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Biomedical subjects

D I McCloskey

Publications and source records attributed to D I McCloskey.

At least 19 recordsLinked to original sources

Stable human standing with lower-limb muscle afferents providing the only sensory input.

1. This study investigated the sources of sensory information upon which normal subjects' ability to stand depends. 2. An 'equivalent body' was used to simulate the physical properties of each subject's body during standing. The modulation of ankle torque required to support the equivalent body in an upright position was similar to that required to support the subject's own body when standing. However, when balancing the equivalent body, vestibular inputs were excluded from directing the appropriate changes in ankle torque. Thus, stability of stance could be studied with (normal stance) and without (balancing equivalent body) modulation by vestibular inputs. Vision could be excluded by closing the eyes. Sensory input from the feet and ankles could be removed by local anaesthesia from prolonged ischaemia, induced by occluding blood flow with inflated pneumatic cuffs just above the ankles. With vestibular, visual and peripheral sensory inputs negated, standing could rely only upon remaining sensory inputs, notably those from sensory receptors in the leg muscles. 3. Unlike the human body, the equivalent body used to negate vestibular inputs is not segmented. Therefore, the effects on stability of having a segmented body were determined by splinting subjects during standing so that only ankle movement was possible. This was done in the presence and absence of visual stabilization. 4. For each experimental task, either standing or balancing the equivalent body, sway was recorded while posture was unperturbed. Root mean square values of sway amplitude and power spectra were used to compare conditions. 5. Every subject could balance the equivalent body in a stable way when the eyes were closed, and when the feet were anaesthetized.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Proprioceptive, visual and vestibular thresholds for the perception of sway during standing in humans.

1. Thresholds for the perception of postural sway induced by gentle perturbations were determined for five normal standing subjects. In this context we understand 'perception' to mean 'able to give a subjective report'. The thresholds for the perception of movements that were equivalent to sway in velocity and amplitude were determined when the available sensory input was limited to only one, or a pair, of the vestibular, visual, and proprioceptive systems. To examine vestibular inputs alone, vision was excluded and the whole body was moved with the ankles in a fixed position. To examine visual inputs alone, the body was kept stationary and a 'room' was moved around the subjects to simulate the relative visual-field movement that occurs during standing. To limit the available sensory input to proprioception from the legs, subjects were held stationary and balanced a load that was equivalent to their own body using their ankles. In this situation, perturbations were applied to the 'equivalent body' and these could only be perceived from the resulting ankle movements. Thresholds for perceiving ankle movements were also determined in the same posture, but with the leg muscles bearing no load. 2. The thresholds for the perception of sway during standing were very small, typically 0.003 rad at a velocity of 0.001 rad s-1, and even smaller movements were perceived as the mean velocity of the sway increased up to 0.003 rad s-1. No difference was found between the thresholds for perceiving forward sway and backward sway. Eye closure during standing did not affect the threshold for perceiving sway. 3. When sensory input was limited to proprioception from the legs, the thresholds for the perception of passive ankle movements were equivalent to the thresholds for the perception of sway during standing with all sensory inputs available. When the leg muscles were relaxed, the thresholds for perceiving ankle movements increased approximately twofold. 4. The visual thresholds for perceiving movement were higher than the proprioceptive thresholds at slower velocities of movement, but there was no difference at higher velocities. 5. Both the proprioceptive and visual thresholds were sufficiently small to allow perception of the sway that was recorded when the subjects stood normally in a relaxed manner. In contrast, the vestibular thresholds were an order of magnitude greater than the visual or proprioceptive thresholds and above the largest sway movements that were recorded during normal standing.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult

Functional effects of a family of galanin antagonists on the cardiovascular system in anaesthetised cats.

