Kuang Shenbing, Morel Pierre, Gail Alexander
State Key Laboratory of Brain and Cognitive Science, Institute of Psychology, Chinese Academy of Sciences, Beijing, China German Primate Center, Göttingen, Germany Bernstein Center for Computational Neuroscience, Göttingen, Germany.
German Primate Center, Göttingen, Germany.
Cereb Cortex. 2016 Feb;26(2):731-47. doi: 10.1093/cercor/bhu312. Epub 2015 Jan 9.
Neurons in the posterior parietal cortex respond selectively for spatial parameters of planned goal-directed movements. Yet, it is still unclear which aspects of the movement the neurons encode: the spatial parameters of the upcoming physical movement (physical goal), or the upcoming visual limb movement (visual goal). To test this, we recorded neuronal activity from the parietal reach region while monkeys planned reaches under either normal or prism-reversed viewing conditions. We found predominant encoding of physical goals while fewer neurons were selective for visual goals during planning. In contrast, local field potentials recorded in the same brain region exhibited predominant visual goal encoding, similar to previous imaging data from humans. The visual goal encoding in individual neurons was neither related to immediate visual input nor to visual memory, but to the future visual movement. Our finding suggests that action planning in parietal cortex is not exclusively a precursor of impending physical movements, as reflected by the predominant physical goal encoding, but also contains spatial kinematic parameters of upcoming visual movement, as reflected by co-existing visual goal encoding in neuronal spiking. The co-existence of visual and physical goals adds a complementary perspective to the current understanding of parietal spatial computations in primates.
后顶叶皮层中的神经元会针对计划好的目标导向运动的空间参数做出选择性反应。然而,这些神经元编码的是运动的哪些方面仍不清楚:即将到来的身体运动的空间参数(身体目标),还是即将到来的视觉肢体运动(视觉目标)。为了测试这一点,我们在猴子处于正常或棱镜反转视觉条件下计划伸手够物时,记录了顶叶够物区域的神经元活动。我们发现,在计划过程中,神经元主要编码身体目标,而对视觉目标具有选择性的神经元较少。相比之下,在同一脑区记录的局部场电位则主要编码视觉目标,这与先前来自人类的成像数据相似。单个神经元中的视觉目标编码既不与即时视觉输入相关,也不与视觉记忆相关,而是与未来的视觉运动相关。我们的研究结果表明,顶叶皮层中的动作计划并非仅仅是即将到来的身体运动的前奏,这一点体现在主要的身体目标编码上,它还包含即将到来的视觉运动的空间运动学参数,这一点体现在神经元放电中同时存在的视觉目标编码上。视觉目标和身体目标的共存为当前对灵长类动物顶叶空间计算的理解增添了一个补充视角。