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Impaired renal sensory responses after unilateral ureteral obstruction in the rat.

Renal responses to the activation of renal sensory receptors were examined in rats after release of 24-h unilateral ureteral obstruction of the left kidney. The integrity of the renorenal reflex was examined in both 24-h unilateral ureteral obstruction-treated (UUO) and sham-operated (Sham) rats. Increased ipsilateral afferent renal nerve activity (ARNA) and reflexly decreased efferent renal nerve activity (ERNA) and increased contralateral diuresis and natriuresis produced by increasing the left intrapelvic pressure were observed in Sham rats but not in UUO rats. The lack of responsiveness of the renorenal reflex in UUO rats was associated with lower release of substance P (SP) and increased neutral endopeptidase (NEP) activity in the renal pelvis in the postobstructive kidney. Compared with Sham rats, urine and sodium excretion after acute saline loading was significantly reduced in the postobstructive kidney. The blunted excretory responses were accompanied by lower activation of ARNA and less reflex inhibition of ERNA. Renal sensory dysfunction in the postobstructive kidney was further examined by stimulation of renal mechanoreceptors and chemoreceptors. Graded increases in intrapelvic pressure or renal pelvic perfusion with hypertonic saline solution elicited, respectively, a pressure- or concentration-dependent increase in ARNA in the control kidney of Sham rats, this response being greatly attenuated in the postobstructive kidney. Western blots showed no quantitative difference in the expression of renal pelvic neurokinin 1 (NK-1) receptors between the two groups. It was concluded that renal sensory function is impaired in the postobstructive kidney of UUO rats and that this defective activation of renal sensory receptors results in an impaired renorenal reflex, which is associated with enhanced NEP activity and catabolism of SP released in the renal pelvis and is not related to the expression of NK-1 receptor protein.

Afferent Pathways↗

Sensory dysfunction in the great toe in hallux valgus.

Injury to the dorsomedial cutaneous nerve in the foot may occur after operations for hallux valgus. Pressure neuropathy before operation is also described but remains largely unexplored. We have investigated the incidence of sensory deficit in the great toe before operating for hallux valgus and examined to what extent any deficit was related to the degree of angulation of the joint. Forty-three patients with a total of 61 great toes with hallux valgus presenting for consideration of surgical correction had their sensation tested in pre-designated zones using a five-filament set of Semmes-Weinstein monofilaments. These allowed good inter-observer reliability with an intra-class correlation coefficient of 0.84. Sensory symptoms were noted by only 21% of the patients, a measurable reduction in sensation by one monofilament grade or more was found in an additional 44%. No relationship was found between the degree of sensory loss and the degree of angulation. Patients with symptomatic hallux valgus may have sensory loss in the toe without being aware of it. Normal subjective sensation does not reliably predict normal sensory function. Given the potentially high rates of nerve damage following operations for hallux valgus, we recommend objective sensory testing as part of routine assessment before surgery.

Adult↗

New screening device for assessment of peripheral neuropathy.

Screening for the onset of toxic and entrapment neuropathy is a major concern in occupational medicine today. Current perception thresholds may be used as a measure of the integrity of the peripheral nervous system. A new transcutaneous nerve stimulator was used to evaluate current perception thresholds in 54 normal persons and 33 diabetic subjects. Current perception thresholds in the normal volunteers with no evidence of peripheral neuropathy were found to vary significantly with the frequency and location of the stimulation, as well as age. The test identified the diabetic peripheral neuropathy with an overall sensitivity of 94%. This new diagnostic technique is quick, simple to perform, noninvasive and nonaversive and provides a sensitive quantitative measure of sensory function. This diagnostic stimulator will be useful for screening occupationally related toxic and entrapment neuropathies in which sensory impairment is an early finding.

Adult↗

Cutaneous and auditory function in rats following methyl mercury poisoning.

Rats were given a total dose of 50 mg/kg (Exp. 1), 13.3 or 40 mg/kg (Exp. 2), or 40 mg/kg (Exp. 3) of methyl mercury chloride subcutaneously over a course of 5 days. At varying times after the toxic exposure, up to 1 year, their sensory functioning was assessed by reflex modulation methods: stimuli of interest were presented just before an intense tone which elicited the startle reflex, and stimulus reception was measured by the inhibitory control of the stimuli over the amplitude of the reflex. In Experiment 1 cutaneous prestimuli (electric shock to the tail) and brief acoustic transients (silent periods in noise) were less effective inhibitors of reflex activity in poisoned animals, compared to controls, indicating that the poisoned animals had impairments in cutaneous sensitivity and audition. In Experiment 2 the time course of sensory loss and subsequent recovery was studied. Impaired auditory function was shown further by a deficit in the effectiveness of weak noise pulses, and, in addition, the cutaneous deficit for weak tail shocks was accompanied by an exaggerated or hyperpathic response to more intense tail shocks. Experiment 3 confirmed the finding that the loss of sensitivity to weak shock was accompanied by an enhancement of the response to more intense shock. These data were related to peripheral neuropathy and shown to be analogous to certain clinical symptoms of Minamata disease reported in humans.

