Requarth Tim, Kaifosh Patrick, Sawtell Nathaniel B
Department of Neuroscience and Kavli Institute for Brain Science, Columbia University, New York, New York 10032.
Department of Neuroscience and Kavli Institute for Brain Science, Columbia University, New York, New York 10032
J Neurosci. 2014 Nov 26;34(48):16103-16. doi: 10.1523/JNEUROSCI.2751-14.2014.
Animals must distinguish behaviorally relevant patterns of sensory stimulation from those that are attributable to their own movements. In principle, this distinction could be made based on internal signals related to motor commands, known as corollary discharge (CD), sensory feedback, or some combination of both. Here we use an advantageous model system--the electrosensory lobe (ELL) of weakly electric mormyrid fish--to directly examine how CD and proprioceptive feedback signals are transformed into negative images of the predictable electrosensory consequences of the fish's motor commands and/or movements. In vivo recordings from ELL neurons and theoretical modeling suggest that negative images are formed via anti-Hebbian plasticity acting on random, nonlinear mixtures of CD and proprioception. In support of this, we find that CD and proprioception are randomly mixed in spinal mossy fibers and that properties of granule cells are consistent with a nonlinear recoding of these signals. The mechanistic account provided here may be relevant to understanding how internal models of movement consequences are implemented in other systems in which similar components (e.g., mixed sensory and motor signals and synaptic plasticity) are found.
动物必须从那些由自身运动引起的感觉刺激中区分出与行为相关的感觉刺激模式。原则上,这种区分可以基于与运动指令相关的内部信号来进行,这种信号被称为伴随放电(CD)、感觉反馈,或者两者的某种组合。在这里,我们使用一种优势模型系统——弱电非洲长颌鱼的电感觉叶(ELL)——来直接研究CD和本体感受反馈信号是如何被转化为鱼类运动指令和/或运动的可预测电感觉后果的负像的。对ELL神经元的体内记录和理论建模表明,负像是通过作用于CD和本体感受的随机、非线性混合的反赫布可塑性形成的。支持这一观点的是,我们发现CD和本体感受在脊髓苔藓纤维中随机混合,并且颗粒细胞的特性与这些信号的非线性重新编码一致。这里提供的机制解释可能与理解运动后果的内部模型在其他存在类似成分(例如,混合的感觉和运动信号以及突触可塑性)的系统中是如何实现的相关。