Propensity for Bistability of Bursting and Silence in the Leech Heart Interneuron
نویسندگان
چکیده
The coexistence of neuronal activity regimes has been reported under normal and pathological conditions. Such multistability could enhance the flexibility of the nervous system and has many implications for motor control, memory, and decision making. Multistability is commonly promoted by neuromodulation targeting specific membrane ionic currents. Here, we investigated how modulation of different ionic currents could affect the neuronal propensity for bistability. We considered a leech heart interneuron model. It exhibits bistability of bursting and silence in a narrow range of the leak current parameters, conductance (gleak ) and reversal potential (Eleak ). We assessed the propensity for bistability of the model by using bifurcation diagrams. On the diagram (gleak , Eleak ), we mapped bursting and silent regimes. For the canonical value of Eleak we determined the range of gleak which supported the bistability. We use this range as an index of propensity for bistability. We investigated how this index was affected by alterations of ionic currents. We systematically changed their conductances, one at a time, and built corresponding bifurcation diagrams in parameter planes of the maximal conductance of a given current and the leak conductance. We found that conductance of only one current substantially affected the index of propensity; the increase of the maximal conductance of the hyperpolarization-activated cationic current increased the propensity index. The second conductance with the strongest effect was the conductance of the low-threshold fast Ca2+ current; its reduction increased the propensity index although the effect was about two times smaller in magnitude. Analyzing the model with both changes applied simultaneously, we found that the diagram (gleak , Eleak ) showed a progressively expanded area of bistability of bursting and silence.
منابع مشابه
Mechanisms of Multistability in Neuronal Models
Multistability is a fundamental attribute of the dynamics of neuronal systems under normal and pathological conditions. The mechanism of bistability of bursting and silence is not well understood and to our knowledge has not been experimentally recorded in single neurons. We considered four models. Two of them described the dynamics of a leech heart interneuron: the canonical model and a low-di...
متن کاملResiliency to Bistability in the Neurons from the Pre - Bötzinger Complex
Central pattern generators (CPGs) control rhythmic behaviors such as breathing and heartbeat in invertebrates (Calabrese and Marder 1996). Malfunctions in a CPG may have a variety of detrimental effects such as abrupt disruption of breathing, as has been implicated in sudden infant death syndrome (SIDS) (Paydarfar et al. 2005; Moon et al. 2007). In the United States SIDS has been responsible fo...
متن کاملTITLE: Switching Bistable Leech Heart Interneurons with a Pulse of Current from Bursting to Silence AUTHOR:
Leech heart interneurons (HNs) control the heartbeat of the medicinal leech. They are organized in mutually inhibitory pairs, half-center oscillators (HCOs). Biophysically accurate models of HCO and HN exhibit bistability of bursting and silence. A pulse of current can switch the HN between coexisting regimes. Characteristics of a pulse switching a neuron from silence to bursting has been previ...
متن کاملHybrid systems analysis of the control of burst duration by low-voltage-activated calcium current in leech heart interneurons.
The leech heartbeat CPG is paced by the alternating bursting of pairs of mutually inhibitory heart interneurons that form elemental half-center oscillators. We explore the control of burst duration in heart interneurons using a hybrid system, where a living, pharmacologically isolated, heart interneuron is connected with artificial synapses to a model heart interneuron running in real-time, by ...
متن کاملTITLE: Hybrid Systems Analysis of the Control of Burst Duration by Low-Voltage-Activated Calcium Current in Leech Heart Interneurons
The leech heartbeat CPG is paced by the alternating bursting of pairs of mutually inhibitory heart interneurons that form elemental half-center oscillators. We explore the control of burst duration in heart interneurons using a hybrid system, where a living, pharmacologically isolated, heart interneuron is connected with artificial synapses to a model heart interneuron (Hill et al. 2001) runnin...
متن کامل