Center for Molecular and Behavioral Neuroscience, Rutgers University, Newark, New Jersey 07102.
Department of Psychiatry & Behavioral Neurosciences, Cedars-Sinai Virtual Medicine, Los Angeles, California 90048.
eNeuro. 2024 Aug 9;11(8). doi: 10.1523/ENEURO.0372-23.2024. Print 2024 Aug.
The electrophysiological response to rewards recorded during laboratory tasks has been well documented, yet little is known about the neural response patterns in a more naturalistic setting. Here, we combined a mobile-EEG system with an augmented reality headset to record event-related brain potentials (ERPs) while participants engaged in a naturalistic operant task to find rewards. Twenty-five participants were asked to navigate toward a west or east goal location marked by floating orbs, and once participants reached the goal location, the orb would then signify a reward (5 cents) or no-reward (0 cents) outcome. Following the outcome, participants returned to a start location marked by floating purple rings, and once standing in the middle, a 3 s counter signaled the next trial, for a total of 200 trials. Consistent with previous research, reward feedback evoked the reward positivity, an ERP component believed to index the sensitivity of the anterior cingulate cortex to reward prediction error signals. The reward positivity peaked ∼230 ms with a maximal at channel FCz (M = -0.695 μV, ±0.23) and was significantly different than zero ( < 0.01). Participants took ∼3.38 s to reach the goal location and exhibited a general lose-shift (68.3% ±3.5) response strategy and posterror slowing. Overall, these novel findings provide support for the idea that combining mobile-EEG with augmented reality technology is a feasible solution to enhance the ecological validity of human electrophysiological studies of goal-directed behavior and a step toward a new era of human cognitive neuroscience research that blurs the line between laboratory and reality.
在实验室任务中记录到的对奖励的电生理反应已经得到了很好的记录,但在更自然的环境中,对神经反应模式的了解甚少。在这里,我们结合了移动 EEG 系统和增强现实耳机,在参与者进行自然操作任务以寻找奖励时记录事件相关脑电位(ERPs)。25 名参与者被要求向标记有漂浮球体的西部或东部目标位置导航,一旦参与者到达目标位置,球体将表示奖励(5 美分)或无奖励(0 美分)的结果。在结果之后,参与者返回标记有漂浮紫色环的起始位置,一旦站在中间,一个 3 秒的计数器就会发出下一个试验的信号,总共进行 200 次试验。与先前的研究一致,奖励反馈引发了奖励正波,这是一种被认为反映前扣带皮层对奖励预测误差信号敏感性的 ERP 成分。奖励正波在通道 FCz 处达到峰值(M = -0.695 μV,±0.23),最大值为 230ms,与零( < 0.01)显著不同。参与者到达目标位置大约需要 3.38 秒,表现出一般的输-移(68.3% ±3.5)反应策略和后错减速。总的来说,这些新发现为以下观点提供了支持,即结合移动 EEG 和增强现实技术是增强人类目标导向行为电生理研究生态有效性的可行解决方案,也是朝着模糊实验室和现实之间界限的新时代人类认知神经科学研究迈出的一步。