Acoustic Stimulation↗

Assessing sensory involvement in lower limb nerve lesions using somatosensory evoked potential techniques.

Somatosensory evoked potential (SEP) investigations in 18 patients with lower limb lesions are summarized. Seven patients had problems involving the lateral femoral cutaneous nerve, four the femoral nerve, and seven the sciatic nerve. All lesions were unilateral. SEP techniques were accurate in meralgia paresthetica, and all five patients with demonstrable SEP abnormalities were successfully treated surgically. Delayed recovery of sensory function was shown in two patients with femoral nerve lesions and two patients with sciatic nerve lesions. In patients with sensory symptoms, only an SEP abnormality confined to the nerve distribution provides evidence of a lesion in the sensory pathways and helps to exclude psychologic causes. In a case of peripheral nerve Schwannoma, the presence of a small delay in a case of peripheral SEP supported the preoperative assessment that the tumor was not intrinsic in nature, and this was confirmed at surgery and on subsequent full recovery. The SEP technique allows quantitative assessment of sensory nerve conduction through the peripheral neuron and centripetal pathways.

Adolescent↗

Motor cortex localization using functional MRI and transcranial magnetic stimulation.

OBJECTIVE: Congenital brain lesions producing focal seizures may be accompanied by reorganization of the areas responsible for motor and sensory functions within the brain due to a phenomenon that has been termed "neuronal plasticity." This can be studied using functional MRI (fMRI) and transcranial magnetic stimulation (TMS). Using either method, the motor cortex can be localized noninvasively, but to date there have been few studies correlating the level of agreement between the two techniques. METHODS: We used fMRI and TMS to localize the motor cortex in a young woman with intractable focal seizures, congenital left arm weakness, and a dysplastic right hemisphere on MRI. RESULTS: There was excellent agreement in the localization of motor representation for each hand. Both were predominantly located in the left hemisphere. fMRI also showed an area of posterior activation in the right hemisphere, but there was no evidence of descending corticospinal projections from this site using TMS, direct cortical stimulation, and Wada testing. CONCLUSIONS: Functional MRI (fMRI) and transcranial magnetic stimulation (TMS) were successfully used to localize cortical motor function before epilepsy surgery. Each technique demonstrated migration of motor function for the left hand to the left motor cortex. After resection of the dysplastic right precentral gyrus there was no permanent increase in weakness or disability. The two techniques are complementary; fMRI indicates all cortical areas activated by the motor task, whereas TMS identifies only those areas giving rise to corticospinal projections.

Adult↗

Neurologic and histologic evaluation of almitrine+raubasine (Duxil) in middle cerebral artery occlusion in cats.

Impairment of energy metabolism is the fundamental mechanism leading to cell death in ischemia. Using the middle cerebral artery (MCA) occlusion model in cats, we studied the effect of Duxil (almitrine and raubasine combination), which was given either before and after or only after MCA occlusion, on ischemia in terms of neurological function and histological changes. Neurological function was assessed consecutively for 7 days after MCA occlusion using a categorical rating scale in 18 cats. Neurological function was significantly improved in treated animals than in non-treated controls regarding to the motor and sensory function, walking, posture and stepping reflex. Animals were killed on the 8th day and histological changes were examined by light and electron microscopies. Significant improvement in the morphological scores based on the light-microscopy changes were found in animals treated with Duxil compared to non-treated ones. Under the electron microscopy, the protective effects of Duxil were characterized by retaining glycogen and mitochondria. Morphological improvement was associated with the recovery of neurological function and especially profound in penumbra areas of MCA infarction. These results suggest that Duxil has a protective effect against ischemic damage induced by occlusion of MCA in cats.

Almitrine↗

Projections from brain stem nuclei to the spinal trigeminal nucleus in the cat.

