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Biomedical subjects

B Guschlbauer

Publications and source records attributed to B Guschlbauer.

At least 37 records · Page 2Linked to original sources

CO2 reactivity testing without blood pressure monitoring?

BACKGROUND AND PURPOSE: Responsiveness to CO2 is an established test of cerebrovascular reserve capacity. Arterial partial pressure of CO2 (PCO2) and arterial blood pressure (BP) are key parameters for cerebral blood flow. To investigate the interaction between PCO2 and BP, we performed a study with simultaneous measurement of CO2 and BP during CO2 reactivity testing with transcranial Doppler sonography. METHODS: Eighty-one healthy volunteers, aged 19 to 74 years, underwent examination defined by a protocol with multimodality monitoring of BP, heart rate (HR), PCO2, and Doppler frequencies (DFs) of the left middle cerebral artery (MCA). Reproducibility was tested in a subgroup of 14 volunteers >/=65 years of age by CO2 reactivity testing on different days. RESULTS: Increase of PCO2 was accompanied by a parallel increase of mean+/-SD time values of DF (3. 6+/-1.6%/mm Hg CO2). BP levels were significantly elevated after 60-second hypercapnia (mean values, 0.5+/-0.55 mm Hg/mm Hg CO2). A significant decrease over time was seen only for pulsatility in DF but not in BP. Analysis of variance and covariance with repeated measures revealed a highly significant effect of CO2 on MCA Doppler shift. A less-pronounced effect on DF was seen for BP. Correlation analysis showed no significance for CO2 reactivity, but a significant correlation between test and retest was seen in BP-related CO2 reactivity. CONCLUSIONS: The CO2 response curve showed the known linear increase of DF. The parallel significant increase in BP most likely results from activation of the central sympathetic nervous system. The poor reproducibility for Doppler CO2 reactivity is to some extent explainable by variability of BP. CO2-induced increases in BP can have relevant influence on MCA Doppler shift and lead to misinterpretation of Doppler CO2 test results.

Adult↗

Central mechanisms in human enhanced physiological tremor.

The sites of the central nervous structures involved in enhanced physiological tremor (EPT) are still unclear. The syndrome of persistent mirror movements (PMM) is characterized by abnormal bilateral corticospinal projections. If a supraspinal mechanism is involved in EPT, the activity of EPT should be coherent between both sides in subjects with this abnormality. We investigated three PMM subjects and three normal controls. Focal transcranial magnetic stimulation (TMS) resulted in contralateral hand muscle responses in the controls. The PMM subjects, in contrast, had bilateral responses. Similarly, long-latency reflexes (LLR) in PMM could be recorded bilaterally, while the control subjects showed responses only on the stimulated side. EPT was evoked by intravenous salbutamol. EMG time series were recorded bilaterally from the wrist extensor muscles and cross spectra were calculated. If there was a significant right-left-coherence, phase analysis was performed. No control subject showed a significant right-left-coherence of tremor activity. In contrast, a significant coherence was found in PMM between 8 and 12 Hz. When the mechanical tremor frequency of one hand was reduced by loading, coherences and phase spectra of the EMGs remained unchanged. By comparing the results from TMS, LLR and cross spectral analysis we come to the conclusion, that the 8 to 12 Hz component of EPT is transmitted transcortically, most likely originating from two separate generators for both sides.

Adult↗

Hand tremor in patients with spasmodic torticollis.

The occurrence of hand tremors in patients with spasmodic torticollis (ST) was investigated in 55 patients by clinical and quantitative measurements. Ten patients had first-order or second-order relatives affected with postural tremor. Although 40% of the patients had a medical history and clinical findings for mild postural and action tremor of the hands, only four had moderate tremor amplitudes. One patient had a severe tremor, including resting tremor, and two had mild voice tremor. A positive correlation was found between hand and head tremor. Patients with hand tremor were younger at the onset of ST than were those without. The mean amplitudes of postural tremor were only slightly higher than for the controls and much smaller than those found in classic essential tremor. The tremor caused only mild disabilities. The tremor frequencies were indistinguishable from physiologic tremor. Further analysis of the tremor records showed evidence for physiologic tremor mechanisms only. We conclude that slightly enhanced postural hand tremors are common in ST but have a low amplitude and are only rarely clinically relevant for ST patients. Although the present data support the notion of an enhanced risk of postural tremor in families of patients affected with ST, none of the criteria allowed the separation of the hand tremor of ST from other postural/action tremors and especially from enhanced physiologic tremor. Thus, the present data do not support the classification of hand tremor in ST as either "dystonic" or essential tremor.

