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Dimethyl disulfide exerts insecticidal neurotoxicity through mitochondrial dysfunction and activation of insect K(ATP) channels.

The plant-derived insecticides have introduced a new concept in insecticide research. In response to insect attacks, some plants can release volatile sulfur compounds such as dimethyl disulfide (DMDS) in the atmosphere, which are lethal for the generalist insects. We demonstrate that DMDS induced an uncommon complex neurotoxic activity. The studies of in vivo toxicity of DMDS in three insect species and mice indicated a highest bioactivity for insects. Although DMDS did not alter the electrophysiological properties of the cockroach Periplaneta americana giant axon, it affected the synaptic transmission at the presynaptic level resulting in an inhibition of the neurotransmitter release. Whole cell patch-clamp experiments performed on cockroach cultured dorsal unpaired median (DUM) neurons revealed a dose-dependent hyperpolarization induced by DMDS associated with a decrease in the input resistance and the disappearance of action potentials. The hyperpolarization was inhibited by glibenclamide and tolbutamide, and was dependent on intracellular ATP concentration, demonstrating a neurotoxicity via the activation of KATP channels. Finally, the same effects observed with oligomycin, 2,4-dinitrophenol, and KCN together with the studies of DMDS toxicity on isolated mitochondria confirmed an unusual action occurring through an inhibition of the mitochondrial respiratory chain complex IV (cytochrome oxydase). This DMDS-induced inhibition of complex IV subsequently decreased the intracellular ATP concentration, which thereby activated neuronal KATP channels mediating membrane hyperpolarization and reduction of neuronal activity.

Action Potentials↗

Reduced dorsal hippocampal glutamate release significantly correlates with the spatial memory deficits produced by benzodiazepines and ethanol.

Memory deficits frequently occur after taking benzodiazepines and ethanol. We studied in vivo hippocampal presynaptic glutamate transmission in conjunction with memory deficits induced by benzodiazepines and ethanol in rats as an animal model of amnesia. These drugs potently impaired spatial memory formation as evaluated by the Morris water maze task, the rank order among tested treatments being the combination of triazolam (20 micrograms/kg) with ethanol (2 g/kg) > or = triazolam (100 micrograms/kg) > ethanol (2 g/kg) > or = triazolam (20 micrograms/kg) > rilmazafone (20 micrograms/kg). On the other hand, these drug treatments also reduced glutamate release in the dorsal hippocampus but not in the cerebellum measured by microdialysis: the combined administration of triazolam with ethanol potently inhibited glutamate release to 60% of basal output in the dorsal hippocampus. These decreases in hippocampal glutamate transmission closely correlated with the extent of impairment of spatial memory performance (r = 0.990). Thus, the present results strongly indicated that presynaptic dysfunction in dorsal hippocampal glutamatergic neurons would be critical for spatial memory deficits induced by benzodiazepines and ethanol.

Animals↗

Evaluation of substance P as a neurotransmitter in equine jejunum.

OBJECTIVE: To determine whether substance P (SP) functions as a neurotransmitter in equine jejunum. SAMPLE POPULATION: Samples of jejunum obtained from horses that did not have lesions in the gastrointestinal tract. PROCEDURE: Jejunal smooth muscle strips, oriented in the plane of the circular or longitudinal muscle, were suspended isometrically in muscle baths. Neurotransmitter release was induced by electrical field stimulation (EFS) delivered at 2 intensities (30 and 70 V) and various frequencies on muscle strips that were maintained at low tension or were under contraction. A neurokinin-1 receptor blocker (CP-96,345) was added to baths prior to EFS to interrupt SP neurotransmission. Additionally, direct effects of SP on muscle strips were evaluated, and SP-like immunoreactivity was localized in intestinal tissues, using indirect immunofluorescence testing. RESULTS: Substance P contracted circularly and longitudinally oriented muscle strips. Prior treatment with CP-96,345 altered muscle responses to SP and EFS, suggesting that SP was released from depolarized myenteric neurons. Depending on orientation of muscle strips and stimulation variables used, CP-96,345 increased or decreased the contractile response to EFS. Substance P-like immunoreactivity was detected in the myenteric plexus and circular muscle layers. CONCLUSIONS AND CLINICAL RELEVANCE: Substance P appears to function as a neurotransmitter in equine jejunum. It apparently modulates smooth muscle contractility, depending on preexisting conditions. Effects of SP may be altered in some forms of intestinal dysfunction. Altering SP neurotransmission in the jejunum may provide a therapeutic option for motility disorders of horses that are unresponsive to adrenergic and cholinergic drugs.

