Department of Cellular and Integrative Physiology, University of Texas Health Science Center at San Antonio, San Antonio, TX, 78299, USA.
Department of Anatomy and Physiology, Kansas State University, Manhattan, KS, 66506, USA.
Sci Rep. 2020 Feb 7;10(1):2168. doi: 10.1038/s41598-020-58901-y.
Unipolar brush cells (UBCs) are excitatory granular layer interneurons in the vestibulocerebellum. Here we assessed motor coordination and balance to investigate if deletion of acid-sensing ion channel 5 (Asic5), which is richly expressed in type II UBCs, is sufficient to cause ataxia. The possible cellular mechanism underpinning ataxia in this global Asic5 knockout model was elaborated using brain slice electrophysiology. Asic5 deletion impaired motor performance and decreased intrinsic UBC excitability, reducing spontaneous action potential firing by slowing maximum depolarization rate. Reduced intrinsic excitability in UBCs was partially compensated by suppression of the magnitude and duration of delayed hyperpolarizing K currents triggered by glutamate. Glutamate typically stimulates burst firing subsequent to this hyperpolarization in normal type II UBCs. Burst firing frequency was elevated in knockout type II UBCs because it was initiated from a more depolarized potential compared to normal cells. Findings indicate that Asic5 is important for type II UBC activity and that loss of Asic5 contributes to impaired movement, likely, at least in part, due to altered temporal processing of vestibular input.
单极刷状细胞 (UBCs) 是前庭小脑的兴奋性颗粒层中间神经元。在这里,我们评估了运动协调和平衡,以研究在丰富表达于 II 型 UBCs 的酸感应离子通道 5 (Asic5) 缺失是否足以引起共济失调。使用脑片电生理学阐述了这个全局 Asic5 敲除模型中共济失调的潜在细胞机制。Asic5 的缺失损害了运动表现并降低了 UBC 的内在兴奋性,通过减缓最大去极化率来减少自发性动作电位的发射。谷氨酸引发的延迟超极化 K 电流的幅度和持续时间的抑制部分补偿了 UBC 内的内在兴奋性的降低。在正常的 II 型 UBC 中,谷氨酸通常刺激超极化后的爆发放电。与正常细胞相比,由于在敲除的 II 型 UBC 中从更去极化的电位开始,因此爆发放电频率升高。研究结果表明,Asic5 对 II 型 UBC 的活动很重要,并且 Asic5 的缺失导致运动受损,这可能至少部分是由于前庭输入的时间处理发生改变所致。