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research article

A Whole-Body Musculoskeletal Model of the Mouse

Tata Ramalingasetty, Shravan
•
Danner, Simon M.
•
Arreguit, Jonathan  
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January 1, 2021
Ieee Access

Neural control of movement cannot be fully understood without careful consideration of interactions between the neural and biomechanical components. Recent advancements in mouse molecular genetics allow for the identification and manipulation of constituent elements underlying the neural control of movement. To complement experimental studies and investigate the mechanisms by which the neural circuitry interacts with the body and the environment, computational studies modeling motor behaviors in mice need to incorporate a model of the mouse musculoskeletal system. Here, we present the first fully articulated musculoskeletal model of the mouse. The mouse skeletal system has been developed from anatomical references and includes the sets of bones in all body compartments, including four limbs, spine, head and tail. Joints between all bones allow for simulation of full 3D mouse kinematics and kinetics. Hindlimb and forelimb musculature has been implemented using Hill-type muscle models. We analyzed the mouse whole-body model and described the moment-arms for different hindlimb and forelimb muscles, the moments applied by these muscles on the joints, and their involvement in limb movements at different limb/body configurations. The model represents a necessary step for the subsequent development of a comprehensive neuro-biomechanical model of freely behaving mice; this will close the loop between the neural control and the physical interactions between the body and the environment.

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Type
research article
DOI
10.1109/ACCESS.2021.3133078
Web of Science ID

WOS:000731136200001

Author(s)
Tata Ramalingasetty, Shravan
Danner, Simon M.
Arreguit, Jonathan  
Markin, Sergey N.
Rodarie, Dimitri  
Kathe, Claudia  
Courtine, Gregoire  
Rybak, Ilya A.
Ijspeert, Auke Jan  
Date Issued

2021-01-01

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC

Published in
Ieee Access
Volume

9

Start page

163861

End page

163881

Subjects

Computer Science, Information Systems

•

Engineering, Electrical & Electronic

•

Telecommunications

•

Computer Science

•

Engineering

•

mice

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joints

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muscles

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bones

•

computational modeling

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integrated circuit modeling

•

musculoskeletal system

•

mouse

•

musculoskeletal

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biomechanical

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moment-arms

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open-source model

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biomechanics

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neuromechanical

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sensitivity-analysis

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spinal circuits

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neural-control

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rat hindlimb

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moment arms

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lower-limb

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muscle

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parameters

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tendon

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organization

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
BIOROB  
BBP-CORE  
UPCOURTINE  
Available on Infoscience
January 1, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/184130
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