Adolescent↗

Stimulation of sympathetic activity by carbon dioxide in patients with autonomic failure compared to normal subjects.

In vivo studies selectively assessing preganglionic and central autonomic nervous system activity in patients with autonomic failure have so far been limited to testing pituitary function. In animal experiments carbon dioxide (CO2) selectively stimulates central sympathetic nuclei in the ventrolateral medulla and preganglionic sympathetic neurons in the cervical trunk. This central stimulation seems to overrule less pronounced peripheral vasodilatatory effects. This study addressed the question of whether hypercapnea is a suitable challenge procedure to test preganglionic and central autonomic activity in healthy subjects and in patients with autonomic failure of preganglionic and central origin. Seven patients with multiple system atrophy (MSA) and 30 age-matched healthy volunteers underwent a protocol including a Valsalva manoeuvre (VM) under normo- and hypercapnic conditions and exposure to hypercapnea under supine resting conditions. Blood pressure (BP), heart rate (HR) and end-tidal CO2 partial pressure were measured continuously and non-invasively. In normal controls hypercapnea induced significantly higher BP values in phases II, IIe, III and IV of the VM compared to the normocapnic VM and a significant increase in BP during steady-state supine exposure compared to normocapnic baseline. HR increased significantly only after 40 s of steady-state hypercapnea during the latter challenge. In patients with MSA and autonomic failure, in whom a predominantly preganglionic lesion of the autonomic nervous system is established, no significant effects of hypercapnea on the cardiovascular parameters were found. Although this non-invasive challenge procedure cannot differentiate between pre- and postganglionic autonomic failure, exposure to hypercapnea enables the investigation of efferent autonomic activity to vasoconstrictors generated from autonomic centres in the brainstem and cervical trunk.

Aged↗

Effects of local injections of botulinum toxin on electrophysiological parameters in patients with hemifacial spasm: role of synaptic activity and size of motor units.

Ten patients with typical hemifacial spasm were examined before and after treatment with local injections of botulinum toxin type A. After a mean follow-up period of 38 days there was a reduction of the compound muscle action potential (CMAP) of the injected orbicularis oculi muscle of 40%. Ephaptic transmission studied by selective stimulation of facial nerve branches revealed a preserved delayed response of the affected mentalis muscle. However, no delayed response could be recorded in the injected orbicularis oculi muscle in nine patients. The discrepancy between complete loss of the delayed (ephaptic) response and only moderate reduction of the CMAP amplitude of the direct response may be explained by preferential uptake of botulinum toxin type A by hyperactive synapses involved in ephaptic transmission.

Action Potentials↗

Hand muscle reflexes following air puff stimulation.

Hand muscle reflexes following muscle stretch and electrical nerve stimulation show a typical pattern consisting of short- and long-latency reflexes. The present investigation was designed to test reflexes following pure cutaneous stimulation. Air puffs were delivered to the palmar tip and the nail bed of the first, second and fifth fingers during isotonic contraction of hand muscles. The EMGs from the thenar muscles, the first dorsal interosseous muscle and the hypothenar muscles were recorded. Reflexes were obtained in all muscles, with a typical configuration consisting of a short-latency excitatory component (cutaneous long-latency reflex I, cLLR I) and a second excitatory component (cutaneous long-latency reflex II, cLLR II), with an inhibitory component between them. The size of cLLR II differed depending on the area stimulated and the muscle recorded. We found the largest responses always in the muscle acting on the stimulated finger. The reflex size depended on the strength of air puff stimulation. Allowing small displacements of the fingers led to an additional increase in the size of the reflex. The pattern of reflexes was identical independent of whether the finger tip or the nail bed was stimulated, but the size of the reflexes was smaller following nail bed stimulation. Following blockade of the cutaneous nerve branches of the thumb with local anaesthetics, air puff stimulation of the thumb no longer elicited this reflex pattern. Hence, under our experimental conditions, cutaneous receptors were the only source of afferent input for these reflexes.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

The coordination of posture and voluntary movement in patients with hemiparesis.

