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Long-Term Enhancement of Brain Function and Cognition Using Cognitive Training and Brain Stimulation

机译:通过认知训练和脑刺激长期增强脑功能和认知

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Noninvasive brain stimulation has shown considerable promise for enhancing cognitive functions by the long-term manipulation of neuroplasticity [1-3]. However, the observation of such improvements has been focused at the behavioral level, and enhancements largely restricted to the performance of basic tasks. Here, we investigate whether transcranial random noise stimulation (TRNS) can improve learning and subsequent performance on complex arithmetic tasks. TRNS of the bilateral dorsolateral prefrontal cortex (DLPFC), a key area in arithmetic [4, 5], was uniquely coupled with near-infrared spectroscopy (NIRS) to measure online hemodynamic responses within the prefrontal cortex. Five consecutive days of TRNS-accompanied cognitive training enhanced the speed of both calculation-and memory-recall-based arithmetic learning. These behavioral improvements were associated with defined hemodynamic responses consistent with more efficient neurovascular coupling within the left DLPFC. Testing 6 months after training revealed long-lasting behavioral and physiological modifications in the stimulated group relative to sham controls for trained and nontrained calculation material. These results demonstrate that, depending on the learning regime, TRNS can induce long-term enhancement of cognitive and brain functions. Such findings have significant implications for basic and translational neuroscience, highlighting TRNS as a viable approach to enhancing learning and high-level cognition by the long-term modulation of neuroplasticity.
机译:通过长期操纵神经可塑性,无创性脑刺激已显示出增强认知功能的巨大前景[1-3]。但是,对这种改进的观察一直集中在行为层面,而增强在很大程度上限于基本任务的执行。在这里,我们调查经颅随机噪声刺激(TRNS)是否可以改善复杂算术任务的学习和后续性能。双边背外侧前额叶皮层(DLPFC)的TRNS,算术的关键区域[4,5],与近红外光谱法(NIRS)独特地结合使用,以测量前额叶皮层内的在线血流动力学响应。 TRNS陪同的认知训练连续五天提高了基于计算和基于记忆调用的算术学习的速度。这些行为改善与确定的血液动力学反应相关,与左DLPFC内更有效的神经血管耦合一致。训练6个月后进行的测试显示,与经过训练的和未经训练的计算材料的假对照相比,受刺激的组在行为和生理上具有持久的改变。这些结果表明,根据学习方式的不同,TRNS可以诱导认知和脑功能的长期增强。这些发现对基础和转化神经科学具有重要意义,突显了TRNS是通过长期调节神经可塑性来增强学习和高级认知的一种可行方法。

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