Afferent projections to the trigeminal nucleus oralis and caudalis from the brain stem have been investigated by the use of retrograde transport of horseradish peroxidase in the cat. Both n. oralis and n. caudalis receive a projection from nucleus raphe magnus but not from other raphe nuclei in the medulla or pons. N. oralis and n. caudalis receive a bilateral projection from n. paragigantocellularis lateralis. N. oralis receives a projection from n. reticularis gigantocellularis and n. reticularis parvocellularis but not from n. reticularis magnocellularis. N. caudalis receives only sparse projections from n. reticularis gigantocellularis, n. reticularis parvocellularis and n. reticularis magnocellularis but receives an input from a layer of cells over the pyramids in the rostral medulla, here named n. paramagnocellularis ventralis. The study also revealed the presence of ascending and descending interconnections between n. oralis and n. caudalis, as well as contralateral trigeminal interconnections. Projections from the medial vestibular nuclei, n. praepositus hypoglossi and the facial nucleus to the spinal trigeminal nucleus were also noted. Since the spinal trigeminal nucleus has only sensory functions, the results indicate the source of projections, mainly from raphe and reticular nuclei, which are involved in sensory control in the trigeminal system.

Afferent Pathways↗

Effect of acute hypoxic preconditioning on qEEG and functional recovery after cardiac arrest in rats.

Acute hypoxic preconditioning (AHPC) can confer neuroprotection from global cerebral ischemia such as cardiac arrest. We hypothesize that acute neuroprotection by AHPC will be detected early by quantitative EEG (qEEG) entropy analysis after asphyxial cardiac arrest (aCA). Cerebral ischemia lowers EEG signal randomness leading to low entropy. A qEEG entropy index defined as the duration when the entropy measure is 15% below uninjured baseline entropy is used as a measure of injury. We compared 3 groups of adult Wistar rats: (1) untreated controls that were subjected to 5 min of aCA and were resuscitated (n = 5); (2) AHPC-treated group with 10% FI O2 for 30 min, then 25 min of room air, 5 min of aCA followed by resuscitation (n = 5); and (3) a surgical sham group (no aCA) (n = 3). Functional outcome was assessed by neurodeficit score (NDS) which consisted of level of consciousness, cranial nerve, motor-sensory function, and simple behavioral tests (best = 100 and brain dead = 0). We found that increasing entropy index of injury at 0-5 h from return of spontaneous circulation (ROSC) is associated with worsening NDS at 24 h (linear regression: r = 0.81, P < 0.001). The NDS of the group sham (84.7 +/- 2.8) (mean +/- SEM) and AHPC group (84.6 +/- 2.9, P > 0.05) was better than control injury group (52.2 +/- 8.4, P < 0.05) (ANOVA with Tukey test). We therefore conclude that AHPC confers acute neuroprotection at 24 h, which was detected by qEEG entropy during the first 5 h after injury.

Analysis of Variance↗

Differential composition of 5-hydroxytryptamine3 receptors synthesized in the rat CNS and peripheral nervous system.

The type 3 serotonin (5-HT3) receptor is the only ligand-gated ion channel receptor for serotonin in vertebrates. Two 5-HT3 receptor subunits have been cloned, subunit A (5-HT3A) and subunit B (5-HT3B). We used in situ hybridization histochemistry and reverse transcriptase-PCR amplification to demonstrate that 5-HT3A subunit transcripts are expressed in central and peripheral neurons. In contrast, 5-HT3B subunit transcripts are restricted to peripheral neurons. Thus, the prevalent form of 5-HT3 receptor synthesized within the CNS lacks the 5-HT3B subunit. Because coexpression of 5-HT3A and 5-HT3B subunits produces heteromeric 5-HT3A/3B receptors with properties that differ from those of 5-HT3A homomeric receptors, we investigated possible coexpression of both subunits at the cellular level. We found that near to 90% of all 5-HT3B expressing neurons coexpress the 5-HT3A subunit in superior cervical and nodose ganglia (NG). In addition, there is a cellular population that expresses only the 5-HT3A subunit. Therefore, peripheral neurons have the capacity to synthesize two different 5-HT3 receptors, 5-HT3A+/3B- and 5-HT3A+/3B+ receptors. We also determined that neurons of NG projecting to the nucleus tractus solitarium and those of dorsal root ganglia projecting to superficial layers of the spinal cord express 5-HT3A or 5-HT3A/3B subunits. Thus, presynaptic 5-HT3 receptors containing the 5-HT3B subunit might be present in these target brain areas. The compartmentalized structural composition of the 5-HT3 receptor may be the basis of functional diversity within this receptor. This raises the possibility that 5-HT3 receptors participating in sympathetic, parasympathetic and sensory functions may be functionally different from those involved in cognition and emotional behavior.

Animals↗

Root avulsion in brachial plexus injury: a case report.

