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Biomedical subjects

F Lestienne

Publications and source records attributed to F Lestienne.

At least 19 recordsLinked to original sources

Exploration and motor activity in juvenile and adult rats exposed to hypergravity at 1.8 G during development: a preliminary report.

Pups from gestating rats exposed to hypergravity (1.8 G) or to normal gravity at the perinatal period were evaluated for motor activity, exploration and social interactions during juvenile and adult stages. By comparison to controls, the hypergravity group had shorter latencies before choosing a maze arm in a T-maze and a lower number of exploratory pokes in a hole board. During dyadic encounters, the hypergravity group had a lower number of self-grooming episodes and shorter latencies before crossing under the opposing rat. In contrast, no intergroup differences were observed during exploration of an elevated plus-maze and a light-dark box. These results indicate that exposure to 1.8 G during development appears to decrease exploratory tendencies in the hole board and fear-related responses in T-maze and social interaction tests.

Aging↗

Effects of dopaminergic agents and of an NMDA receptor antagonist on motor coordination in Lurcher mutant mice.

Lurcher mutant mice, characterized by an ataxic gait and olivocerebellar degeneration, were evaluated for motor coordination in the coat-hanger test after peripheral injections of two doses of dextromethorphan, a noncompetitive N-methyl-D-aspartate receptor antagonist, L-dopa/carbidopa, and SKF 77434, a dopamine D1 receptor agonist. There was an improvement in the distance traveled on the suspended horizontal string after 25 and 50 mg/kg of dextromethorphan and 37.5 mg/kg of L-dopa/carbidopa, but not after SKF 77434. None of the drugs reduced movement times or increased latencies before falling. These results indicate that NMDA receptor antagonism or stimulation of some dopaminergic mechanisms partially improve genetically determined cerebellar ataxia in mice.

2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-ben↗

Neurobehavioral evaluation of lurcher mutant mice during ontogeny.

Lurcher mutant mice were compared to normal littermate controls for body weight, body righting, negative geotropism, sensorimotor coordination (rotating grid, wire suspension, rotorod), and visuomotor coordination requiring swimming toward a pole during postnatal (P) days 0-30. Lurcher mutants had a lower body weight on P20-P30 and were slower before performing the complete body righting response on P13-P30. Because of postural instability during the negative geotropism test, lurcher mutants turned quicker up the slope than normal mice. The mutants fell sooner from the rotating grid on P11-P14, from the horizontal wire on P15-P16, and from the rotorod on P14-P30. Lurcher mutants were also slower before swimming to the pole or climbing to the top of the pole and were inferior in pole climbing height on P22-P30. These results indicate test-selective and time-selective neurobehavioral deficits during ontogeny in a spontaneous cerebellar mutant.

Aging↗

Sensorimotor learning in three cerebellar mutant mice.

Cerebellar damage occurs during developmental stages in three mutant mice (staggerer, hot-foot, and lurcher), causing disturbances in posture and equilibrium. During three tests of motor coordination, the performances of staggerer mutants was inferior to that of normal mice and did not improve with extended practice for up to 7 days of training. The sensorimotor performance of hot-foot mutants and of lurcher mutants was also lower than that of normal mice. Nevertheless, hot-foot mutants showed evidence of learning in two of the three tests and lurcher mutants in all three tests. Cerebellar atrophy in the latter two mutants did not prevent sensorimotor learning, but instead impaired their ability to reach the same level of performance as that of normal mice.

Animals↗

Spontaneous alternation, motor activity, and spatial learning in hot-foot mutant mice.

Hot-foot mutant mice, characterized by defective innervation of Purkinje cells and an ataxic gait, were less active than normal mice in a T-maze. In spontaneous alternation testing with either single or multiple trials, hot-foot mutants, contrary to normal mice, did not alternate above chance. Moreover, the mutants had a higher number of errors and higher escape latencies in a water-filled Z-maze. These results indicate that in addition to motor coordination deficits, these cerebellar mutants have deficits in spatial learning and perseverate choices of maze arms.

Animals↗

Dorsal striatal lesions in rats. 1: Effects on exploration and motor coordination.

Rats with small dorsal striatal lesions were compared to sham-operated controls in a series of test measuring their exploratory behavior in a T-maze, a hole-board, and an elevated plus-maze. Motor coordination was evaluated in the inclined grid and in the square bridge tests and grip strength in the wire suspension test. The rats with dorsal striatal lesions were not impaired in the motor coordination tests, the grip strength test, nor in spontaneous alternation. By contrast, an increase of emergence latencies in the elevated plus-maze and a reduction of motor activity in the hole-board confined space during the early part of testing were observed in rats with dorsal striatal lesions. These results are ascribed to a lesion-induced situation-specific increase in inhibition.

