Biotechnological Optics Research Team, RIKEN Center for Advanced Photonics, Wako, Saitama 351-0198, Japan; Laboratory for Cell Function Dynamics, RIKEN Center for Brain Science, Wako, Saitama 351-0198, Japan.
Laboratory for Behavioral Genetics, RIKEN Center for Brain Science, Wako, Saitama 351-0198, Japan.
Cell Rep. 2021 Nov 9;37(6):109966. doi: 10.1016/j.celrep.2021.109966.
Sensory processing is essential for motor control. Climbing fibers from the inferior olive transmit sensory signals to Purkinje cells, but how the signals are represented in the cerebellar cortex remains elusive. To examine the olivocerebellar organization of the mouse brain, we perform quantitative Ca imaging to measure complex spikes (CSs) evoked by climbing fiber inputs over the entire dorsal surface of the cerebellum simultaneously. The surface is divided into approximately 200 segments, each composed of ∼100 Purkinje cells that fire CSs synchronously. Our in vivo imaging reveals that, although stimulation of four limb muscles individually elicits similar global CS responses across nearly all segments, the timing and location of a stimulus are derived by Bayesian inference from coordinated activation and inactivation of multiple segments on a single trial basis. We propose that the cerebellum performs segment-based, distributed-population coding that represents the conditional probability of sensory events.
感觉处理对于运动控制至关重要。来自下橄榄核的 climbing fibers 将感觉信号传递到浦肯野细胞,但信号在小脑皮层中的表示方式仍不清楚。为了研究小鼠大脑的橄榄小脑组织,我们进行定量钙成像,以同时测量整个小脑背表面 climbing fiber 输入引发的复杂峰(CSs)。表面被分成大约 200 个片段,每个片段由大约 100 个同步发射 CSs 的浦肯野细胞组成。我们的体内成像显示,尽管单独刺激四肢肌肉会在几乎所有片段中引发相似的全局 CS 反应,但刺激的时间和位置是通过基于单个试验的多个片段的协调激活和失活的贝叶斯推断得出的。我们提出小脑通过基于片段的分布式群体编码来表示感觉事件的条件概率。