Animals↗

Testing of the refractory period in sensory nerve fibres is the most sensitive method to assess beginning polyneuropathy in diabetics.

INTRODUCTION: In patients with diabetes mellitus (DM) without any clinical signs of polyneuropathy neurophysiological examinations intend to find early involvement of peripheral nerves. Conventionally, nerve conduction velocity (NCV) measurements of sensory nerves are performed. The purpose of this study is to investigate wether refractory period measurements may be more sensitive. METHODS: We compared 30 IDDM/NIDDM diabetics without clinical signs of neuropathy (25 male, 5 female, age 45-73 years, mean 64.3 years) with age-matched controls. Sensible nerve conduction velocity (NCV) of radialis and suralis nerves were performed at 37 degrees C as well as double stimulations. The interstimulus interval were decreased stepwise by 0.2 ms beginning with 4.6 ms to determine the end of the relative refractory period. RESULTS: Statistically significant differences of NCV and refractory period were found. The most profound differences between diabetics and normals were seen in refractory period of n. suralis. Regarding the 95% percentile as cut-off value of the normal range, pathological NCV of N. suralis were found in 4 patients. Pathological refractory period, however, were found in 9 patients. CONCLUSION: Refractory period measurements of N. suralis are more sensitive than conventional NCV assessment in detection of beginning dysfunction in peripheral nerves of patients with diabetes mellitus without clinical signs of polyneuropathy.

Adult↗

[The importance of interneurons in schizophrenic and affective disorders].

In brains of patients with schizophrenic and affective disorders pathomorphological changes have been shown focussing in frontal and temporal cortex. The volume reduction in prefrontal cortex of schizophrenic patients is hypothesized to be based on a reduction of neuropil. A decrease of synaptic proteins and a decrease of dendritic spines of pyramidal cells can additionally be the origin of disconnections of neurons. Affection of the glutamatergic, GABA-ergic and dopaminergic system and reduction of interneurons could be the correlate of a deficient neuronal network which might be combined with exogen factors generate psychotic symptoms. Reelin and associated proteins are candidate molecules. Their dysregulation might explain essential features of the dysfunctional network of schizophrenia.

Brain↗

Inhibition of glutamate uptake in the spinal cord induces hyperalgesia and increased responses of spinal dorsal horn neurons to peripheral afferent stimulation.

Glutamate is a primary excitatory neurotransmitter in the mammalian CNS. Glutamate released from presynaptic neurons is cleared from the synaptic cleft passively by diffusion and actively by glutamate transporters. In this study, the role of glutamate transporters in sensory processing in the spinal cord has been investigated in behavioral, in vivo and in vitro experiments. Intrathecal application of a non-selective glutamate transport inhibitor, L-trans-pyrrolidine-2,4-dicarboxylic acid (10 microl of 100 microM solution) induced hypersensitivity to peripheral mechanical and thermal stimuli. Topical application of L-trans-pyrrolidine-2,4-dicarboxylic acid (100 microM) onto the dorsal surface of the L3-L6 spinal cord increased spontaneous activities, innocuous and noxious stimulus-evoked responses and after-discharges of wide dynamic range neurons in the L4-5 spinal segments. Whole cell recordings made from superficial dorsal horn neurons in an isolated whole spinal cord from newborn rats (2-3 weeks old) revealed that bath-applied L-trans-pyrrolidine-2,4-dicarboxylic acid (100 microM) produced partial membrane depolarization, increased spontaneous action potentials with decreased neuronal membrane resistance and time constant, but without significant changes of capacitance. Finally, the amplitude and duration of primary afferent evoked-excitatory postsynaptic currents recorded from neurons in the substantia gelatinosa in the spinal slices from young adult rats (6-8 weeks old) were increased in the presence of L-trans-pyrrolidine-2,4-dicarboxylic acid (100 microM). This study indicates that glutamate transporters regulate baseline excitability and responses of dorsal horn neurons to peripheral stimulation, and suggests that dysfunction of glutamate transporters may contribute to certain types of pathological pain.

