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A Novel Mechanism for Switching a Neural System from One State to Another

机译:一种将神经系统从一种状态切换到另一种状态的新机制

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摘要

An animal's ability to rapidly adjust to new conditions is essential to its survival. The nervous system, then, must be built with the flexibility to adjust, or shift, its processing capabilities on the fly. To understand how this flexibility comes about, we tracked a well-known behavioral shift, a visual integration shift, down to its underlying circuitry, and found that it is produced by a novel mechanism – a change in gap junction coupling that can turn a cell class on and off. The results showed that the turning on and off of a cell class shifted the circuit's behavior from one state to another, and, likewise, the animal's behavior. The widespread presence of similar gap junction-coupled networks in the brain suggests that this mechanism may underlie other behavioral shifts as well.
机译:动物快速适应新条件的能力对其生存至关重要。因此,必须以灵活的方式构建神经系统,以动态调整或改变其处理能力。为了了解这种灵活性是如何产生的,我们跟踪了一个众所周知的行为转变,一个视觉整合转变,直至其底层电路,并发现它是由一种新颖的机制产生的–间隙连接耦合的改变可以使一个细胞上课和下课。结果表明,打开和关闭细胞类别会将电路的行为从一种状态转移到另一种状态,并且同样将动物的行为转移。大脑中类似的间隙连接耦合网络的广泛存在表明,这种机制也可能是其他行为转变的基础。

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