Stimulation of a restricted region in the midline cerebellar white matter evokes coordinated quadrupedal locomotion in the decerebrate cat.
@article{Mori1999StimulationOA,
title={Stimulation of a restricted region in the midline cerebellar white matter evokes coordinated quadrupedal locomotion in the decerebrate cat.},
author={Shigemi Mori and Toshihiro Matsui and Bunya Kuze and Mitsuru Asanome and Katsumi Nakajima and Kiyoji Matsuyama},
journal={Journal of neurophysiology},
year={1999},
volume={82 1},
pages={
290-300
}
}In the reflexively standing acute decerebrate cat, we have previously shown that pulse train microstimulation of the hook bundle of Russel in the midline of the cerebellar white matter, through which crossed fastigiofugal fibers decussate, augments the postural tone of neck, trunk, fore-, and hindlimb extensor muscles. In the present study we examined the possible role of such stimulation in evoking locomotion as the animal is supported by a rubber hammock with its feet contacting the moving…
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References
SHOWING 1-10 OF 94 REFERENCES
Cerebellar‐induced Locomotion: Reticulospinal Control of Spinal Rhythm Generating Mechanism in Cats a
- Biology, PsychologyAnnals of the New York Academy of Sciences
- 1998
The results of the present study demonstrated that fastigial cells with crossed fastigioreticular fibers and reticulospinal fibers play a crucial role in the control of posture and locomotion in the locomotor preparation.
Augmentation of postural muscle tone induced by the stimulation of the descending fibers in the midline area of the cerebellar white matter in the acute decerebrate cat
- BiologyNeuroscience Research
- 1998
Controlled locomotion in the mesencephalic cat: distribution of facilitatory and inhibitory regions within pontine tegmentum.
- Biology, PsychologyJournal of neurophysiology
- 1978
It is indicated clearly that the degree of existing postural tonus greatly affects MLR-elicited locomotor movements and that an increase in postural Tonus and an activation of the spinal stepping generator are not separate phenomenia.
Recovery of locomotion after ventral and ventrolateral spinal lesions in the cat. I. Deficits and adaptive mechanisms.
- Biology, PsychologyJournal of neurophysiology
- 1998
In the most extensively lesioned cats, the long period of recovery and the pronounced deficits during the plateau period may indicate that the compensation, attributed to remaining reticulospinal pathways, is not sufficient and that other pathways in the dorsolateral funiculi can sustain and adapt, up to a certain extent, the voluntary quadrupedal walking.
Functional organization within the medullary reticular formation of intact unanesthetized cat. I. Movements evoked by microstimulation.
- BiologyJournal of neurophysiology
- 1990
The present article described the various patterns of movement evoked in the limbs and neck by microstimulation of the medullary reticular formation of seven chronically implanted, unanesthetized, intact cats, finding that movements of the hindlimbs were more frequently evoked from central and ventral areas of the brain stem and from the most rostral aspect of the explored region.
Recovery of locomotor function in cats after localized cerebellar lesions
- Biology, PsychologyBrain Research
- 1983
Neuronal structures of the brainstem participating in postural suppression in cats
- BiologyNeuroscience Research
- 1988
Functional organization within the medullary reticular formation of intact unanesthetized cat. II. Electromyographic activity evoked by microstimulation.
- Biology, PsychologyJournal of neurophysiology
- 1990
Examination of the detailed organization of the medullary reticular formation (MRF) as revealed by microstimulation in the intact, chronically implanted, unanesthetized cat found muscles of the ipsilateral forelimb and hindlimbs were more strongly activated from the rostral brain stem, although with some exceptions.
Discharge patterns of reticulospinal and other reticular neurons in chronic, unrestrained cats walking on a treadmill.
- BiologyJournal of neurophysiology
- 1986
Although the locomotor-related neurons showed no preferential relation with any of the recorded EMGs, a comparison of the depth of modulation of their discharge measured from postevent histograms suggested that more of these cells were related to the forelimb than to the hindlimb.
Integration of posture and locomotion in acute decerebrate cats and in awake, freely moving cats
- Biology, PsychologyProgress in Neurobiology
- 1987





