日本語
 
Privacy Policy ポリシー/免責事項
  詳細検索ブラウズ

アイテム詳細


公開

学術論文

Spiral wave dynamics in a neuronal network model

Authors

Souza,  Diogo L M
External Organizations;

Borges,  Fernando S
External Organizations;

/persons/resource/enrique.gabrick

Gabrick,  Enrique C.
Potsdam Institute for Climate Impact Research;

Bentivoglio,  Lucas E
External Organizations;

Protachevicz,  Paulo R
External Organizations;

dos Santos,  Vagner
External Organizations;

Viana,  Ricardo L
External Organizations;

Caldas,  Ibere L
External Organizations;

Iarosz,  Kelly C
External Organizations;

Batista,  Antonio M
External Organizations;

/persons/resource/Juergen.Kurths

Kurths,  Jürgen
Potsdam Institute for Climate Impact Research;

URL
There are no locators available
フルテキスト (公開)
付随資料 (公開)
There is no public supplementary material available
引用

Souza, D. L. M., Borges, F. S., Gabrick, E. C., Bentivoglio, L. E., Protachevicz, P. R., dos Santos, V., Viana, R. L., Caldas, I. L., Iarosz, K. C., Batista, A. M., & Kurths, J. (2024). Spiral wave dynamics in a neuronal network model. Journal of Physics: Complexity, 5(2):. doi:10.1088/2632-072X/ad42f6.


引用: https://publications.pik-potsdam.de/pubman/item/item_30730
要旨
Spiral waves are spatial-temporal patterns that can emerge in different systems as heart tissues, chemical oscillators, ecological networks and the brain. These waves have been identified in the neocortex of turtles, rats, and humans, particularly during sleep-like states. Although their functions in cognitive activities remain until now poorly understood, these patterns are related to cortical activity modulation and contribute to cortical processing. In this work, ,we construct a neuronal network layer based on the spatial distribution of pyramidal neurons. Our main goal is to investigate how local connectivity and coupling strength are associated with the emergence of spiral waves. Therefore, we propose a trustworthy method capable of detecting different wave patterns, based on local and global phase order parameters. As a result, we find that the range of connection radius (R) plays a crucial role in the appearance of spiral waves. For R < 20 µm, only asynchronous activity is observed due to small number of connections. The coupling strength () greatly influences the pattern transitions for higher R, where spikes and bursts firing patterns can be observed in spiral and non-spiral waves. Finally, we show that for some values of R and bistable states of wave patterns are obtained.