Animals↗

Dorsal striatal lesions in rats. 2: Effects on spatial and non-spatial learning.

Rats with small electrolytic lesions of the dorsal striatum were evaluated in acquisition of spatial learning, sensorimotor learning, and a straight runway food approach response and its extinction. No differences were detected between rats with dorsal striatal lesions and sham-operated controls during acquisition of hidden and visible trials in the Morris water maze. Neither was an intergroup difference observed during acquisition of the rotorod test of motor coordination. Lesioned rats were not impaired in running for a food reward, but their running latencies on day 2 of extinction were lower than those of controls, an indication of perseveration. These results indicate that perseverative responding may occur in dorsal striatal lesioned rats in the absence of spatial or sensorimotor defects.

Analysis of Variance↗

Egocentric references and human spatial orientation in microgravity. I. Perception of complex tactile stimuli.

This paper is devoted to the results of the "tactile matrix" experiment performed during the second French-Soviet spaceflight (project Aragatz). The perception of the orientation of complex tactile stimuli (letters and digits) applied to different skin areas under varied conditions was studied. The task of interpretation of complex tactile stimuli was not affected by the absence of the gravitational vertical, although this task is closely associated with mechanisms for the perception of body configuration, as well as the spatial orientation of different body parts. The number of errors made under conditions of weightlessness was often even less than on Earth. The results confirm the high stability of the egocentric reference system and provide evidence that this system is based on a body scheme which cannot be easily modified by changing external conditions.

Humans↗

Egocentric references and human spatial orientation in microgravity. II. Body-centred coordinates in the task of drawing ellipses with prescribed orientation.

This article describes the results of the "ellipses" experiment conducted during the second French-Soviet spaceflight (project Aragatz). The realization of oriented motor tasks, on the basis of internal body representation and without visual feedback, was chosen as a paradigm for studying the determinants of spatial orientation under weightlessness. The process of drawing ellipses in the air, using arm movements with axes parallel or perpendicular to the longitudinal body axis, was studied under normal gravity and in weightlessness, and recorded using a video computer motion-analyzing system (Kinesigraph). On Earth, the experiments were performed in standing and lying positions, and in flight, in the erect position with the feet fixed to the floor. In general, performance of the task in microgravity was not disturbed. Under conditions of spaceflight, the longitudinal ellipse was inclined forward in accordance with the inclination of the whole body relative to the fixed feet. On Earth, the angle between the long axes of longitudinal and transverse ellipses deviated from 90 degrees by 20-30 degrees. The same deviation persisted under microgravity conditions. The distinctive features of ellipses traced by individual subjects were also preserved. It is concluded that an egocentric reference system ensures normal performance of sensorimotor tasks in the absence of a gravitational reference.

Adaptation, Psychological↗

Adaptive modifications of postural attitude in conditions of weightlessness.

Adaptation of static posture was studied before, during, and after a 7-day space flight. Body segment orientations, body stability, and muscle activity underlying the reproduction of several postural attitudes were examined in various visual situations either with the shoes attached to the floor or during free floating. In standing or relaxed subjects whose shoes were attached to the floor, the tonic activity of the ankle flexor was enhanced relative to that in the same posture on earth, whereas the extensor activity disappeared. Errors in attempting to reproduce the normal terrestrial upright posture and a forward-leaning posture were accompanied by major changes in the synergies between neck, hip, knee, and ankle joints. These changes are mainly attributed to cumulative adjustments in response to nonvestibular signals such as tactile, articular, and proprioceptive cues.

Biomechanical Phenomena↗

Adaptive changes in perception of body orientation and mental image rotation in microgravity.

The perception of the subjective body orientation with respect to a foot reference basis, and the adaptation of mental image rotation have been investigated before, during, and after a 7-d spaceflight. The findings show that the body is tilted forward in darkness and in stabilized vision, which indicates a predominant role of vision in such orientational tasks performed in microgravity. Furthermore, perception of head angular rotation in pitch and roll axes seems to be altered in microgravity, whereas head displacements in yaw are estimated correctly. Subjects' capability to rotate mentally the image of the visual environment increased during the flight. Memorized writing was affected in microgravity, especially concerning the layout of letters corresponding to the vertical direction.

