Key bifurcations of bursting polyrhythms in 3-cell central pattern generators
arXiv:1312.7470 · doi:10.1371/journal.pone.0092918
Abstract
We identify and describe the key qualitative rhythmic states in various 3-cell network motifs of a multifunctional central pattern generator (CPG). Such CPGs are neural microcircuits of cells whose synergetic interactions produce multiple states with distinct phase-locked patterns of bursting activity. To study biologically plausible CPG models, we develop a suite of computational tools that reduce the problem of stability and existence of rhythmic patterns in networks to the bifurcation analysis of fixed points and invariant curves of a Poincaré return maps for phase lags between cells. We explore different functional possibilities for motifs involving symmetry breaking and heterogeneity. This is achieved by varying coupling properties of the synapses between the cells and studying the qualitative changes in the structure of the corresponding return maps. Our findings provide a systematic basis for understanding plausible biophysical mechanisms for the regulation of rhythmic patterns generated by various CPGs in the context of motor control such as gait-switching in locomotion. Our analysis does not require knowledge of the equations modeling the system and provides a powerful qualitative approach to studying detailed models of rhythmic behavior. Thus, our approach is applicable to a wide range of biological phenomena beyond motor control.
Cited by in corpus (14)
- Networks beyond pairwise interactions: structure and dynamics
- Mathematical frameworks for oscillatory network dynamics in neuroscience
- Coupling functions: Universal insights into dynamical interaction mechanisms
- Optimal Control of Active Nematics
- Qualitative and Quantitative Stability Analysis of Penta-rhythmic Circuits
- Dynamics and bifurcations in multistable 3-cell neural networks
- Generalized half-center oscillators with short-term synaptic plasticity
- Heteroclinic cycles in Hopfield networks
- Chaos in Coupled Heteroclinic Cycles and its Piecewise-Constant Representation
- Sensitivity to control signals in triphasic rhythmic neural systems: a comparative mechanistic analysis via infinitesimal local timing response curves
- Dynamics in a phase model of half-center oscillator: two neurons with excitatory coupling
- An optimization method to simultaneously estimate electrophysiology and connectivity in a model central pattern generator
- Gait transitions in a phase oscillator model of an insect central pattern generator
- Making a swim central pattern generator out of latent parabolic bursters