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视网膜方向选择性电路中的布线特异性。

Wiring specificity in the direction-selectivity circuit of the retina.

机构信息

Max Planck Institute for Medical Research, Department of Biomedical Optics, Heidelberg 69120, Germany.

出版信息

Nature. 2011 Mar 10;471(7337):183-8. doi: 10.1038/nature09818.

Abstract

The proper connectivity between neurons is essential for the implementation of the algorithms used in neural computations, such as the detection of directed motion by the retina. The analysis of neuronal connectivity is possible with electron microscopy, but technological limitations have impeded the acquisition of high-resolution data on a large enough scale. Here we show, using serial block-face electron microscopy and two-photon calcium imaging, that the dendrites of mouse starburst amacrine cells make highly specific synapses with direction-selective ganglion cells depending on the ganglion cell's preferred direction. Our findings indicate that a structural (wiring) asymmetry contributes to the computation of direction selectivity. The nature of this asymmetry supports some models of direction selectivity and rules out others. It also puts constraints on the developmental mechanisms behind the formation of synaptic connections. Our study demonstrates how otherwise intractable neurobiological questions can be addressed by combining functional imaging with the analysis of neuronal connectivity using large-scale electron microscopy.

摘要

神经元之间的适当连接对于实现神经计算中使用的算法至关重要,例如视网膜检测有方向的运动。通过电子显微镜可以分析神经元的连接,但技术限制阻碍了在足够大的范围内获取高分辨率的数据。在这里,我们使用连续块面电子显微镜和双光子钙成像技术表明,根据神经节细胞的偏好方向,星形胶质细胞的树突与方向选择性神经节细胞形成高度特异性的突触。我们的发现表明,结构(布线)不对称有助于方向选择性的计算。这种不对称的性质支持某些方向选择性模型,排除了其他模型。它还限制了形成突触连接背后的发育机制。我们的研究表明,通过将功能成像与使用大规模电子显微镜分析神经元连接相结合,如何解决原本难以解决的神经生物学问题。

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