Postural adjustments associated with the task of raising oneself on tiptoes were investigated in a reaction time paradigm in six normal subjects and six patients with hemiparesis due to stroke. Body and ankle position in space were measured by means of a movement analysis system (ELITE). The findings indicate that the task of going up on tiptoes is performed in two steps. First, the centre of gravity is shifted forward to a position perpendicular to the forefoot. This movement is initiated by a phasic burst of EMG activity in the tibialis anterior (TA). The activity of the quadriceps femoris (QUA) aids the forward shift and together with the biceps femoris (BF) stabilizes the knee. Following these postural adjustments, the action of going up on tip-toes is performed mainly by the gastrocnemius medialis (MG). The basic pattern of preparatory (TA, QUA, BF) and focal (MG) activity was disturbed in its temporal sequence in patients with hemiparesis. The analysis of the biomechanical data showed smaller movement velocities for leaning forward and going up on tiptoes in patients, with increased movement amplitude on the paretic side. In addition, the correlation between the start of horizontal (leaning forward) and vertical (going up on tiptoes) hip movement was lost in patients. The preserved correlation between the latency of MG activity and the onset of the vertical hip movement on the paretic side in patients and the loss of correlation on the non-paretic side indicates that the EMG activity on the healthy side is adapted to the functional requirements of the affected side.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

The coordination of posture and voluntary movement in patients with cerebellar dysfunction.

Postural adjustments associated with the task of rising on tiptoes were investigated in a reaction time paradigm in 10 normal subjects and 18 patients with cerebellar disorders. Cerebellar dysfunction was due to either degenerative cerebellar disease, tumor, or ischemia. Displacements of the center of foot pressure (CFP) were recorded. The task, accomplished by the triceps surae muscle (executional activity, mean latency of 411 ms), is mechanically effective only if the center of gravity has been shifted forward in advance. To this effect, a phasic burst of preparatory EMG activity in the tibialis anterior normally occurs at a mean latency of 163 ms, shifting the center of gravity forward. Shortly thereafter, activity of the quadriceps femoris (175 ms) extends the knee and aids the forward shift of the center of gravity. Different aspects of this motor sequence were disturbed in individual patients: Latencies of preparatory and executional activity were uncorrelated in 15 of the 18 patients. Executional (n = 16) or preparatory (n = 13) EMG activity was tonic instead of phasic. Latencies of either preparatory or executional EMG activities or both were prolonged (n = 10). The time interval between motor preparation and execution was increased (n = 9). The trial-to-trial variability of biomechanical parameters and EMG latency was increased. Preparatory EMG activity in the quadriceps was entirely missing (n = 9), resulting in knee bending at the unsuccessful attempt to rise on tiptoes. Patients who were most severely affected had no preparatory activity at all (n = 2), and therefore were unable to perform the task.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent↗

Neurophysiological evaluation of sensorimotor functions of the leg: comparison of evoked cortical potentials following electrical and mechanical stimulation, long-latency muscle responses, and transcranial magnetic stimulation.

Twenty-two patients with localized lesions of the central nervous system (unilateral cerebral ischaemia, cervical myelopathy, spinal tumour, familial spastic paraplegia) underwent neurophysiological evaluation of sensorimotor deficits of the leg. Functional methods using muscle stretch as stimulus, i.e. long-latency muscle responses and cortical potentials evoked by dorsiflection of the foot, were compared with transcranial magnetic stimulation and somatosensory evoked cortical potentials following electrical stimulation of the posterior tibial nerve. The functional neurophysiological methods yielded no diagnostic superiority with respect to the procedures using artificial (i.e. magnetic and electrical) stimulation. However, in most cases of missing compound motor action potentials following transcranial magnetic stimulation or missing electrically evoked cortical potentials, the long-latency muscle responses still allowed quantitative assessment of sensorimotor function.

Adult↗

Influence of an acoustic preparatory signal on postural reflexes of the distal leg muscles in humans.