Root avulsions in brachial plexus injuries are classified as pre- or infraganglionic or post- or supraganglionic. Motor and sensory function is lost in both lesions, but the dorsal root ganglion is intact in preganglionic injuries and, therefore, sensory nerve conduction is spared. Although classified as root avulsion lesions, they are not only anatomically but physiologically and in being amenable to surgical treatment, quite different. We describe a patient with preganglionic injury who had a normal sensory nerve conduction. Surgical option was not available to this patient because of the proximity of the avulsed roots to the spinal cord.

Adolescent↗

Improving axonal growth and functional recovery after experimental spinal cord injury by neutralizing myelin associated inhibitors.

Injuries of the spinal cord often result in an irretrievable loss of motor and sensory functions of all body parts situated below the lesion site. Functional recovery is restricted mainly due to the limited regeneration and plasticity of injured axons in the adult central nervous system. Over the last few years different experimental approaches have led to axonal growth and functional benefits in animal models. This review focuses on the effects of the neutralization of myelin-associated neurite growth inhibitors, in particular Nogo-A, using the monoclonal antibody IN-1. Acute mAb IN-1 treatment of adult CNS lesioned rats results in extensive plastic changes of neuronal connections and regenerative fiber growth. In two different lesion paradigms (i.e. pyramidal tract lesion and incomplete spinal cord lesion in adult rats), the mAb IN-1-treated animals always showed a higher degree of recovery in various behavioral tests. These observations, together with electrophysiological results, suggest that neuronal CNS circuits of mAb IN-1-treated animals can be rearranged, and that sprouting and regenerating axons form functionally meaningful connections.

Animals↗

Postural control in elderly subjects.

The postural stability of 23 subjects aged 85 years or over was studied with a force platform. The sensory function of the lower limbs was disturbed with small vibrators placed on both calf muscles and/or by placing the subjects on a platform covered with foam plastic. When compared with a group (n = 100) of 50-60-year-old subjects, the elderly subjects had significantly higher sway velocities even during nonperturbed conditions. The perturbation of muscle spindles with vibration and/or pressoreceptor function with foam plastic did not increase the postural instability of the elderly subjects. Visual deprivation had a significant effect on postural stability, and the visual influx contributed about 50% of the postural stability. Postural control is reduced as a result of loss of sensory cues of pressoreceptors and also deterioration in function of stretch reflexes initiated from muscle spindles. The very elderly seem to rely on visual control of posture; this is slow, which can be one reason for susceptibility to falls.

Age Factors↗

Filopodia formation in the absence of functional WAVE- and Arp2/3-complexes.

Cell migration is initiated by plasma membrane protrusions, in the form of lamellipodia and filopodia. The latter rod-like projections may exert sensory functions and are found in organisms as distant in evolution as mammals and amoeba such as Dictyostelium discoideum. In mammals, lamellipodia protrusion downstream of the small GTPase Rac1 requires a multimeric protein assembly, the WAVE-complex, which activates Arp2/3-mediated actin filament nucleation and actin network assembly. A current model of filopodia formation postulates that these structures arise from a dendritic network of lamellipodial actin filaments by selective elongation and bundling. Here, we have analyzed filopodia formation in mammalian cells abrogated in expression of essential components of the lamellipodial actin polymerization machinery. Cells depleted of the WAVE-complex component Nck-associated protein 1 (Nap1), and, in consequence, of lamellipodia, exhibited normal filopodia protrusion. Likewise, the Arp2/3-complex, which is essential for lamellipodia protrusion, is dispensable for filopodia formation. Moreover, genetic disruption of nap1 or the WAVE-orthologue suppressor of cAMP receptor (scar) in Dictyostelium was also ineffective in preventing filopodia protrusion. These data suggest that the molecular mechanism of filopodia formation is conserved throughout evolution from Dictyostelium to mammals and show that lamellipodia and filopodia formation are functionally separable.

Actin-Related Protein 2-3 Complex↗

Sensorimotor integration in movement disorders.

