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Biomedical subjects

J P Dick

Publications and source records attributed to J P Dick.

At least 19 recordsLinked to original sources

Cannabinoids reduce levodopa-induced dyskinesia in Parkinson's disease: a pilot study.

The lateral segment of the globus pallidus (GPl) is thought to be overactive in levodopa-induced dyskinesia in PD. Stimulation of cannabinoid receptors in the GPl reduces gamma-aminobutyric acid (GABA) reuptake and enhances GABA transmission and may thus alleviate dyskinesia. In a randomized, double-blind, placebo-controlled, crossover trial (n = 7), the authors demonstrate that the cannabinoid receptor agonist nabilone significantly reduces levodopa-induced dyskinesia in PD.

Aged↗

A SPECT study of the effect of vagal nerve stimulation on thalamic activity in patients with epilepsy.

The mechanism by which vagal nerve stimulation (VNS) exerts an anticonvulsant effect in humans is unknown. This study used (99m)Tc-HMPAO single photon emission tomography (SPECT) to examine the effects of VNS on regional cerebral activity in thalamic and insular regions. Seven subjects with epilepsy who had been receiving vagal nerve stimulation for at least 6 months underwent SPECT scanning with simultaneous scalp electroencephalographic (EEG) recording. Subjects were studied in two states; during VNS activity and during a comparison condition of VNS inactivity. A region of interest analysis demonstrated that rapid cycling stimulation (7 seconds on, 12 seconds off) was associated with relatively decreased activity in left and right medial thalamic regions. No systematic stimulation-related changes were observed on visual or spectral analysis of EEG data. The thalamus is involved in modulation of ongoing cortical EEG activity in animals. Our results support the hypothesis that VNS may exert an antiepileptic action by an effect on thalamic activity.

Adult↗

Heightened intrathecal release of proinflammatory cytokines in Creutzfeldt-Jakob disease.

The authors report high intrathecal release of tumor necrosis factor alpha (TNF-alpha) and interleukin (IL)-1beta in five patients with sporadic or new-variant Creutzfeldt-Jakob disease (CJD) without activation of the humoral or lymphocytic immune responses. Increased release of TNF-alpha and IL-1beta was also detected in some patients with progressive dementias. CJD is associated with a local cerebral host response that involves the release of proinflammatory cytokines.

Creutzfeldt-Jakob Syndrome↗

The relation between bradykinesia and excitability of the motor cortex assessed using transcranial magnetic stimulation in normal and parkinsonian subjects.

The response of single motor units in the first dorsal interosseus (FDI) muscle to transcranial magnetic stimulation (TMS) of the motor cortex has been assessed using the post-stimulus time histogram during weak voluntary contraction in patients with parkinsonian symptoms and in age-matched, normal subjects. Patients and subjects were required to maintain the discharge of a motor unit at a steady rate during TMS. Responses were evident in post-stimulus time histograms of motor unit discharges as single or double peaks at mean (+/- S.E.) latencies of 23.4 msec (+/- 0.7) for normal subjects and 24.9 msec (+/- 0.9) for parkinsonian patients. There were no significant differences in latency or tendency to double peaks in the responses of motor units when normal subjects and parkinsonian patients were compared. The group data showed no significant difference between the threshold TMS for modulation of the discharge of single motor units in patients and normal subjects. However, 7 of the 15 parkinsonian patients, but only 1 of 15 normal subjects, had thresholds to TMS greater than or equal to 45% of the maximum output of the magnetic stimulator. Speed of movement was measured by 3 tasks: (1) timed stand/walk/sit, (2) timed peg-board test, (3) frequency of 2-point table taps. In the parkinsonian group there was a positive linear correlation between threshold to TMS and degree of bradykinesia for each individual score and the average score on the tests of speed of movement. This was not evident for the normal group. The results are discussed in the light of current views on the mode of action of TMS. The findings are consistent with the conclusion that parkinsonian patients exhibiting pronounced bradykinesia have a lowered excitability of the motor cortex.

Aged↗

Plasma exchange in the treatment of Refsum's disease (heredopathia atactica polyneuritiformis).

Five cases of heredopathia atactica polyneuritiformis (HAP--Refsum's disease) were treated by serial plasma exchanges. In all patients a reduction in calorie intake and body weight had been associated with a rise in plasma phytanic acid, followed by an exacerbation of the ataxia and neuropathy. Lowering the plasma phytanic acid by plasma exchange produced a rapid clinical improvement. The main indication for plasma exchange in HAP is a severe or rapidly worsening clinical condition. A lesser indication is failure of dietary management to reduce a high plasma phytanic acid level.

Adult↗

Central motor conduction studies in hereditary spastic paraplegia.

Central motor conduction (CMC) studies were carried out in 25 patients with hereditary spastic paraplegia (HSP). Responses evoked in the lower limbs by transcranial magnetic stimulation of the motor cortex were bilaterally absent in 33% of the patients and, when recordable, were delayed in 75% of cases. Responses in the upper limbs were mostly normal except for those from the five members of one family, which were considerably delayed. There was no correlation between CMC parameters and age, duration of disease or upper limb hyperreflexia. CMC time to the tibialis anterior correlated with disability in patients with juvenile-onset HSP. It is concluded that CMC studies are not useful in detecting subclinical lesions in hereditary spastic paraplegia but may be of value in identifying subgroups of the disease.