In standing subjects the sudden displacement of a platform toe-up evokes a stabilizing postural response of the anterior tibial muscle (long-latency reflex). A preparatory signal (acoustic warning stimulus) preceding the postural perturbation by 1 s results in a significant decrease in latency of this long-latency response. There is no parallel modulation of the afferent cortical input in terms of evoked cerebral potentials following platform tilts toe-up nor of efferent cortico-spinal functions as evaluated by means of transcranial magnetic stimulation. Conceivable underlying mechanisms include faster intraspinal and/or intracortical processing of afferent input or switching to a shorter spinal reflex pathway.

Acoustic Stimulation↗

Direction and amplitude precuing has no effect on automatic posture responses.

Automatic postural responses of leg muscles to the sudden displacement of standing support were investigated under four different conditions of information given to subjects in advance. Results from three groups of subjects were compared: 6 normal subjects, 10 patients with cerebellar disease, and 9 patients with Parkinson's disease. Specifically, each subject was provided with visual information about the direction and/or the amplitude of an upcoming platform tilt. For the control situation no advance information on the characteristics of platform tilt was provided. Neither the latencies nor the integrals of postural EMG-responses showed alterations with advance information. In contrast, in a control experiment in which 3 normal subjects had to perform large or small forward or backward voluntary movements of the body around the ankle joint, shorter onset-latencies of leg muscle EMG responses were observed with increasing complexity of the advance information. These results suggest that, unlike voluntary movements, postural responses to rapid surface tilts do not benefit from advance visual information on direction or amplitude of a postural disturbance.

Adult↗

Associated postural adjustments with body movement in normal subjects and patients with parkinsonism and cerebellar disease.

Sequential postural adjustments associated with the task of rising on tip-toes were investigated in a reaction time paradigm in 30 normal subjects, 10 patients with Parkinson's disease and 2 patients with cerebellar lesions. The typical motor pattern observed in normal subjects consists of preparatory activity in tibialis anterior (TA, shifting the body forward) and quadriceps femoris (QUA, stabilizing the knee joint) followed by executional activity in triceps surae (TS) resulting in the movement itself. Shortening of TS without preparation would result in shifting the body backward and in flexion of the knee. The coordinated pattern of motor activities is obviously adapted to functional demands. Leaning forward or backward prior to the movement results in additional adaptive changes in the timing of preparatory versus executional EMG activity, and in the amount of preparatory muscle force. The basic pattern of preparatory (TA and QUA) and executional (TS) activity was preserved in most patients with Parkinson's disease. Reaction times were normal or only moderately delayed. Time intervals between postural preparation and execution were also normal. But trial to trial variation of reaction times was increased. In the two patients with cerebellar disorders, motor preparation in QUA was delayed beyond TS onset. EMG activity was tonic and cocontraction of antagonistic muscles occurred. The basic pattern of motor preparation and execution was again preserved. It must therefore be generated outside the basal ganglia and the cerebellum. The temporal coordination of muscular activity within each and between the two components and scaling of muscle force are under cerebellar control.

Adult↗

Disturbances of motor preparation in basal ganglia and cerebellar disorders.

Movements of the arms (execution) in standing human subjects are preceded (preparation), accompanied, and followed (compensation) by muscular activity in postural trunk and leg muscles. Postural muscular activity compensates inertial forces acting on the body at the beginning and during arm movements and keeps the centre of gravity within the limits of stable upright standing. Standing normal subjects and patients performed bilateral arm elevations in response to an acoustic trigger. The beginning of EMG activity in the anterior deltoid muscle reflects the reaction time. Postural activity prior to the arm movement was observed in anterior tibialis, paraspinalis, and hamstring muscles. Compensatory muscular action occurred in the triceps surae. Motor preparation and compensation thus are an integral part of a motor programme. Muscles involved, latencies, and amount of EMG activity change with variations in the motor task (e.g. range of arm movement, changes in inertia of the arm, changes in initial body position). Reaction times and the pattern of preparatory and compensatory postural EMG activity were normal in most of the patients with Parkinson's disease. Reaction times were significantly increased in patients with cerebellar atrophy. The most prominent pathological feature in cerebellar patients was the inadequate temporal sequence of motor preparation and execution. Our results indicate that the basal ganglia play a minor role in motor preparation, whereas the cerebellum seems to coordinate the relative timing between motor preparation and execution.

Adult↗

Increased shortening reaction in Parkinson's disease reflects a difficulty in modulating long loop reflexes.

