Initial and corrective submovement encoding differences within primary motor cortex during precision reaching.

IF 2.1 3区 医学 Q3 NEUROSCIENCES Journal of neurophysiology Pub Date : 2024-08-01 Epub Date: 2024-07-10 DOI:10.1152/jn.00269.2023
Kevin C Schwartze, Wei-Hsien Lee, Adam G Rouse
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Abstract

Precision reaching often requires corrective submovements to obtain the desired goal. Most studies of reaching have focused on single initial movements, and implied the cortical encoding model was the same for all submovements. However, corrective submovements may show different encoding patterns from the initial submovement with distinct patterns of activation across the population. Two rhesus macaques performed a precision center-out-task with small targets. Neural activity from single units in the primary motor cortex and associated behavioral data were recorded to evaluate movement characteristics. Neural population data and individual neuronal firing rates identified with a peak finding algorithm to identify peaks in hand speed were examined for encoding differences between initial and corrective submovements. Individual neurons were fitted with a regression model that included the reach vector, position, and speed to predict firing rate. For both initial and corrective submovements, the largest effect remained movement direction. We observed a large subset changed their preferred direction greater than 45° between initial and corrective submovements. Neuronal depth of modulation also showed considerable variation when adjusted for movement speed. By using principal component analysis, neural trajectories of initial and corrective submovements progressed through different neural subspaces. These findings all suggest that different neural encoding patterns exist for initial and corrective submovements within the cortex. We hypothesize that this variation in how neurons change to encode small, corrective submovements might allow for a larger portion of the neural space being used to encode a greater range of movements with varying amplitudes and levels of precision.NEW & NOTEWORTHY Neuronal recordings matched with kinematic behavior were collected in a precision center-out task that often required corrective movements. We reveal large differences in preferred direction and depth of modulation between initial and corrective submovements across the neural population. We then present a model of the neural population describing how these shifts in tuning create different subspaces for signaling initial and corrective movements likely to improve motor precision.

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精确伸手过程中初级运动皮层内的初始和修正子运动编码差异
精确的伸手动作往往需要纠正性子动作才能达到预期目标。大多数关于伸手的研究都集中在单一的初始动作上,并暗示所有子动作的大脑皮层编码模式都是相同的。然而,纠正性子动作可能会显示出与初始子动作不同的编码模式,并在整个群体中显示出不同的激活模式。两只猕猴对小目标进行了精确的 "中心点移出 "任务。通过记录初级运动皮层单个单元的神经活动和相关行为数据来评估运动特征。神经群数据和单个神经元发射率通过峰值查找算法识别手速峰值,并检查初始动作和纠正动作之间的编码差异。单个神经元用一个回归模型进行拟合,该模型包括伸手矢量、位置和速度,以预测发射率。对于初始动作和纠正动作,最大的影响仍然是动作方向。我们观察到,在初始动作和纠正动作之间,很大一部分神经元的首选方向变化超过了 45⁰。神经元的调制深度在根据运动速度进行调整后也显示出相当大的差异。通过利用主成分分析,初始动作和纠正动作的神经轨迹在不同的神经子空间中发生了变化。这些发现都表明,在大脑皮层中,初始动作和纠正动作存在不同的神经编码模式。我们假设,神经元在编码小的纠正性子动作时所发生的这种变化,可能会使更大一部分神经空间用于编码幅度和精确度各不相同的更大范围的动作。
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来源期刊
Journal of neurophysiology
Journal of neurophysiology 医学-神经科学
CiteScore
4.80
自引率
8.00%
发文量
255
审稿时长
2-3 weeks
期刊介绍: The Journal of Neurophysiology publishes original articles on the function of the nervous system. All levels of function are included, from the membrane and cell to systems and behavior. Experimental approaches include molecular neurobiology, cell culture and slice preparations, membrane physiology, developmental neurobiology, functional neuroanatomy, neurochemistry, neuropharmacology, systems electrophysiology, imaging and mapping techniques, and behavioral analysis. Experimental preparations may be invertebrate or vertebrate species, including humans. Theoretical studies are acceptable if they are tied closely to the interpretation of experimental data and elucidate principles of broad interest.
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