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Paired Electrical Pulse Trains for Controlling Connectivity in Emotion-Related Brain Circuitry

机译:配对电脉冲列车,用于控制情绪相关脑电路的连接

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Neurostimulation therapies for psychiatric disorders often have limited clinical efficacy. The limited efficacy might arise from a mismatch between therapy and disease mechanisms. Mental disorders are believed to arise from communication breakdown in distributed brain circuits, and thus altering connectivity between brain regions might be an effective way to restore normal brain communication. Synchronized neural oscillations (coherence) and synaptic strength are two common measures of brain connectivity. In this work, we developed an electrical stimulation method for altering narrow-frequency-band (theta, 5-8 Hz) coherence and synaptic strength. We tested this method in a circuit between infralimbic cortex (IL) and basolateral amygdala (BLA), which is broadly implicated in fear regulation. 6 Hz pulse trains were delivered into IL and BLA with various inter-train lags. These paired trains induced long-lasting synaptic strength change and a brief coherence enhancement in the IL-BLA circuit. This enhancement was specific to the "top-down" (IL-to-BLA) direction, and only occurred when the IL and BLA pulse trains had a relative lag of 180 degrees (83 ms). Since the IL-BLA connection is known to be highly relevant to fear regulation, this method provides a tool to study the relationship between brain connectivity and fear behaviors. Further, it may be a new approach to study the relative roles of synaptic strength and oscillatory synchrony in brain network communication.
机译:精神病疾病的神经刺激疗法通常具有有限的临床疗效。在治疗和疾病机制之间的不匹配中可能出现有限的功效。据信,精神障碍来自分布式大脑电路的沟通故障,因此改变脑区之间的连接可能是恢复正常脑通信的有效方法。同步神经振荡(相干)和突触强度是脑连接的两个常见措施。在这项工作中,我们开发了一种改变窄频带(THETA,5-8 Hz)的相干性和突触强度的电刺激方法。我们在Infralimbic Cortex(IL)和基底间杏仁达拉(BLA)之间的电路中测试了这种方法,这与恐惧调节大致牵连。 6 Hz脉冲列车以各种火车间滞后送入IL和BLA。这些配对的列车诱导了IL-BLA电路中持久的突触强度变化和简短的相干性增强。这种增强特定于“自上而下”(IL-TO-BLA)方向,并且仅在IL和BLA脉冲列表具有180度(83ms)的相对滞后时发生。由于已知IL-BLA连接与恐惧规则高度相关,因此该方法提供了一种研究脑连接和恐惧行为之间的关系的工具。此外,它可能是研究突触强度和振荡同步在脑网络通信中的相对作用的新方法。

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