。我们假设,位于单侧颈 SCI 下方的 IN 之间的兴奋性突触连接最常见于对侧到同侧方向。在慢性 C2 脊髓半切 (C2Hx) 损伤后对成年大鼠进行研究。在麻醉和通气后,使用多电极阵列同时记录 C4-5 脊髓两侧的 IN。通过基于电极位置推断的突触连接的方向,使用交叉相关来评估 IN 对之间的时间发放关系。在基线记录期间,大多数可检测到的兴奋性 IN 连接发生在对侧到同侧方向。然而,急性低氧呼吸刺激消除了这种方向性,同时增加了同侧脊髓内可检测的抑制性连接。我们得出结论,SCI 下方的 propriospinal 网络可以显示突触连接的对侧到同侧方向性,并且这些连接会被急性暴露于低氧所调节。