Action Potentials↗

Impaired behavioral suppression by light in metabotropic glutamate receptor subtype 6-deficient mice.

The metabotropic glutamate receptor subtype 6 is localized on the dendrites of ON bipolar cells in mammalian retina, and is responsible for synaptic transmission from photoreceptors to ON bipolar cells. We have previously provided electrophysiological evidence that metabotropic glutmate receptor subtype 6-deficient mice have an impairment in the ON visual pathway. In this study, we compared, between metabotropic glutamate receptor subtype 6-deficient (n=9) and wild-type mice (n=7), their daily wheel-running activity in constant dark and light-dark cycle environments. There was no difference in their free-running rhythmicity in a constant dark environment nor in their ability to entrain their active/rest phase to the phase-shifted light-dark cycle environment, indicating that the circadian system in mutant mice was functioning normally. However, the wheel-running activity was suppressed immediately after light onset of the light-dark cycle in wild-type mice (suppressive effect), whereas that of mutant mice was prolonged for several hours in spite of light onset (very weak suppressive effect). The suppression of activity in wild-type mice is a "masking effect" of the endogenous circadian rhythm in response to light stimuli. The results indicate that the failure of mutant mice to suppress their activity upon light onset is not due to abnormality in their circadian system, but to their lack of response to light stimuli. This study clearly demonstrates that the dysfunction of the ON visual pathway in metabotropic glutamate receptor subtype 6-deficient mice impairs their behavioral responsiveness to light and yet preserves their circadian system.

Animals↗

The Pulfrich stereo-illusion as an index of optic nerve dysfunction.

A simple test based on the Pulfrich phenomenon may provide an indication of optic nerve dysfunction. When a small object swinging pendulum fashion is viewed binocularly by a person with one eye covered by a neutral density filter, the object appears to swing in an elliptical path. The patient with optic nerve dysfunction may see it this way without use of a filter. The Pulfrich theory is explained, clinical applications are discussed, and instructions for constructing a Pulfrich apparatus are given.

Evoked Potentials↗

Virus-induced neurobehavioral disorders: mechanisms and implications.

One hypothesis for the etiology of neuropsychiatric disorders proposes that viral infection contributes to the induction of neuronal system dysfunction, resulting in a wide range of behavioral abnormalities. Recent research in molecular biology supports this hypothesis and refocuses on the role of viral infection in the development of psychiatric disorders. Viral infection can induce deleterious effects in the central nervous system by direct and/or indirect pathways. Understanding the mechanisms of glial cell dysfunction caused by persistent viral infection should lead to novel insights into the development of neurobehavioral disorders, including human mental illnesses, and to the possible development of treatments.

Animals↗

Inadequate cortical feature maps: a neural circuit theory of autism.

The autistic syndromes are caused by neurological dysfunctions. The capacity of autistic individuals to form representations of previous sensory impressions, useful for the processing of present information, is impaired. Self-organizing feature maps are mathematical models of cortical feature maps and may be used to simulate cortical processing. Dysfunctional self-organization, resulting in disability to extract features from stimuli, is proposed as a neural circuit theory of autism. The nature and a possible cause of dysfunction self-organization are examined. It is shown that impaired feature detection is valid for explaining the memory function in autism, the lack of drive for central coherence according to Frith's theory of autism, and a number of impairments from the diagnostic criteria. Unequal levels of impairment of different cortical feature maps can account for the typically uneven intelligence profile of autistic individuals. Excessive inhibitory lateral feedback synaptic connection strengths are presented as one factor impairing the development of feature maps. Strong or excessive inhibitory lateral feedback synaptic connection strengths also cause high sensory discrimination and abnormal sensory responses, both documented in autism. A neural circuit theory for autism has been presented. For a proof of this neural circuit theory neurological investigations are required.

Autistic Disorder↗

Assessment of autonomic function in myotonic dystrophy.

