Hippocampal and prefrontal processing of network topology to simulate the future
Topological networks lie at the heart of our cities and social milieu. However, it remains unclear how and when the brain processes topological structures to guide future behaviour during everyday life. Using fMRI in humans and a simulation of London (UK), here we show that, specifically when new st...
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| Vydané v: | Nature communications Ročník 8; číslo 1; s. 14652 - 11 |
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| Hlavní autori: | , , , , , , , |
| Médium: | Journal Article |
| Jazyk: | English |
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London
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21.03.2017
Nature Publishing Group Nature Portfolio |
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| ISSN: | 2041-1723, 2041-1723 |
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| Abstract | Topological networks lie at the heart of our cities and social milieu. However, it remains unclear how and when the brain processes topological structures to guide future behaviour during everyday life. Using fMRI in humans and a simulation of London (UK), here we show that, specifically when new streets are entered during navigation of the city, right posterior hippocampal activity indexes the change in the number of local topological connections available for future travel and right anterior hippocampal activity reflects global properties of the street entered. When forced detours require re-planning of the route to the goal, bilateral inferior lateral prefrontal activity scales with the planning demands of a breadth-first search of future paths. These results help shape models of how hippocampal and prefrontal regions support navigation, planning and future simulation.
The hippocampus is known to support navigation, but how it processes possible paths to aid navigation is unknown. Here Javadi
et al
. show that entering streets drives hippocampal activity corresponding to the number of future paths, and that prefrontal activity corresponds to path-planning demands. |
|---|---|
| AbstractList | Topological networks lie at the heart of our cities and social milieu. However, it remains unclear how and when the brain processes topological structures to guide future behaviour during everyday life. Using fMRI in humans and a simulation of London (UK), here we show that, specifically when new streets are entered during navigation of the city, right posterior hippocampal activity indexes the change in the number of local topological connections available for future travel and right anterior hippocampal activity reflects global properties of the street entered. When forced detours require re-planning of the route to the goal, bilateral inferior lateral prefrontal activity scales with the planning demands of a breadth-first search of future paths. These results help shape models of how hippocampal and prefrontal regions support navigation, planning and future simulation. Topological networks lie at the heart of our cities and social milieu. However, it remains unclear how and when the brain processes topological structures to guide future behaviour during everyday life. Using fMRI in humans and a simulation of London (UK), here we show that, specifically when new streets are entered during navigation of the city, right posterior hippocampal activity indexes the change in the number of local topological connections available for future travel and right anterior hippocampal activity reflects global properties of the street entered. When forced detours require re-planning of the route to the goal, bilateral inferior lateral prefrontal activity scales with the planning demands of a breadth-first search of future paths. These results help shape models of how hippocampal and prefrontal regions support navigation, planning and future simulation.Topological networks lie at the heart of our cities and social milieu. However, it remains unclear how and when the brain processes topological structures to guide future behaviour during everyday life. Using fMRI in humans and a simulation of London (UK), here we show that, specifically when new streets are entered during navigation of the city, right posterior hippocampal activity indexes the change in the number of local topological connections available for future travel and right anterior hippocampal activity reflects global properties of the street entered. When forced detours require re-planning of the route to the goal, bilateral inferior lateral prefrontal activity scales with the planning demands of a breadth-first search of future paths. These results help shape models of how hippocampal and prefrontal regions support navigation, planning and future simulation. Topological networks lie at the heart of our cities and social milieu. However, it remains unclear how and when the brain processes topological structures to guide future behaviour during everyday life. Using fMRI in humans and a simulation of London (UK), here we show that, specifically when new streets are entered during navigation of the city, right posterior hippocampal activity indexes the change in the number of local topological connections available for future travel and right anterior hippocampal activity reflects global properties of the street entered. When forced detours require re-planning of the route to the goal, bilateral inferior lateral prefrontal activity scales with the planning demands of a breadth-first search of future paths. These results help shape models of how hippocampal and prefrontal regions support navigation, planning and future simulation. The hippocampus is known to support navigation, but how it processes possible paths to aid navigation is unknown. Here Javadi et al. show that entering streets drives hippocampal activity corresponding to the number of future paths, and that prefrontal activity corresponds to path-planning demands. Topological networks lie at the heart of our cities and social milieu. However, it remains unclear how and when the brain processes topological structures to guide future behaviour during everyday life. Using fMRI in humans and a simulation of London (UK), here we show that, specifically when new streets are entered during navigation of the city, right posterior hippocampal activity indexes the change in the number of local topological connections available for future travel and right anterior hippocampal activity reflects global properties of the street entered. When forced detours require re-planning of the route to the goal, bilateral inferior lateral prefrontal activity scales with the planning demands of a breadth-first search of future paths. These results help shape models of how hippocampal and prefrontal regions support navigation, planning and future simulation. The hippocampus is known to support navigation, but how it processes possible paths to aid navigation is unknown. Here Javadi et al . show that entering streets drives hippocampal activity corresponding to the number of future paths, and that prefrontal activity corresponds to path-planning demands. The hippocampus is known to support navigation, but how it processes possible paths to aid navigation is unknown. Here Javadiet al. show that entering streets drives hippocampal activity corresponding to the number of future paths, and that prefrontal activity corresponds to path-planning demands. |
| ArticleNumber | 14652 |
| Author | Zisch, Fiona E. Spiers, Hugo J. Emo, Beatrix Pinelo Silva, Joao Javadi, Amir-Homayoun Howard, Lorelei R. Knight, Rebecca Yu, Yichao |
| Author_xml | – sequence: 1 givenname: Amir-Homayoun orcidid: 0000-0003-0569-6441 surname: Javadi fullname: Javadi, Amir-Homayoun organization: School of Psychology, University of Kent – sequence: 2 givenname: Beatrix surname: Emo fullname: Emo, Beatrix organization: Chair of Cognitive Science, Bartlett School of Architecture and Design, University College London – sequence: 3 givenname: Lorelei R. surname: Howard fullname: Howard, Lorelei R. organization: Aging and Cognition Research Group, German Center for Neurodegenerative Diseases (DZNE) – sequence: 4 givenname: Fiona E. surname: Zisch fullname: Zisch, Fiona E. organization: Division of Psychology and Language Sciences, Department of Experimental Psychology, UCL Institute of Behavioural Neuroscience, University College London, Bartlett School of Architecture and Design, University College London – sequence: 5 givenname: Yichao surname: Yu fullname: Yu, Yichao organization: UCL Centre for Advanced Biomedical Imaging, University College London – sequence: 6 givenname: Rebecca surname: Knight fullname: Knight, Rebecca organization: School of Psychology, University of Hertfordshire – sequence: 7 givenname: Joao orcidid: 0000-0002-4890-0775 surname: Pinelo Silva fullname: Pinelo Silva, Joao organization: Department of Architecture and Interior Design, University of Bahrain 840 – sequence: 8 givenname: Hugo J. surname: Spiers fullname: Spiers, Hugo J. email: h.spiers@ucl.ac.uk organization: Division of Psychology and Language Sciences, Department of Experimental Psychology, UCL Institute of Behavioural Neuroscience, University College London |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/28323817$$D View this record in MEDLINE/PubMed |
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| Snippet | Topological networks lie at the heart of our cities and social milieu. However, it remains unclear how and when the brain processes topological structures to... The hippocampus is known to support navigation, but how it processes possible paths to aid navigation is unknown. Here Javadiet al. show that entering streets... |
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| Title | Hippocampal and prefrontal processing of network topology to simulate the future |
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