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The subiculum: a key interface between scene representation and event memory?

The subiculum: a key interface between scene representation and event memory?
下托:场景表征和事件记忆之间的关键接口?
批准号:
BB/V010549/1
负责人:
Carl Hodgetts
金额:
$52.52万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

项目摘要

项目成果

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中文摘要
翻译
当我们记起一件事时,我们通常会想起事件发生的具体地点,通常是生动的细节。这些心理图像通常不是单一的快照,比如照片,而是更综合和灵活的东西,我们可以想象不同的观点,环境的空间布局,以及环境中物体之间的关系。因此,了解不同的大脑区域如何处理和整合空间信息(如场景)到事件中,对于理解人类记忆及其在衰老障碍中如何受到影响至关重要。其中一个关键区域是下带,它构成了海马体结构的一部分。根据动物研究,枕下在大脑中有一个特殊的位置,使涉及记忆的分布式区域网络能够进行交流。也有越来越多的证据表明,随着年龄的增长,这一区域非常脆弱,并在老年痴呆症等疾病的早期受到影响。直到最近,由于其在大脑中的大小和位置使得使用常规成像技术难以调查,对耻骨下的研究一直具有挑战性。在这个项目中,我们将通过最先进的高分辨率大脑扫描方法来解决这个问题,该方法将与新的认知任务相结合,使我们能够研究下骨如何通过与扩展的大脑网络的连接来支持场景感知和记忆。这个项目建立在我们之前的工作基础上,我们发现下骨对区分不同的场景至关重要,但对其他复杂的视觉刺激(如人脸)却没有作用。我们的第一个目标是通过对动物的研究,更好地了解人类下骨的解剖学连通性。我们将结合结构和功能脑成像来“绘制”人类大脑中耻骨下是如何连接的,并将这张连接图与使用开源数据集在猴子身上看到的连接图进行比较。我们还将应用一种称为图论的数学方法,来观察下骨是否像从动物研究中预测的那样,在扩展记忆网络中充当“枢纽”。使用这种方法,我们可以研究与其他海马体亚区相比,<s:1>下带的“关闭”是如何影响扩展记忆网络中结构之间的交流的。我们的第二个目标是使用高分辨率脑功能成像来研究耻骨下在表示场景信息中的确切作用。在第一个任务中,参与者将被要求判断两个视图是否来自同一位置,允许我们询问在感知过程中,下骨是将场景的不同视图结合在一起(整合),还是将它们分开(区分)。在第二个任务中,我们将在扫描仪中使用虚拟现实任务来观察下骨(被认为是记忆的中心)中的“集成”场景表征是如何被经验塑造的。最后,在我们第二个目标的基础上,我们将探讨下丘在场景处理中的作用如何与日常事件记忆联系起来。为了做到这一点,参与者将在扫描仪中观看一部电影,然后尽可能详细地回忆他们所记住的东西。我们将测试相对于海马体的其他子区域,耻骨下是否会对电影叙事中的大变化做出反应,也就是所谓的“事件边界”。事件边界是由我们周围世界的变化触发的,它允许我们将日常经历分割成记忆中离散的“块”。通过将事件边界标记为空间或非空间,我们可以看到这种大脑活动是否由空间信息驱动(例如,场景变化),以及这与事件记忆的关系。该项目将对人类记忆的神经解剖学产生新的见解,测试动物研究结果如何推广到人类,并提供关于场景和事件记忆的关键大脑网络的独特知识。
英文摘要
When we remember events, we often bring to mind the specific location in which that event took place, often in vivid detail. These mental images are not usually single snapshots, like photographs, but something more integrated and flexible, where we can imagine different viewpoints, the spatial layout of an environment, and the relationship between objects in that environment. For this reason, understanding how different brain regions process and integrate spatial information, such as scenes, into events, is vital for understanding human memory and how it is affected in disorders of ageing. One such critical region is the subiculum, which forms part of the hippocampal formation. According to animal studies, the subiculum has a privileged position in the brain, enabling a distributed network of regions involved in memory to communicate. There is also growing evidence that this region is highly vulnerable as we age, and affected early on in disorders such as Alzheimer's disease. Until recently it has been challenging to study the subiculum as its size and position in the brain makes it difficult to investigate using conventional imaging techniques. In this project, we will address this problem via state-of-the-art high-resolution brain scanning methods, which will be combined with novel cognitive tasks, allowing us to examine how the subiculum, via its connectivity with an extended brain network, supports scene perception and memory. This project builds on our previous work, where we found that the subiculum was critical for telling apart different scenes, but not other complex visual stimuli, such as faces. Our first aim is to better understand the anatomical connectivity of the human subiculum, informed by work on animals. We will combine both structural and functional brain imaging to 'map out' how the subiculum is connected in the human brain, and compare this connectivity map to that seen in monkeys using an open-source dataset. We will also apply a mathematical approach, called graph theory, to see if the subiculum acts as a 'hub' in an extended memory network, as predicted from animal studies. Using this approach, we can investigate how virtually "switching off" the subiculum, relative other hippocampal sub-regions, impacts on communication between structures within the extended memory network.Our second aim is to use high-resolution functional brain imaging to investigate the precise role of the subiculum in representing scene information. In the first task, participants will be asked to judge whether two views are from the same location or not, allowing us to ask whether the subiculum binds different views of a scene together (integration), or tells them apart (discrimination) during perception. In a second task, we will use a virtual-reality task in the scanner to see how 'integrated' scene representations in the subiculum - thought to be central to memory - are shaped by experience.Finally, building on our second aim, we will explore how the subiculum's role in scene processing is linked to everyday event memory. To do this, participants will watch a movie in the scanner and later recall what they remember in as much detail as possible. We will test whether the subiculum, relative to other hippocampal sub-regions, responds to large shifts in the movie narrative, known as 'event boundaries'. Event boundaries are triggered by changes in the world around us, and allow us to segment our everyday experiences into discrete 'chunks' in memory. By labelling event boundaries as either spatial or non-spatial, we can see whether this brain activity is driven by spatial information (e.g., scene changes), and how this relates to event memory.This project will generate new insights into the neuroanatomy of human memory, testing how research findings from animals generalise to humans, and providing unique knowledge about a critical brain network for scene and event memory.
期刊论文(5)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1002/hipo.23602
发表时间: 2024-02-28
期刊: HIPPOCAMPUS
影响因子: 3.5
作者: [Wuestefeld,Anika, Baumeister,Hannah, Wisse,Laura E. M.]
通讯作者: Wisse,Laura E. M.
The limited place in cognitive space
认知空间的有限位置
DOI: 10.1101/2022.04.25.489165
发表时间: 2022
期刊:
影响因子: --
作者: [Hodgetts C]
通讯作者: Hodgetts C
Similarity and structured representation in human and nonhuman apes.
人类和非人类猿类的相似性和结构化表征。
DOI: 10.1016/j.cognition.2023.105419
发表时间: 2023
期刊: Cognition
影响因子: 3.4
作者: [Hodgetts CJ]
通讯作者: Hodgetts CJ
DOI: 10.1101/2022.07.07.499122
发表时间: 2022-07
期刊: bioRxiv
影响因子: --
作者: [Carl J. Hodgetts;Mark Postans;Angharad N. Williams]
通讯作者: Carl J. Hodgetts;Mark Postans;Angharad N. Williams
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