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动眼神经整合器使用与行为相关的坐标系。

The oculomotor neural integrator uses a behavior-related coordinate system.

作者信息

Crawford J D

机构信息

Department of Neurophysiology, Montreal Neurological Institute, McGill University, Quebec, Canada.

出版信息

J Neurosci. 1994 Nov;14(11 Pt 2):6911-23. doi: 10.1523/JNEUROSCI.14-11-06911.1994.

Abstract

Coordinate systems are a central issue in computational neuroscience: are they explicitly represented at some reductive level of brain function, and if so, are they only trivial products of associated anatomic geometries? This investigation examined these questions in the neural network that holds eye position, the so-called oculomotor integrator. Since neural activity in the integrator is behaviorally constrained by Listing's law to encode horizontal and vertical eye positions within Listing's plane and zero rotation about the orthogonal torsional axis, it was hypothesized that any integrator coordinate system would be developmentally predisposed to align with Listing's plane. A test for this hypothesis was developed with the use of a kinematically correct model of the three-dimensional saccade generator. Three mathematical integrators were used to represent the neuron populations that control torsional, vertical, and horizontal eye position. Simulated failure of the torsional and vertical integrators produced eye position drift that was parallel to the horizontal plane containing the intrinsic coordinate axes for these components. Furthermore, this drift settled toward a resting range parallel to the intrinsic vertical coordinate axis (for horizontal rotation). To experimentally identify these intrinsic population coordinates, three-dimensional eye positions were measured in four Macaca fascicularis after injection of muscimol into the mesencephalic interstitial nucleus of Cajal (INC), a technique that disrupts the torsional and vertical integrators (Crawford et al., 1991). INC inactivation produced exponential, position-dependent decay in vertical and torsional eye position. There was no position-dependent horizontal drift, but in the original coordinate system (defined arbitrarily by the measurement apparatus) there was a constant-direction horizontal drift. However, this extraneous horizontal drift was eliminated when the data were transformed into a coordinate system that aligned with Listing's plane. The direction of torsional drift correlated well (r = 0.85), across all experiments, with the normal to Listing's plane. On average, these two directions were only 0.06 degrees from perfect alignment. In contrast, drift direction did not correlate with stereotaxic coordinates (r = 0.10). Furthermore, the drift settled toward a range parallel to and correlated with Listing's plane (r = 0.94), whereas this range did not correlate well with stereotaxic coordinates (r = 0.02). On average, the resting range was aligned within 0.98 degrees of Listing's plane. Finally, this resting range was near orthogonal (average 91.9 degrees across all experiments) to the direction of torsional drift. These results show that integrator cell populations use an orthogonal, craniotopic coordinate system that aligns with Listing's plane.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

坐标系是计算神经科学中的核心问题

它们是否在大脑功能的某种简化层面上被明确表征?如果是,它们是否仅仅是相关解剖几何结构的平凡产物?本研究在控制眼球位置的神经网络(即所谓的眼动积分器)中探讨了这些问题。由于积分器中的神经活动在行为上受利斯廷定律约束,以在利斯廷平面内编码水平和垂直眼球位置,并围绕正交扭转轴进行零旋转,因此推测任何积分器坐标系在发育上都会倾向于与利斯廷平面对齐。利用三维扫视发生器的运动学正确模型对这一假设进行了测试。使用三个数学积分器来表示控制扭转、垂直和水平眼球位置的神经元群体。模拟的扭转和垂直积分器故障导致眼球位置漂移,该漂移与包含这些组件固有坐标轴的水平面平行。此外,这种漂移趋向于一个与固有垂直坐标轴平行的静止范围(用于水平旋转)。为了通过实验确定这些固有群体坐标,在向中脑 Cajal 间质核(INC)注射蝇蕈醇后,测量了四只猕猴的三维眼球位置,蝇蕈醇注射技术会破坏扭转和垂直积分器(Crawford 等人,1991 年)。INC 失活导致垂直和扭转眼球位置呈指数式、位置依赖性衰减。不存在位置依赖性水平漂移,但在原始坐标系(由测量设备任意定义)中存在恒定方向的水平漂移。然而,当数据转换为与利斯廷平面对齐的坐标系时,这种无关的水平漂移被消除。在所有实验中,扭转漂移方向与利斯廷平面的法线相关性良好(r = 0.85)。平均而言,这两个方向与完美对齐仅相差 0.06 度。相比之下,漂移方向与立体定向坐标无关(r = 0.10)。此外,漂移趋向于一个与利斯廷平面平行且相关的范围(r = 0.94),而这个范围与立体定向坐标相关性不佳(r = 0.02)。平均而言,静止范围与利斯廷平面的对齐偏差在 0.98 度以内。最后,这个静止范围与扭转漂移方向接近正交(所有实验的平均值为 91.9 度)。这些结果表明,积分器细胞群体使用与利斯廷平面对齐的正交颅顶坐标系。(摘要截取自 250 字)

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