Adaptation, Physiological↗

Role of the monkey substantia nigra pars reticulata in orienting behaviour and visually triggered arm movements.

The role of the substantia nigra pars reticulata (SNpr) has been studied in the head-free monkey during orienting behaviour in response to visual instruction signals triggering head positioning and conditioned arm movement. During the behavioural responses we recorded the electromyographic activities of neck muscles and triceps brachii, head movement, horizontal electrooculogram and single unit activity of SNpr neurons. Activity of 38 neurons located in the medial part of SNpr were analysed during the visuo-motor task. Forty percent of these units showed a moderate decrease in tonic firing rate during postural preparation preceding the orientation toward eccentric visual signal. This decrease, unrelated with saccadic eye movements per se, was followed by a marked pause observed when the rewarded stimulus was switched on and the conditioned arm movement was executed to get the reward. These data suggest that the pause in discharge of these SNpr neurons are time locked with behaviourally relevant visual stimuli and/or appropriate motor responses.

Animals↗

Modifications of gain asymmetry and beating field of vertical optokinetic nystagmus in microgravity.

Optokinetic nystagmus (OKN) was measured in human subjects before, during and after exposure to microgravity induced by either parabolic flight or space flight. The downward (slow phase up) OKN gain was greater than upward gain in normal gravity. On first exposure to microgravity this asymmetry was reversed. In addition, the beating field of OKN tended to shift downward, and the vertical optokinetic after nystagmus (OKAN) time constant was increased. This reversed asymmetry disappeared after 3 days of space flight. On return to 1 g gravity, there was a general drift of the eye in the upward direction during either spontaneous eye movements or OKN. This suggests that the sacculus normally influences mean vertical eye position and the perception of the subjective horizontal direction, both of which are gravity dependent.

Electrooculography↗

Changes of posture during transient perturbations in microgravity.

The control of goal-directed arm movement and of body stability before, during, and 3 d after a 7-d spaceflight has been investigated. The findings show that the anticipatory and compensatory activities of the postural muscles were highly reproducible during the first days of the space mission. The sequence of these activities, studied in two situations--in which the platform either was fixed or could rotate about near the rotation axis of the ankle--was similar to a ground-based situation. The trajectory of various body segments demonstrates that a 7-d exposure to microgravity did not result in major changes in posture. Furthermore, vision seemed to play an important role in the control of standing posture at the beginning of the flight. Postural perturbations, elicited by unexpected displacements of the foot support, involved leg muscle reflexes whose amplitudes were greatly reduced compared to those on earth.

Ankle Joint↗

Adaptation of postural control to weightlessness.

Adaptation of motor control to weightlessness was studied during a 7-day spaceflight. The maintenance of control of upright posture was examined during a voluntary raising movement of the arm and during the voluntary raising on tiptoe. In order to evaluate the contribution of visual cues, three types of visual situations were examined: normal vision, central vision, and without vision. On the basis of cinematographic and mechanographic data, the postural perturbations consecutive to the movement of a body part in conditions of weightlessness were found to be similar to those observed on earth. However, in weightlessness, in contrast to the ground-based situation, erectness of posture was maintained primarily due to the predominant contraction of the ankle flexor muscles. The sequences of postural leg muscle activity associated with the arm or foot movement were well structured and varied slightly in the course of the flight. In addition, the initial posture, that is the erect posture before the movement was executed, changed throughout the flight from an exaggerated oblique position to a terrestrial standing position. Visual information was preponderant at the beginning of the space mission for the recalibration of other sensory cues affected by weightlessness. The findings are indicative of two types of adaptation of the central program of posture regulation to weightlessness: fast, short-term adaptation, characterized by a quasi-instantaneous redistribution of motor commands between ankle flexors and extensors (an "operative process") and slow, long-term adaptation, exemplified by the loss of anticipatory activation of certain muscles by the end of the flight (a "conservative process").

Adaptation, Physiological↗

Behavior of preoculomotor burst neurons during eye-head coordination.

Single-unit recordings from the pontine reticular formation in four monkeys have shown the presence of two classes of short-lead burst neurons firing during coordinated eye-head movements. The activity of one class showed a correlation with the size of saccadic movements performed during head movements; the other showed a correlation between firing pattern and the combined eye-head movement. Anatomical reconstructions of the recording sites point to an intermingling of the two cell types.

Animals↗