Previous studies have shown that injection of galanin (GAL: 6.2 nmol/kg) causes prolonged inhibition of cardiac vagal action in anaesthetised cats. Stimulation of the cardiac sympathetic nerve (16 Hz for 5 min) also produces inhibition of cardiac vagal action, an effect which has been proposed to be due to the release of endogenous GAL from sympathetic nerves. In a previous study we tested galantide (M15) and in this study we compared galantide with two other GAL antagonists for their GAL antagonist activity in our experimental model. Each of these incorporate the N-terminal fragment GAL 1-13 and a C-terminal portion of another bioactive peptide and all are C-terminally amidated. GAL 1-13 Substance P 5-11 amide (galantide: M15: 62 nmol/kg and 156 nmol/kg), GAL 1-13 Spantide amide (C7: 156 nmol/kg) and GAL 1-13 NPY 24-36 amide (M32a: 62 nmol/kg) all significantly reduced the cardiac vagal inhibitory effect of exogenous GAL and also reduced the effect of sympathetic stimulation on subsequent cardiac vagal slowing, giving strong support to our hypothesis that GAL is involved in this phenomenon. No antagonist reduced the depressor effect of GAL. This study demonstrates the GAL antagonist properties of these agents on autonomic neuroeffector functions making them useful tools in elucidating further functions of endogenous GAL.

Analysis of Variance

The effects of galanin and galanin fragments on cardiac-vagal action and blood pressure in the anaesthetised cat.

Galanin (GAL), 29 amino acid peptide, has previously been shown to inhibit cardiac vagal action, and to cause a fall in systemic blood pressure in anaesthetised cats, at a dose of 6.2 nmol/kg. Here, the biological activity of exogenous GAL fragments was assessed in anaesthetised cats. GAL 1-16 at a dose equimolar with the full GAL 1-29 peptide (6.2 nmol/kg) and at a dose five times the molar dose of GAL 1-29 (31 nmol/kg), was found to be biologically active although the effects were less than that of the full peptide. GAL 1-15 at doses up to 10-times the molar dose of GAL 1-29, however, was not active, suggesting that amino acid 16, isoleucine, is critical for activity. In addition, GAL 15-29 and 21-29 showed no biological activity at doses up to 10-times the molar dose of GAL 1-29. These results suggest that the N-terminal rather than the C-terminal end of the GAL molecule is the one responsible for most of GAL's biological activity in this preparation.

Animals

Inhibition of cardiac vagal action by galanin but not neuropeptide Y in the brush-tailed possum Trichosurus vulpecula.

1. Stimulation of the right cardiac sympathetic nerve for 2 min at 16 Hz in the presence of either beta- or alpha- and beta-adrenoceptor blockade evoked attenuation of cardiac vagal action in eight possums: 31.3 +/- 10.3% maximum inhibition of cardiac vagal action on prolonging pulse interval, with a time to half-recovery of 4.9 +/- 1.1 min. 2. Intravenous injection of galanin (2-3.5 nmol kg-1) evoked similar inhibition of cardiac vagal action: 41.3 +/- 4.1% maximum inhibition of cardiac vagal action on pulse interval, with a time to half-recovery of 13.4 +/- 2.3 min. 3. Intravenous injection of neuropeptide Y (NPY) at greater molar doses (6.5-10 nmol kg-1) caused no inhibition of cardiac vagal action. 4. The galanin injections caused a powerful pressor response: 57.1 +/- 4.9 mmHg increase in systolic blood pressure. NPY caused a smaller pressor response, despite administration of higher molar doses: 36.7 +/- 3.0 mmHg increase in systolic blood pressure. 5. In the possum, galanin but not NPY can mimic the effects of cardiac sympathetic nerve stimulation on vagal action. Galanin also causes large pressor effects.

Animals

Galanin antagonist effects on cardiac vagal inhibitory actions of sympathetic stimulation in anaesthetized cats and dogs.

1. Galantide, a putative galanin antagonist composed of twenty amino acids, caused a significant reduction in the vagal attenuating action of galanin injection (20 micrograms/kg; 6.2 nmol/kg) in anaesthetized cats at both ten times (137 micrograms/kg; 62 nmol/kg) and twenty-five times (343 micrograms/kg: 156 nmol/kg) the molar dose of galanin. Galantide did not block the depressor action of galanin in these animals. 2. Galantide, at both doses, also significantly reduced the vagal attenuating action of a 5 min period of cardiac sympathetic stimulation at 16 Hz in anaesthetized cats. 3. In anaesthetized dogs, galantide, at the same dose used in cats (137 micrograms/kg; 62 nmol/kg) had no significant effect on the vagal attenuation evoked by cardiac sympathetic stimulation or injection of neuropeptide Y (35 micrograms/kg; 8.2 nmol/kg). 4. This study therefore demonstrates antagonist properties of galantide on the vagal inhibitory action of galanin. It supports the hypothesis that the vagal inhibitory factor released by cardiac sympathetic nerve stimulation in the cat, but not the dog, is galanin, although it does not exclude the possibility of other factors playing a more minor role. Because galantide was not shown to block the depressor action of galanin, this study also suggests that there may be more than one galanin receptor subtype.

