Javascript must be enabled to continue!
A neuromechanical model for the neuronal basis of curve walking in the stick insect
View through CrossRef
The coordination of the movement of single and multiple limbs is essential for the generation of locomotion. Movement about single joints and the resulting stepping patterns are usually generated by the activity of antagonistic muscle pairs. In the stick insect, the three major muscle pairs of a leg are the protractor and retractor coxae, the levator and depressor trochanteris, and the flexor and extensor tibiae. The protractor and retractor move the coxa, and thereby the leg, forward and backward. The levator and depressor move the femur up and down. The flexor flexes, and the extensor extends the tibia about the femur-tibia joint. The underlying neuronal mechanisms for a forward stepping middle leg have been thoroughly investigated in experimental and theoretical studies. However, the details of the neuronal and mechanical mechanisms driving a stepping single leg in situations other than forward walking remain largely unknown. Here, we present a neuromechanical model of the coupled three joint control system of the stick insect's middle leg. The model can generate forward, backward, or sideward stepping. Switching between them is achieved by changing only a few central signals controlling the neuromechanical model. In kinematic simulations, we are able to generate curve walking with two different mechanisms. In the first, the inner middle leg is switched from forward to sideward and in the second to backward stepping. Both are observed in the behaving animal, and in the model and animal alike, backward stepping of the inner middle leg produces tighter turns than sideward stepping.
American Physiological Society
Title: A neuromechanical model for the neuronal basis of curve walking in the stick insect
Description:
The coordination of the movement of single and multiple limbs is essential for the generation of locomotion.
Movement about single joints and the resulting stepping patterns are usually generated by the activity of antagonistic muscle pairs.
In the stick insect, the three major muscle pairs of a leg are the protractor and retractor coxae, the levator and depressor trochanteris, and the flexor and extensor tibiae.
The protractor and retractor move the coxa, and thereby the leg, forward and backward.
The levator and depressor move the femur up and down.
The flexor flexes, and the extensor extends the tibia about the femur-tibia joint.
The underlying neuronal mechanisms for a forward stepping middle leg have been thoroughly investigated in experimental and theoretical studies.
However, the details of the neuronal and mechanical mechanisms driving a stepping single leg in situations other than forward walking remain largely unknown.
Here, we present a neuromechanical model of the coupled three joint control system of the stick insect's middle leg.
The model can generate forward, backward, or sideward stepping.
Switching between them is achieved by changing only a few central signals controlling the neuromechanical model.
In kinematic simulations, we are able to generate curve walking with two different mechanisms.
In the first, the inner middle leg is switched from forward to sideward and in the second to backward stepping.
Both are observed in the behaving animal, and in the model and animal alike, backward stepping of the inner middle leg produces tighter turns than sideward stepping.
Related Results
Walkability; The Relationship of Walking Distance, Walking Time and Walking Speed
Walkability; The Relationship of Walking Distance, Walking Time and Walking Speed
Walking is cheap and healthy. It is the main transportation for the majority of students exploring their daily life in their campus area. Different types of people will have variou...
Sequence, characterization and pharmacological analyses of the adipokinetic hormone receptor in the stick insect, Carausius morosus
Sequence, characterization and pharmacological analyses of the adipokinetic hormone receptor in the stick insect, Carausius morosus
BackgroundAdipokinetic/hypertrehalosaemic hormone (AKH/HrTH), corazonin (Crz) and the AKH/Crz-related peptide (ACP) are neuropeptides considered homologous to the vertebrate gonado...
Metabolically induced neuronal differentiation
Metabolically induced neuronal differentiation
In recent years, several neuronal differentiation protocols were published that circumvent the requirement of embryoid body (EB) formation under serum-deprivation and simplified me...
Aquatic insects are dramatically underrepresented in genomic research
Aquatic insects are dramatically underrepresented in genomic research
Abstract
Aquatic insects comprise 10% of all insect diversity, can be found on every continent except Antarctica, and are key components of fresh...
Smart Automatic Insect Catching System
Smart Automatic Insect Catching System
Introduction: Agricultural insect pests cause an estimated 30-40% of global crop losses annually, threatening food security and farmer livelihoods. Conventional pest control relies...
A neuromechanical model for
Drosophila
larval crawling based on physical measurements
A neuromechanical model for
Drosophila
larval crawling based on physical measurements
Abstract
Animal locomotion requires dynamic interactions between neural circuits, muscles, and surrounding environments. In contrast to intensive...
A neuromechanical model for Drosophila larval crawling based on physical measurements
A neuromechanical model for Drosophila larval crawling based on physical measurements
Abstract
Background
Animal locomotion requires dynamic interactions between neural circuits, the b...
Motor module generalization across balance and walking is reduced after stroke
Motor module generalization across balance and walking is reduced after stroke
AbstractHere, we examined features of muscle coordination associated with reduced walking performance in chronic stroke survivors. Using motor module (a.k.a. muscle synergy) analys...

