Karmeier Katja, Krapp Holger G, Egelhaaf Martin
Bielefeld University, Lehrstuhl für Neurobiologie, Postfach 100131, D-33501 Bielefeld, Germany.
J Neurophysiol. 2005 Sep;94(3):2182-94. doi: 10.1152/jn.00278.2005. Epub 2005 May 18.
Coding of sensory information often involves the activity of neuronal populations. We demonstrate how the accuracy of a population code depends on integration time, the size of the population, and noise correlation between the participating neurons. The population we study consists of 10 identified visual interneurons in the blowfly Calliphora vicina involved in optic flow processing. These neurons are assumed to encode the animal's head or body rotations around horizontal axes by means of graded potential changes. From electrophysiological experiments we obtain parameters for modeling the neurons' responses. From applying a Bayesian analysis on the modeled population response we draw three major conclusions. First, integration of neuronal activities over a time period of only 5 ms after response onset is sufficient to decode accurately the rotation axis. Second, noise correlation between neurons has only little impact on the population's performance. And third, although a population of only two neurons would be sufficient to encode any horizontal rotation axis, the population of 10 vertical system neurons is advantageous if the available integration time is short. For the fly, short integration times to decode neuronal responses are important when controlling rapid flight maneuvers.
感觉信息的编码通常涉及神经元群体的活动。我们展示了群体编码的准确性如何取决于整合时间、群体大小以及参与的神经元之间的噪声相关性。我们研究的群体由10个已识别的视觉中间神经元组成,这些神经元存在于参与光流处理的绿蝇(Calliphora vicina)中。假设这些神经元通过分级电位变化来编码动物围绕水平轴的头部或身体旋转。通过电生理实验,我们获得了用于对神经元反应进行建模的参数。通过对建模的群体反应应用贝叶斯分析,我们得出三个主要结论。第一,在反应开始后仅5毫秒的时间段内对神经元活动进行整合,就足以准确解码旋转轴。第二,神经元之间的噪声相关性对群体的性能影响很小。第三,虽然仅两个神经元的群体就足以编码任何水平旋转轴,但如果可用的整合时间较短,由10个垂直系统神经元组成的群体则具有优势。对于苍蝇来说,在控制快速飞行机动时,短时间整合以解码神经元反应很重要。