Animals

Comparison of the inhibitory roles of neuropeptide Y and galanin on cardiac vagal action in the dog.

Prolonged attenuation of cardiac vagal action occurs following cardiac sympathetic nerve stimulation or intravenous neuropeptide Y (NPY) injections in anaesthetised dogs. Equimolar intravenous injections of galanin (GAL) had no effect on cardiac vagal action in this species. Immunohistochemical analysis of dog stellate ganglia and cardiac muscle showed that most nerve cell bodies showing tyrosine hydroxylase immunoreactivity (TH-IR) also showed immunoreactivity to both NPY and GAL. The results are consistent with the proposal that NPY released from cardiac sympathetic nerves is responsible for the prolonged inhibition of cardiac vagal action known to be caused by such stimulation. A role for GAL, shown here to exist in cardiac sympathetic nerves in the dog, has yet to be determined.

Anesthesia

Effects of human, rat and porcine galanins on cardiac vagal action and blood pressure in the anaesthetised cat.

Galanin (GAL) is distributed in sympathetic nerves in the cat, and exogenous GAL inhibits cardiac vagal action and lowers blood pressure in this species. This study on anaesthetised cats compares the effects on cardiac vagal action and blood pressure of human, rat and porcine GAL. Human GAL has only recently been sequenced. It is of particular interest as it is not C-terminally amidated, unlike porcine and rat GAL. Many regulatory peptides require a C-terminal amide group for their action. However, human GAL showed similar biological activity to the other (amidated) GALs here. Omission of a single amino acid (Ser6) from rat GAL significantly attenuated both cardiovascular actions studied here.

Amino Acid Sequence

Inhibition of arterial baroreceptor and chemoreceptor reflex responses by neuropeptide Y in anaesthetised dogs.

The effects of bolus intravenous injections of neuropeptide Y (NPY) on increases in pulse interval (PI) evoked reflexly by arterial chemoreceptor and baroreceptor stimulation were investigated in anaesthetised dogs. The arterial chemoreceptors were stimulated by rapid injections of small volumes of CO2 into the carotid sinus or brief episodes of tracheal occlusion. Intravenous injections of NPY produced a prolonged attenuation of the reflex prolongation of PI induced by both methods. Two methods of testing the arterial baroreceptor reflex were used: steady-state increases in PI evoked in response to maintained step increases in systolic arterial blood pressure (SABP) from inflation of an aortic balloon-tipped catheter, and beat-by-beat increases in PI evoked reflexly by 'ramp' increases in blood pressure caused by intravenous injections of phenylephrine. In both methods the relationship between SABP and PI is linear over the range tested (up to SABP 200 mmHg), the slope of the line indicating the sensitivity of the reflex response. Intravenous injections of NPY produced a prolonged attenuation of the baroreceptor-cardiodepressor reflex measured by both methods. No significant differences were observed between the NPY-mediated inhibition of the direct effects on PI of electrical stimulation of a vagus nerve, and its inhibition of the reflex responses of PI to chemoreceptor or baroreceptor stimulation. The results indicate that the attenuation of reflex PI responses to arterial chemoreceptor and baroreceptor stimulation following an intravenous injection of NPY can be accounted for in terms of the action of NPY on vagal nerve endings at the heart, although additional sites of action cannot be ruled out.

Anesthesia

Dependence of hypotensive effect of neuropeptide-Y 18-36 fragment on intact vagus nerves.