Although current knowledge attributes movement disorders to a dysfunction of the basal ganglia-motor cortex circuits, abnormalities in the peripheral afferent inputs or in their central processing may interfere with motor program execution. We review the abnormalities of sensorimotor integration described in the various types of movement disorders. Several observations, including those of parkinsonian patients' excessive reliance on ongoing visual information during movement tasks, suggest that proprioception is defective in Parkinson's disease (PD). The disturbance of proprioceptive regulation, possibly related to the occurrence of abnormal muscle-stretch reflexes, might be important for generating hypometric or bradykinetic movements. Studies with somatosensory evoked potentials (SEPs), prepulse inhibition, and event-related potentials support the hypothesis of central abnormalities of sensorimotor integration in PD. In Huntington's disease (HD), changes in SEPs and long-latency stretch reflexes suggest that a defective gating of peripheral afferent input to the brain might impair sensorimotor integration in cortical motor areas, thus interfering with the processing of motor programs. Defective motor programming might contribute to some features of motor impairment in HD. Sensory symptoms are frequent in focal dystonia and sensory manipulation can modify the dystonic movements. In addition, specific sensory functions (kinaesthesia, spatial-temporal discrimination) can be impaired in patients with focal hand dystonia, thus leading to a "sensory overflow." Sensory input may be abnormal and trigger focal dystonia, or defective "gating" may cause an input-output mismatch in specific motor programs. Altogether, several observations strongly support the idea that sensorimotor integration is impaired in focal dystonia. Although elemental sensation is normal in patients with tics, tics can be associated with sensory phenomena. Some neurophysiological studies suggest that an altered "gating" mechanism also underlies the development of tics. This review underlines the importance of abnormal sensorimotor integration in the pathophysiology of movement disorders. Although the physiological mechanism remains unclear, the defect is of special clinical relevance in determining the development of focal dystonia.

Animals↗

Putative sense organs on the pallial tentacles of the limpet, Patella vulgata (L.).

The structure and ultrastructure of ciliary tufts on the pallial tentacles of the limpet Patella vulgata (L.) are described. The tip of each tentacle is covered by a dense crown of tufts and additional tufts can be seen scattered evenly across the surface of each tentacle. The cilia are nonmotile and nerve fibres run from the base of the ciliated cells suggesting a sensory function. Comparisons are made with ciliary tufts found in a Pacific species of limpet, Acmaea scutum, and other molluscan sensory structures.

Animals↗

The role of the capsaicin-sensitive innervation of the rat urinary bladder in the activation of micturition reflex.

Capsaicin applied on the serosal surface of the urinary bladder in urethane-anaesthetized rats produces two distinct types of motor effects: a tetrodotoxin-, hexamethonium- and lidocaine-insensitive 'tonic' contraction and a series of tetrodotoxin-, hexamethonium- and lidocaine-sensitive rhythmic contractions. Both 'tonic' and rhythmic contractions are abolished by bladder denervation indicating their neurogenic origin. The rhythmic but not the 'tonic' component of the contractile effect of capsaicin is abolished by spinal cord transection indicating activation of a supraspinal micturition reflex. The motor effects of topical capsaicin are unaffected by pretreatment with indomethacin or diphenhydramine plus cimetidine. Pretreatment with a large dose of subcutaneous (SC) capsaicin increases both volume and pressure threshold for micturition while amplitude of micturition contraction is unaffected. Moreover the spinal somatovesical reflex elicited by pinching of the perineal skin is unaffected by capsaicin-desensitization. The intracerebroventricular (ICV) administration of capsaicin reproduces the effects of SC capsaicin on the bladder response to saline filling. Rats pretreated with ICV capsaicin are as sensitive as controls in reacting to noxious heat (hot plate test) while the wiping response to instillation of capsaicin into one eye was abolished. These findings provide functional evidence for the presence in the rat urinary bladder of a capsaicin-sensitive innervation which subserves a sensory function in relaying volume/pressure information from detrusor muscle to central nervous system. Information carried through these capsaicin-sensitive fibers appears to be relevant for initiation of a supraspinal vesico-vesical micturition reflex. Functional evidence indicates that these fibers may terminate at supraspinal level.

Acetylcholine↗

Sensory control of energy density at different life stages.

Taste preferences, food choices and eating habits all change with age. The transition from childhood to adolescence and adult life is associated with reduced sweet taste preferences, lower sugars consumption and reduced energy density of the diet. Ageing is associated with elevated acceptance of bitter tastes, elevated preferences for vegetables and salad greens, and increased consumption of whole grains, vegetables and fruit. The age-associated drop in energy intakes is achieved through a reduction in the weight and volume of food consumed, as well as a reduction in the overall energy density of the diet. Energy density drops from a peak of 5 kJ (1.2 kcal)/g in adolescence and early adult life to a low of 3.1 kJ (0.75 kcal)/g for adult women aged 45-54 years. Older adults, particularly women, consume less fat and saturated fat and more fibre and vitamin C, suggesting a shift in consumption from snacks, sweets and desserts towards grains, vegetables and fruit. These changes in food preferences and eating habits are associated, on a population level, with a decline in preferences for sweet taste and with increased acceptance of bitter tastes. At present there are no data to show a causal relationship between age-related changes in sensory function and the selection of a more bulky energy-dilute diet. However, it is a plausible hypothesis that sensory factors mediate adjustments in energy density of foods at different life stages.

Adolescent↗