Adolescent↗

The Bereitschaftspotential is abnormal in Parkinson's disease.

The average Bereitschaftspotential (BP) preceding a rapid, self-paced voluntary extension movement of the index finger was recorded from 6 scalp locations in 14 patients with Parkinson's disease who had been withdrawn from their normal drug therapy for at least 12 h before testing. The amplitude of the potential was measured at the peak negativity (N1) and 650 ms prior to this (NS1), and compared with that recorded in a group of 12 age-matched control subjects. The N1 amplitude was the same as in the normals, but the NS1 component was smaller in the patients, especially in midline leads. As a result, the rise in the BP between the peak NS1 and N1 component (termed NS2) was larger in the patient group. The NS1 component of the BP is thought to reflect preparatory activity in the supplementary motor area (SMA) of cortex. Since the basal ganglia provide a major source of afferent input to SMA, the reduction in NS1 in the patients probably results from inadequate basal ganglia activation of SMA. The larger NS2 component may reflect extra activity in other brain areas to compensate for the reduced SMA activity.

Aged↗

Listeriosis and recurrent abortion in a renal transplant recipient.

A 29-year-old farmer's wife had received a kidney from her brother (of identical HLA type) at the age of 22 years. She was afterwards immunosuppressed with prednisolone and azathioprine. Her first pregnancy had been uneventful but the second and third had terminated spontaneously at 15 and 24 weeks gestation respectively. Following the third pregnancy, Listeria monocytogenes (serotype 4) was grown from the fetus, the placenta and maternal blood. Over the next 18 months, antibody titres which were assessed by an IgG indirect immunofluorescent antibody assay remained high. When the patient became pregnant for a fourth time, 9 months after her second abortion, 250 mg ampicillin were administered three times daily for the remaining duration of the pregnancy. A second child was successfully delivered by Caesarean section at 39 weeks' gestation.

Abortion, Septic↗

The coexistence of bradykinesia and chorea in Huntington's disease and its implications for theories of basal ganglia control of movement.

Investigation of motor function in a group of 17 patients with Huntington's disease reveals that, in addition to the chorea that many patients exhibit, defects in voluntary motor performance also are evident. Fast simple wrist flexion movements to 15 degrees or 60 degrees were slower, and individual movements showed greater variability than seen in normal subjects. This bradykinesia was most pronounced in those patients who were akinetic and rigid, but also was seen in those with chorea alone; bradykinesia was independent of the drug treatment that the patients were receiving (and was therefore not due to drug-induced parkinsonism). The electromyographic activity of the agonist muscles during such simple but slow movement differed from that seen in Parkinson's disease. The performance of complex movements revealed further deficits. Some patients were unable to combine two movements in a simultaneous or sequential movement task of squeezing the hand and flexing the elbow. Those who could perform these complex movements exhibited slowing of the velocity of the movement and prolongation of the interval between movements. These abnormalities were present in patients with chorea who were not taking neuroleptic drugs. It is argued that they represent an abnormality of motor programming of complex movements, over and above the defect in executing simple movements. The long latency stretch reflexes in wrist flexor muscles and flexor pollicis longus were reduced or absent, but this did not correlate with changes in motor performance, or with the reduced size of the early components of cortical sensory evoked potentials. Bradykinesia is thus shown to be an integral component of the motor disorder of Huntington's disease, in addition to the chorea. The coexistence of bradykinesia and chorea in this illness is compatible with current theories of the role of the basal ganglia in the control of movement.

Adult↗

Modulation of the long-latency reflex to stretch by the supplementary motor area in humans.

Surface-recorded, electromyographic responses to 200-ms ramp stretches were studied in the wrist flexor muscles from both arms of a patient with clinical and radiographic evidence of infarction in the right supplementary motor area (SMA). They were compared with those from 8 age-matched control subjects. The latencies of the spinal component of the stretch reflex were slightly longer than normal in both arms of the patient (normal subjects: 28.5 +/- 2.6 ms; patient: 35 ms, right arm and 32 ms left arm). However, the amplitude and duration of the short-latency response were identical in both arms. The onset of the long-latency response to stretch was symmetrical in both the patient's arms and was slightly later than normal (normal subjects 55.5 +/- 4.0 ms, patient: 72 ms right arm and 70 ms left arm); however, its duration was considerably prolonged in the arm contralateral to the SMA lesion (normal subjects: 44.8 +/- 6.0 ms; patient: 48 ms right arm. 105 ms left arm). These results are consistent with the hypothesis that the long-latency stretch reflex is mediated via a transcortical loop.

Adult↗

Different sites of action of electrical and magnetic stimulation of the human brain.

The latency of the surface recorded electromyographic response to either an electrical or magnetic stimulus applied to the scalp has been measured in the first dorsal interosseous and abductor pollicis brevis muscles of 3 subjects. In the contracting muscle the response latency to the magnetic stimulus was longer by 1.4-2.7 ms compared to the electrical stimulus. Poststimulus time histograms of the firing of single motor units of first dorsal interosseous muscle were studied in 4 subjects. The first period of increased probability of firing of the single motor units showed a similar latency difference (mean 2.8 ms) to the two modes of stimulation. It is concluded that the extra delay to magnetic stimulation is consumed in central motor pathways. This implies that the two modes of stimulation activate the brain at different sites. It is suggested that the magnetic stimulus excites the corticospinal neurones transynaptically, whereas the electrical stimulus excites these neurones directly.

Brain↗