Effects of neuropeptide Y (NPY 2.35-4.7 nmol) and the fragment NPY 18-36 (3.6-36 nmol) were studied in anaesthetized rats before and after vagotomy for actions on blood pressure (a postjunctional action) and on the change in pulse interval evoked by stimulation of the cut, peripheral vagus nerve (a prejunctional action). In intact rats NPY increased blood pressure. Low doses of NPY 18-36 (2.3-4.7 nmol) also increased blood pressure slightly but higher doses only transiently increased blood pressure and this was followed by a prolonged decrease in blood pressure. In vagotomised rats NPY increased blood pressure and attenuated cardiac vagal action. In higher doses the presynaptic effect of NPY 18-36 was more marked than its pressor action. NPY 18-36 (3.6-36 nmol) also increased blood pressure and attenuated cardiac vagal action. Thus, we conclude that the hypotensive action of NPY 18-36 depends on the intact vagus nerves: in the vagotomised rat NPY 18-36 has similar biological activity to NPY, but with reduced potency. To examine further the mechanism of hypotensive action of NPY 18-36 arterial rings from the central artery of the rabbit ear were also tested for direct actions of the peptides. This preparation is also suitable for testing any potentiation of contraction evoked by injection of noradrenaline. Neither NPY nor NPY 18-36 caused direct constrictor action in concentrations up to 10 microM. NPY 18-36 had no relaxing effect on constricted arterial rings.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Kinaesthetic signals and muscle contraction.

Signals generated both peripherally and centrally contribute to the group of sensations termed kinaesthesia. Many experiments report sensations of position and movement under passive relaxed conditions without muscle contraction. However, kinaesthetic acuity is probably of greater functional value when subjects are active rather than passive and, accordingly, movement detection is markedly improved by muscular contraction. One mechanism contributing to this enhancement is likely to involve muscle spindle volleys. When identical microstimulation techniques are applied to skin, joint and muscle spindle endings innervating the hand, some cutaneous afferents and some joint afferents elicit a sensation, but activation of certain other cutaneous afferents and muscle spindle afferents rarely does. Activity in more than one muscle spindle afferent may be required for kinaesthetic sensations, whereas some single cutaneous and joint afferents may have a more 'secure' central projection.

Animals

Effects of sympathetic activity and galanin on cardiac vagal action in anaesthetized cats.

1. Stimulation of the right cardiac sympathetic nerve for 3 or 5 min at 16 Hz in the presence of effective beta-adrenoceptor blockade evoked prolonged attenuation of subsequent cardiac vagal action in anaesthetized cats. Concurrent sympathetic and vagal stimulation, both at 16 Hz for the same period of time as sympathetic stimulation alone, reduced or abolished the inhibition of vagal action which followed when sympathetic stimulation was given alone. 2. A series of three successive intravenous injections of galanin all caused attenuation of vagally induced slowing of the heart, but the effect of each injection was less than that of the previous one. A fourth injection of galanin given after a 45 or 60 min rest period showed return of sensitivity. 3. Sympathetic stimulation at 16 Hz for 5 min was less efficient in causing attenuation of vagal slowing when applied following the administration of exogenous galanin. This is consistent with galanin being the mediator of vagal attenuation following sympathetic stimulation.

Animals

Ankle stiffness of standing humans in response to imperceptible perturbation: reflex and task-dependent components.

1. It has been demonstrated that subjects can alter the reflex stiffness of the elbow and wrist in response to imperceptibly slow perturbations applied through a complaint coupling. We used this technique to measure ankle stiffness in standing subjects as a means of examining reflex activity. 2. During unperturbed stance, a linear relationship between ankle torque and ankle angle is expressed as a load stiffness. The load stiffness predicted from a subject's measured physical dimensions corresponds closely with the value measured by standing the subject on a force platform. 3. Slow perturbations were applied at waist level, through a spring, to standing subjects. The perturbations caused sway similar in magnitude and rate to the sway of normal stance. Ankle stiffness was measured during the period when the perturbations were unperceived. The contribution to ankle stiffness of reflexes that use visual information was assessed by eye closure. The ability of reflexes based on sensory information from the legs to maintain upright posture was assessed when subjects balanced a load equivalent to their own body, in a situation where neither visual nor vestibular information could assist. Ankle stiffness was measured while the load was perturbed. 4. The results show that a simple mechanical model of stance predicts the torque-angle relationship at the ankle. This relationship determines the minimal ankle stiffness required to stand, and reflex muscle stiffness is a necessary component of this ankle stiffness. Visual, vestibular and lower limb sensorimotor reflexes each contribute to ankle stiffness; however, the local sensory reflexes alone are sufficient to stand. For responses to unperceived perturbations, standing subjects can alter their reflex ankle stiffness according to intentional set.

