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Altered Intrinsic and Casual Functional Connectivities of the Middle Temporal Visual Motion Area Subregions in Chess Experts

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Journal Front Neurosci
Date 2020 Dec 18
PMID 33335474
Citations 3
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Abstract

An outstanding chess player needs to accumulate massive visual and spatial information for chess configurations. Visual motion area (MT) is considered as a brain region specialized for visual motion perception and visuospatial attention processing. However, how long-term chess training shapes the functional connectivity patterns of MT, especially its functional subregions, has rarely been investigated. In our study, using resting-state functional connectivity (RSFC) and Granger causality analysis (GCA), we studied the changed functional couplings of MT subregions between 28 chess master players and 27 gender- and age-matched healthy novices to reveal the neural basis of long-term professional chess training. RSFC analysis identified decreased functional connections between right dorsal-anterior subregion (CI1.R) and left angular gyrus, and increased functional connections between right ventral-anterior MT subregion (CI2.R) and right superior temporal gyrus in chess experts. Moreover, GCA analyses further found increased mutual interactions of left angular gyrus and CI1.R in chess experts compared to novice players. These findings demonstrate that long-term professional chess training could enhance spatial perception and reconfiguration and semantic processing efficiency for superior performance.

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References
1.
Krawczyk D, Boggan A, McClelland M, Bartlett J . The neural organization of perception in chess experts. Neurosci Lett. 2011; 499(2):64-9. DOI: 10.1016/j.neulet.2011.05.033. View

2.
Draganski B, Gaser C, Busch V, Schuierer G, Bogdahn U, May A . Neuroplasticity: changes in grey matter induced by training. Nature. 2004; 427(6972):311-2. DOI: 10.1038/427311a. View

3.
Gaser C, Schlaug G . Gray matter differences between musicians and nonmusicians. Ann N Y Acad Sci. 2003; 999:514-7. DOI: 10.1196/annals.1284.062. View

4.
Zhou S, Jin L, He J, Zeng Q, Wu Y, Cao Z . Distributed performance of white matter properties in chess players: A DWI study using automated fiber quantification. Brain Res. 2018; 1700:9-18. DOI: 10.1016/j.brainres.2018.07.003. View

5.
Fattahi F, Geshani A, Jafari Z, Jalaie S, Salman Mahini M . Auditory memory function in expert chess players. Med J Islam Repub Iran. 2016; 29:275. PMC: 4715404. View