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警觉猴扫视抑制爆发神经元的特征与功能鉴定

Characteristics and functional identification of saccadic inhibitory burst neurons in the alert monkey.

作者信息

Scudder C A, Fuchs A F, Langer T P

机构信息

Department of Physiology and Biophysics, University of Washington, Seattle 98195.

出版信息

J Neurophysiol. 1988 May;59(5):1430-54. doi: 10.1152/jn.1988.59.5.1430.

DOI:10.1152/jn.1988.59.5.1430
PMID:3385468
Abstract
  1. With the use of single-unit recording, the reticular formation immediately caudal to the abducens nucleus was searched for saccadic burst neurons in alert, trained rhesus monkeys. We recorded 80 short- and long-lead burst neurons, investigated their connections, and quantitatively analyzed their discharge characteristics. 2. Like excitatory burst neurons located rostral to the abducens, these caudal burst neurons fire optimally for ipsilaterally directed saccades, fire less for vertical saccades, and fire minimally, if at all, for contralateral saccades. The direction associated with the maximum number of spikes was approximately along the horizontal axis (1 +/- 12 degrees (SD); n = 33). 3. The first spike of the burst led the saccade by 2-120 ms, depending on the unit. Neurons were divided into short lead (45%) and long lead (55%) using a burst-lead criterion of 15 ms. In the on-direction, the discharges of both types exhibited strong correlations between number of spikes in the burst and size of the horizontal saccade component; duration of the burst and duration of the saccade; and peak frequency of the burst and peak velocity of the saccade. These relations were looser for long-lead neurons than for short-lead neurons. 4. Horseradish peroxidase injected into the abducens nucleus retrogradely labeled cells in the contralateral reticular formation where burst neurons were recorded, showing that cells in this region make crossed monosynaptic connections. There was good agreement between the limits of this region, as determined physiologically and anatomically. 5. Microstimulation at the locus of recorded burst neurons elicited EMG potentials in the contralateral lateral rectus muscle of the appropriate sign and latency for a monosynaptic inhibitory projection to abducens motoneurons. Stimulation also elicited eye movements consistent with inhibition of the contralateral lateral rectus. 6. It is argued that these characteristics make it likely that the short-lead neurons are the source of the afference which generate the pause in contralateral abducens motoneuron firing during adducting saccades. These neurons are therefore analogous to the inhibitory burst neurons (IBNs) found in the cat. The characteristics of long-lead burst neurons, particularly their lead, make them less likely to subserve this function. These cells might be better suited to providing input to omnipause neurons or to the short-lead IBNs.
摘要
  1. 运用单神经元记录技术,在警觉且受过训练的恒河猴中,于展神经核尾侧紧邻的网状结构中寻找眼跳爆发神经元。我们记录了80个短潜伏期和长潜伏期爆发神经元,研究了它们的连接,并定量分析了它们的放电特征。2. 与展神经核头侧的兴奋性爆发神经元一样,这些尾侧爆发神经元对同侧方向的眼跳放电最佳,对垂直眼跳放电较少,而对侧眼跳放电极少(若有放电)。与最大尖峰数量相关的方向大致沿水平轴(1±12度(标准差);n = 33)。3. 爆发的第一个尖峰比眼跳提前2 - 120毫秒,具体取决于神经元。根据15毫秒的爆发潜伏期标准,神经元被分为短潜伏期(45%)和长潜伏期(55%)。在眼跳方向上,两种类型的神经元在爆发中的尖峰数量与水平眼跳分量大小、爆发持续时间与眼跳持续时间、爆发峰值频率与眼跳峰值速度之间均表现出强相关性。长潜伏期神经元的这些关系比短潜伏期神经元的更松散。4. 将辣根过氧化物酶注入展神经核,逆向标记了记录到爆发神经元的对侧网状结构中的细胞,表明该区域的细胞形成交叉单突触连接。在生理和解剖学确定的该区域界限之间存在良好的一致性。5. 在记录到的爆发神经元位置进行微刺激,在对侧外直肌中引发了具有适当信号和潜伏期的肌电图电位,提示存在对展神经运动神经元的单突触抑制投射。刺激还引发了与对侧外直肌抑制一致的眼球运动。6. 有人认为,这些特征使得短潜伏期神经元很可能是在内收性眼跳期间导致对侧展神经运动神经元放电暂停的传入信号源。因此,这些神经元类似于在猫中发现的抑制性爆发神经元(IBNs)。长潜伏期爆发神经元的特征,尤其是它们的潜伏期,使其不太可能承担这一功能。这些细胞可能更适合为全暂停神经元或短潜伏期IBNs提供输入。

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