Clement J. Zablocki Department of Veterans Affairs Medical Center, Milwaukee, WI, United States; Department of Anesthesiology, Medical College of Wisconsin, Milwaukee, WI, United States.
Clement J. Zablocki Department of Veterans Affairs Medical Center, Milwaukee, WI, United States; Department of Anesthesiology, Medical College of Wisconsin, Milwaukee, WI, United States; Pediatric Anesthesia, Children's Hospital of Wisconsin, Milwaukee, WI, United States.
Respir Physiol Neurobiol. 2019 Jul;265:127-140. doi: 10.1016/j.resp.2018.06.011. Epub 2018 Jun 28.
Neurons in a subregion of the medial parabrachial (PB) complex control expiratory duration (TE) and the inspiratory on-switch. To better understanding the underlying mechanisms, this study aimed to determine the types of medullary neurons in the rhythmogenic preBötzinger/Bötzinger Complex (preBötC/BötC) and adjacent areas that receive synaptic inputs from the PB subregion and whether these inputs are excitatory or inhibitory in nature. Highly localized electrical stimuli in the PB subregion combined with multi-electrode recordings from respiratory neurons and phrenic nerve activities were used to generate stimulus-to-spike event histograms to detect correlations in decerebrate, vagotomized dogs during isocapnic hyperoxia. Short-time scale correlations were found in 237/442 or ∼54% of the ventral respiratory column (VRC) neurons. Inhibition of E-neurons was ∼2.5X greater than for I-neurons, while Pre-I and I-neurons were excited. These findings indicate that the control of TE and the inspiratory on-switch by the PB subregion are mediated by a marked inhibition of BötC E-neurons combined with an excitation of I-neurons, especially pre-I neurons.
中脑导水管周围灰质(PB)复合体的一个亚区中的神经元控制呼气持续时间(TE)和吸气起始。为了更好地理解潜在机制,本研究旨在确定接受 PB 亚区突触输入的呼吸节律发生器 PreBötzinger/Bötzinger 复合体(preBötC/BötC)和邻近区域中的神经元类型,以及这些输入的性质是兴奋性还是抑制性。在去大脑、迷走神经切断的狗在等二氧化碳过度通气期间,在 PB 亚区中进行高度局部化的电刺激,并结合呼吸神经元和膈神经活动的多电极记录,生成刺激-尖峰事件直方图,以检测短时间尺度的相关性。在 442 个或约 54%的腹侧呼吸柱(VRC)神经元中发现了相关性。E 神经元的抑制作用比 I 神经元约大 2.5 倍,而 Pre-I 和 I 神经元被兴奋。这些发现表明,PB 亚区对 TE 和吸气起始的控制是通过显著抑制 BötC E 神经元与兴奋 I 神经元(尤其是 Pre-I 神经元)共同介导的。