Ankle

Detection of slow movements imposed at the elbow during active flexion in man.

1. Subjects' ability to detect movements imposed at the elbow during active flexion was measured. Movements of three different angular velocities (0.04, 0.4 and 4.4 deg/s) were applied to the arm while subjects maintained one of two force levels of active flexion. The threshold magnitudes for detection of the direction of imposed movement were found. 2. All thresholds were very small. At the lowest velocity of movement the average threshold was 0.13 deg and no subject had a threshold of greater than 0.3 deg. This contrasts with thresholds of over 2 deg measured in a previous study when the muscles about the joint were relaxed. Thresholds decreased further with increasing velocity of movement. 3. No difference was found between the two levels of contraction of the elbow flexors. However, extension (stretch of the contracting muscle) and flexion thresholds were calculated separately, and smaller extensions than flexions could be detected. 4. These findings indicate that conscious detection of imposed movements is greatly enhanced during active muscle contraction. Movements which cause unloading of the contracting agonist, as well as movements which result in stretch, are more easily detected than when the muscle is contracting. The discussion focuses on possible mechanisms for this enhancement.

Elbow Joint

Illusions of head and visual target displacement induced by vibration of neck muscles.

Vibration of the posterior muscles of the neck in human subjects induces illusions of displacement and movement of a visual target when there is no visual reference (Biguer et al., 1988). Although illusions of head movement are rarely reported by subjects, when they point to the location of the nose they demonstrate an alteration of the perceived position of the head. The kinaesthetic illusion is in a direction consistent with the visual illusion but is of smaller magnitude.

Head

Neuropeptide Y and cardiovascular regulation.

1. The effects of neuropeptide Y (NPY) and related peptide fragments on blood pressure and vagal action at the heart were compared in the anaesthetized rat. 2. A change in vagal action was taken as a measure of presynaptic activity and a change in blood pressure was taken as a measure of postsynaptic activity. 3. NPY, NPY-(13-36) and a stabilized 13-36 analogue of NPY (ANA NPY) all exerted pressor actions and attenuated vagal action at the heart. 4. On the basis of different potencies demonstrated for the pressor and vagal inhibitory actions of these peptides, the results are consistent with the proposal that there are two populations of NPY receptors.

Animals

Proprioceptive sensation in rotation of the trunk.

Proprioceptive sensation in rotation of the trunk about a vertical axis was investigated in normal human subjects. Subjects pointed at the big toe with the nose to test the accuracy of positioning of the trunk. Active rotation of the head and shoulders on the stationary hips and legs to align the nose and toe, was not significantly more accurate than moving the hips, legs and toe under the fixed head and shoulders. Passive displacements were imposed on the head and shoulders, or on the hips and legs. Thresholds for the detection of these displacements were unchanged by the exclusion of vestibular stimulation. Thresholds were highest (still less than 1 degree) at the slowest angular velocity (0.1 degree/s) and became lower as the angular velocity was increased.

Adult

Ability to detect angular displacements of the fingers made at an imperceptibly slow speed.

The ability to detect very slow rotations, which were associated with no sense of movement, was tested at the metacarpophalangeal (MCP), proximal interphalangeal (PIP) and distal interphalangeal (DIP) joints of the middle finger of human subjects. This ability was termed 'position sense'. All the joints were found to have a position sense. No difference in detections of different angular displacements was demonstrated between the joints. Contraction, after the completion of a displacement, of the muscles operating the joints did not alter the position sense. In addition, the DIP joint was also examined in a posture that functionally disengaged its flexor and extensor and no change in position sense was found.

Finger Joint