Published reports suggested autonomic nervous system dysfunction in myotonic dystrophy but were inconclusive partly due to small patient numbers and because only a limited number of tests was used. Autonomic nervous system function with noninvasive tests was assessed in ten myotonic dystrophy patients and age and sex matched healthy controls. Statistically significant differences included reduction in the heart rate response to standing and in the blood pressure response to sustained handgrip. Latency of the pupillary light reflex was not different from controls but the time to reach peak velocity of contraction was significantly longer in the myotonic dystrophy group. It is argued that these results reflect dysfunction of voluntary and iris smooth muscle rather than autonomic nervous system dysfunction.

Adult↗

An analysis of VEP components in optic neuritis.

Various VEP parameters were analysed in 126 patients with multiple sclerosis, isolated optic neuritis or isolated myelopathy. The single most common deviation in eyes with clinical evidence of optic neuritis was a prolongation of the latency to P100. After the findings concerning P100 and N70 were combined two patterns of abnormalities emerged: 1) delayed P100 and delayed N70, 2) delayed P100 and absence of N70. In a few cases only one of the potentials was affected. Also in eyes without clinical evidence of optic neuritis the same patterns occurred but discrepancies between N70 and P100 were more common, especially the combination of normal P100 and delayed or absent N70. In about half of these cases the latency to P100 was close to the upper normal limit. It is concluded that in such cases the additional findings of an absent or delayed N70 is strongly suggestive of visual system dysfunction and that the inclusion of N70 in the analysis of VEP may increase the diagnostic yield of the examination.

Adult↗

Correlation between a patient-derived functional questionnaire and abnormal neuromuscular transmission in Myasthenia Gravis patients.

OBJECTIVE: To correlate the patient-derived physical function score, as measured by the disease specific Myasthenia Gravis Questionnaire (MGQ), and the score obtained with commonly used generic 36-item questionnaire, the Short-Form health survey (SF-36), with the degree of abnormal neuromuscular transmission measured by Single-Fibre EMG (SFEMG) and repetitive nerve stimulation (RNS) in Myasthenia Gravis (MG) patients. METHODS: SFEMG and RNS were performed in the deltoid muscle and SFEMG was also performed in the orbicularis oculi muscle in 45 MG patients. The patients were asked to fill out the MGQ, which has been translated and validated into Swedish, and the SF-36. The sum of MGQ items generates a global MGQ score. Items are also divided into 3 muscle specific domains: generalized, bulbar and ocular. RESULTS: The global MGQ score and generalized domain score of MGQ were strongly correlated with the degree of abnormal neuromuscular transmission, as measured by SFEMG in the deltoid muscle. Scores from ocular and bulbar domains of MGQ were not related to neurophysiological findings. Physical composite scores of SF-36 correlated significantly with the abnormal SFEMG findings in the deltoid. CONCLUSIONS: The degree of disturbed neuromuscular transmission in a proximal limb muscle correlates with a patient's subjective experience of generalized myasthenic dysfunction. SIGNIFICANCE: The observed correlation adds a new dimension to neurophysiological examinations in patients with MG.

Adult↗

The periaqueductal grey matter modulates trigeminovascular input: a role in migraine?

The periaqueductal grey (PAG) region of the brainstem is a known modulator of somatic pain transmission. Migraine is likely to be due to episodic brain dysfunction in pathways involved in the control of pain and other sensory modalities, such as light and sound. To investigate the influence of the PAG on pain transmission from intracranial structures, we examined spinal trigeminal neuronal activity in response to PAG stimulation in a model of trigeminovascular nociception in the cat. Evoked trigeminal neuronal activity in the spinal cord was reversibly inhibited by stimulation of the PAG. The effect was robust with a mean reduction in evoked activity of -61+/-21%. This effect could be seen both ipsilateral and contralateral to the side of PAG stimulation and was well localised to the ventrolateral PAG. These data demonstrate that a role of the PAG is to inhibit afferent trigeminal nociceptive traffic. Considered with neurosurgical and human functional imaging studies, these data support the notion that brainstem dysfunction might lead to disinhibition of trigeminal afferents and be important in the pain process of migraines.