Short and medium latency electromyographic (EMG) responses to stretch of the triceps surae muscle and long latency EMG responses (LL) in the anterior tibial muscle (TA) were evoked by toe-up tilt of a movable platform while standing or sitting, in normal subjects and patients with Parkinson's disease. With the stimulus parameters used (amplitude 4 degrees, velocity 50 degrees/s), LL in TA were absent in normals while sitting, but were present in 11 of the 12 patients with Parkinson's disease. In patients, LL latencies were identical in both positions. The results indicate that patients with Parkinson's disease have difficulty modulating long latency responses according to functional demands. Long latency responses in TA in the sitting position may correspond to the shortening reaction observed by others when much stronger stimuli were used.

Ankle Joint↗

Role of visual and static vestibular influences on dynamic posture control.

Postural stabilization in altered visual and vestibular conditions was investigated in humans subjected to fast transient disturbances and during sinusoidal movement of the standing support. Visual inputs were varied by applying stroboscopic illumination, stabilizing the visual surround in respect to head movements, inducing apparent body movement in pitch by continuously moving stripe patterns up or down and by eye closure. Static vestibular input was modified by bending the head forwards or backwards, or to the right or left shoulder (eyes closed). Neither biomechanical parameters of standing nor EMG responses of the anterior tibial and triceps surae muscles were modified by the different visual and vestibular conditions during fast transient (80 degrees/s) platform movements 4 degrees toe-up. Continuous regulation of upright stance during sinusoidal movements (1 Hz, 0.3 Hz), however, clearly depended on the different modifications of visual and vestibular inputs. Fast transient disturbances are easily compensated in a reflex-like manner independent of visual and vestibular feedback. Continuous regulation of upright posture during slow disturbances, however, clearly depends on the evaluation of afferent information from the visual, vestibular, and proprioceptive systems.

Adolescent↗

Medium- and long-latency responses to displacements of the ankle joint in patients with spinal and central lesions.

In order to elucidate further the possible pathways and the functional significance of long-loop reflexes we recorded short-, medium- and long-latency responses from leg muscles in 27 patients with spinal lesions, 20 patients with central lesions of the internal capsule or cerebral hemisphere, and in 18 control patients with frontal or occipital lesions without motor or sensory disturbances. Our normal population included 50 subjects, who were age and sex matched to the patients. The mean latency of the long-latency response (LL) in the anterior tibial muscle was significantly delayed in patients with spinal (164.5 msec) and central lesions (145.1 msec) compared to control patients (123.5 msec) and the normals (125.3 msec). This delay of LL could be observed in patients who exhibited only motor or sensory disturbances or a combination of both. The medium-latency response (ML) was absent in 47% of the records in patients with spinal lesions, mainly on the side which was clinically more affected. Its latency was normal if the response occurred. The integral of the LL response was enlarged in patients with spinal or central lesions, but was also enlarged in the control group. The results indicate that the ML response is segmental, but that its amplitude is modulated by supraspinal structures. The LL response probably corresponds to a transcortical 'reflex.'

Ankle Joint↗

The significance of proprioception on postural stabilization as assessed by ischemia.

In order to further investigate the role of proprioceptive input from the legs for the maintenance of upright human posture ischemia was bilaterally applied at the level of the ankle or the thigh. Preservation of efferent innervation was ascertained by measurements of the maximal force of voluntary dorsi- and plantarflexion. Visual stabilization was excluded by eye closure. To test different frequency domains of postural stabilization, subjects were exposed to sudden ramp tilts or to sinusoidal low frequency (0.3 Hz) anteriorposterior displacements of the supporting platform. The results indicate that proprioceptive input from skin, pressure and joint receptors of the foot (ischemia at the ankle) is of minor importance for the compensation of rapid displacements, but plays a significant role when the platform moves at low frequencies. M1 and M2 responses in the stretched triceps surae and the late antagonistic response of the anterior tibial muscle (M3) are preserved with ischemia of the foot. Reversible ischemic paralysis or other (yet unidentified) mechanisms of destabilization must be responsible for the severe decrease of postural stability observed with ischemia at the level of the thigh and sinusoidal platform movements. Complete loss of the proprioceptive input from the legs leads to a pathognomonic 1Hz body tremor both under static and dynamic conditions.

Electromyography↗