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对各种输入进行灵活加权使海马体功能具有可塑性。

Flexible weighting of diverse inputs makes hippocampal function malleable.

作者信息

Aly Mariam, Turk-Browne Nicholas B

机构信息

Princeton Neuroscience Institute, Princeton University, Princeton, NJ, 08544, United States; Department of Psychology, Columbia University, New York, NY, 10027, United States.

Princeton Neuroscience Institute, Princeton University, Princeton, NJ, 08544, United States; Department of Psychology, Princeton University, Princeton, NJ, 08544, United States; Department of Psychology, Yale University, New Haven, CT, 06520, United States.

出版信息

Neurosci Lett. 2018 Jul 27;680:13-22. doi: 10.1016/j.neulet.2017.05.063. Epub 2017 Jun 3.

Abstract

Classic theories of hippocampal function have emphasized its role as a dedicated memory system, but recent research has shown that it contributes broadly to many aspects of cognition, including attention and perception. We propose that the reason the hippocampus plays such a broad role in cognition is that its function is particularly malleable. We argue that this malleability arises because the hippocampus receives diverse anatomical inputs and these inputs are flexibly weighted based on behavioral goals. We discuss examples of how hippocampal representations can be flexibly weighted, focusing on hippocampal modulation by attention. Finally, we suggest some general neural mechanisms and core hippocampal computations that may enable the hippocampus to support diverse cognitive functions, including attention, perception, and memory. Together, this work suggests that great progress can and has been made in understanding the hippocampus by considering how the domain-general computations it performs allow it to dynamically contribute to many different behaviors.

摘要

经典的海马体功能理论强调其作为专门记忆系统的作用,但最近的研究表明,它在认知的许多方面都有广泛贡献,包括注意力和感知。我们认为,海马体在认知中发挥如此广泛作用的原因是其功能具有特别的可塑性。我们认为这种可塑性的产生是因为海马体接收多种解剖学输入,并且这些输入会根据行为目标进行灵活加权。我们讨论海马体表征如何灵活加权的例子,重点关注注意力对海马体的调节。最后,我们提出一些可能使海马体支持多种认知功能(包括注意力、感知和记忆)的一般神经机制和核心海马体计算。总之,这项工作表明,通过考虑海马体执行的通用领域计算如何使其动态地对许多不同行为做出贡献,在理解海马体方面已经取得并能够取得巨大进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac84/5712489/13fda8c2f848/nihms883174f1.jpg

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