Action Potentials↗

Hemispheric function in disorganized type schizophrenia: performance on the quality extinction test.

We assessed hemisphere function in right-handed male chronic, disorganized type schizophrenic patients (N = 60, age range 18-45 years) using the Quality Extinction Test (QET), in comparison to 20 right-handed male healthy controls in the same age range. The QET analysis discriminated between the disorganized schizophrenic patients and the controls. QET results indicated that chronic schizophrenic patients were less sensitive to tactile stimuli in both hands as compared to controls. Furthermore, the sensitivity to tactile stimuli of the left hand was less than that of the right hand in the schizophrenic patients. In contrast, in the normal controls the sensitivity was similar in both hands. These results indicate possible right hemisphere dysfunction together with disturbance in interhemispheric transmission through the corpus callosum in chronic, disorganized type schizophrenic patients.

Adolescent↗

Calcium homeostasis following traumatic neuronal injury.

Cell death and dysfunction following traumatic brain injury (TBI) consists of a primary phase, which causes immediate consequences to cells by direct mechanical disruption of the brain, and a secondary phase which consists of delayed events initiated at the time of insult. One of the major culprits that contributes to delayed neuronal damage and death after a traumatic insult is the calcium ion. The original calcium hypothesis suggests that a large, sustained influx of calcium into cells initiates cell death signalling cascades. While much of this original tenant remains true, recent findings suggest that the role of calcium in traumatic neuronal injury may be more complex. For example, a sustained level of intracellular free calcium is not necessarily lethal, but the specific route of calcium entry may couple calcium directly to cell death pathways. Other sources of calcium, such as intracellular calcium stores, can also cause cell damage. In addition, calcium-mediated signal transduction pathways have been found to be altered following injury. These alterations are sustained for several hours and may contribute to dysfunction in neurons that do not necessarily die after a traumatic episode. This review provides an overview of experimental evidence that has led to our current understanding of the role of calcium in neuronal death and dysfunction after TBI. While the focus is on alterations in neuronal calcium homeostasis following mechanical injury, these findings may have implications for other pathological states of the brain, such as ischaemia and neurodegenerative disease.

Animals↗

Time- and dose-dependent changes in neuronal activity produced by X radiation in brain slices.

A new method of exposing tissues to X rays in a lead Faraday cage has made it possible to examine directly radiation damage to isolated neuronal tissue. Thin slices of hippocampus from brains of euthanized guinea pigs were exposed to 17.4 ke V X radiation. Electrophysiological recordings were made before, during, and after exposure to doses between 5 and 65 Gy at a dose rate of 1.54 Gy/min. Following exposure to doses of 40 Gy and greater, the synaptic potential was enhanced, reaching a steady level soon after exposure. The ability of the synaptic potential to generate a spike was reduced and damage progressed after termination of the radiation exposure. Recovery was not observed following termination of exposure. These results demonstrate that an isolated neuronal network can show complex changes in electrophysiological properties following moderate doses of ionizing radiation. An investigation of radiation damage directly to neurons in vitro will contribute to the understanding of the underlying mechanisms of radiation-induced nervous system dysfunction.

Action Potentials↗

Aniracetam enhances glutamatergic transmission in the prefrontal cortex of stroke-prone spontaneously hypertensive rats.

The effects of aniracetam, a cognition enhancer, on extracellular levels of glutamate (Glu), gamma-aminobutyric acid (GABA) and nitric oxide metabolites (NOx) were examined in the prefrontal cortex (PFC) and the basolateral amygdala (AMG) in stroke-prone spontaneously hypertensive rats (SHRSP) using in vivo microdialysis. Basal release of Glu, was lower in the AMG of SHRSP than in normotensive Wistar Kyoto rats, whereas no difference in GABA and NOx was noted. Aniracetam (100 mg/kg, p.o.) significantly increased the area under the curve of Glu levels in the PFC, but not in the AMG, of SHRSP. Aniracetam failed to exert any remarkable effects on GABA or NOx levels in either brain region. Our findings suggest that aniracetam enhances cortical glutamatergic release, which may be the mechanism involved in the ameliorating effects of aniracetam on various neuronal dysfunctions.

Amino Acids↗