The role of electrical coupling between neurons in the swimming rhythm generator of Xenopus embryos has been studied using pharmacological blockade of gap junctions. A conspicuous effect of 18β-glycyrrhetinic acid (18β-GA) and carbenoxolone, which have been shown to block electrical coupling in this preparation, was to increase the duration of ventral root bursts throughout the spinal cord during swimming. The left-right coordination, the swimming frequency and the duration of swimming episodes were not affected by concentrations of 18β-GA which significantly increased burst durations. However, the longitudinal coupling was affected such that 18β-GA led to a significant correlation between rostrocaudal delays and cycle periods, which is usu...
Noradrenaline (NA) is a potent modulator of locomotion in many vertebrate nervous systems. When Xeno...
AbstractThere is a need to understand the mechanisms of neural synchronization during development be...
Most neuronal networks are very complex and detailed information on the neurons and their connection...
Electrical coupling is important in rhythm generating systems. We examine its role in circuits contr...
1. In Xenopus embryos, the frequency of natural and fictive swimming usually drops slowly as swimmin...
In this article we review our research on the development and intrinsic neuromodulation of a spinal ...
In the first 24 h of post-ebryonic development, the motor rhythm underlying swimming in Xenopus laev...
We have investigated the contribution of GABA, receptor activation to swimming in Xenopus tadpoles d...
Rhythmic locomotion in Xenopus laevis embryos is controlled by a central pattern generator in the sp...
We describe a novel preparation of the isolated brainstem and spinal cord from pro-metamorphic tadpo...
In larvae of the amphibian, Xenopus laevis, spinal neurons which are active during fictive swimming ...
In immobilized Xenopus laevis embryos two classes of sensory interneuron are excited by mechanosenso...
During locomotion, reflex responses to sensory stimulation are usually modulated and may even be rev...
Phase-dependent reflex modulation during fictive 'swimming' in Xenopus laevis embryos has been exami...
<div><p>Gap junctions between fine unmyelinated axons can electrically couple groups of brain neuron...
Noradrenaline (NA) is a potent modulator of locomotion in many vertebrate nervous systems. When Xeno...
AbstractThere is a need to understand the mechanisms of neural synchronization during development be...
Most neuronal networks are very complex and detailed information on the neurons and their connection...
Electrical coupling is important in rhythm generating systems. We examine its role in circuits contr...
1. In Xenopus embryos, the frequency of natural and fictive swimming usually drops slowly as swimmin...
In this article we review our research on the development and intrinsic neuromodulation of a spinal ...
In the first 24 h of post-ebryonic development, the motor rhythm underlying swimming in Xenopus laev...
We have investigated the contribution of GABA, receptor activation to swimming in Xenopus tadpoles d...
Rhythmic locomotion in Xenopus laevis embryos is controlled by a central pattern generator in the sp...
We describe a novel preparation of the isolated brainstem and spinal cord from pro-metamorphic tadpo...
In larvae of the amphibian, Xenopus laevis, spinal neurons which are active during fictive swimming ...
In immobilized Xenopus laevis embryos two classes of sensory interneuron are excited by mechanosenso...
During locomotion, reflex responses to sensory stimulation are usually modulated and may even be rev...
Phase-dependent reflex modulation during fictive 'swimming' in Xenopus laevis embryos has been exami...
<div><p>Gap junctions between fine unmyelinated axons can electrically couple groups of brain neuron...
Noradrenaline (NA) is a potent modulator of locomotion in many vertebrate nervous systems. When Xeno...
AbstractThere is a need to understand the mechanisms of neural synchronization during development be...
Most neuronal networks are very complex and detailed information on the neurons and their connection...