DocumentCode
3715268
Title
Computer simulation of chemotaxis in caenorhabditis elegans in consideration of whole-body movements
Author
Zu Soh;Michiyo Suzuki;Yuichi Kurita;Toshio Tsuji
Author_Institution
Department of System Cybernetics, Graduate School of Engineering, Hiroshima University, Higashi-Hiroshima, Hiroshima, Japan
fYear
2015
Firstpage
651
Lastpage
656
Abstract
The tiny roundworm Caenorhabditis elegans (C. elegans) is one of the simplest multicellular organisms known, with a neural circuit consisting of just 302 neurons. Despite its simplicity, the worm can navigate efficiently to the source of a target chemical - a movement known as chemotaxis. Recent studies have revealed that the worm utilizes only two sensory neurons to determine the temporal and spatial gradients of chemical substances for chemotaxis, but its neural computation mechanism is not yet fully understood. The authors propose a mathematical model based on measurement data and neural connection structure to simulate C. elegans chemotaxis and using a robot simulator platform in order to account for whole-body movements. The simulation results are used as a basis for discussion of how chemical gradients are calculated in neurons.
Keywords
"Neurons","Grippers","Mathematical model","Chemicals","Robot sensing systems","Integrated circuit modeling"
Publisher
ieee
Conference_Titel
SAI Intelligent Systems Conference (IntelliSys), 2015
Type
conf
DOI
10.1109/IntelliSys.2015.7361209
Filename
7361209
Link To Document