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Biomedical subjects

J R Brorson

Publications and source records attributed to J R Brorson.

8 recordsLinked to original sources

Calcium directly permeates kainate/alpha-amino-3-hydroxy-5-methyl-4- isoxazolepropionic acid receptors in cultured cerebellar Purkinje neurons.

In cultures of rat cerebellar neurons that were enriched in Purkinje cells, the non-N-methyl-D-aspartate glutamate receptor agonist kainate (KA) stimulated Ca2+ influx into all neurons in Na(+)-containing solutions. A large Ca2+ influx was also observed in most neurons when KA was applied in Na(+)-free solutions, even when the cells were voltage-clamped at negative potentials. KA also stimulated Co2+ uptake into both Purkinje and non-Purkinje neurons. The KA-induced Ca2+ influx was insensitive to pharmacological antagonists of voltage-sensitive Ca2+ channels and antagonists of N-methyl-D-aspartate receptors. Thus, different types of cerebellar neurons possess KA-gated ionophores that are permeable to Ca2+. This Ca2+ conductance may play an important role in glutamate-mediated physiological and pathological events in the cerebellum.

Animals

The properties of intracellular calcium stores in cultured rat cerebellar neurons.

Cerebellar Purkinje neurons contain a remarkable array of cellular components potentially concerned with regulation of the free cytoplasmic Ca2+ concentration, [Ca2+]i. These include high concentrations of Ca(2+)-binding proteins, inositol 1,4,5-triphosphate receptors (IP3R), and ryanodine receptors (RyR). The latter two molecules are thought to be associated with intracellular Ca2+ stores. We have examined the properties of such stores in cultured rat cerebellar neurons taken from 16 d rat embryos. In this system, about half of the neurons could be identified as Purkinje-like cells, as indicated by staining for the Ca(2+)-binding protein calbindin D-28k, as well as for IP3R and RyR. In double immunofluorescent staining, the IP3R and RyR immunoreactivity primarily colocalized with the staining for calbindin. The cells responded to glutamate, kainate, and quisqualate with large increases in the somatic [Ca2+]i but failed to respond directly to NMDA (10-50 microM). Furthermore, the neurons expressed active membrane conductances, repetitive action potential firing, and spontaneous firing patterns similar to those reported for cerebellar Purkinje neurons in vivo. Action potential firing produced changes in somatic [Ca2+]i that were quite small or absent in most cells. However, blocking spike repolarization with tetraethylammonium (5 mM) produced substantial transient elevations in somatic [Ca2+]i, suggesting the expression of some Ca2+ channels in the somatic membrane. Caffeine (10 mM) released Ca2+ from intracellular stores in about one-half of the cultured neurons. This effect could be repeated if the stores were first reloaded by a depolarization-induced elevation in [Ca2+]i. The effects of caffeine were reduced by prolonged application of ryanodine (10 microM). We were also able to demonstrate that the caffeine-sensitive Ca2+ stores could regulate electrophysiological events in some cells, altering patterns of spontaneous activity. Furthermore, in the presence of caffeine, [Ca2+]i signals induced by an evoked spike train were larger and accompanied by long-lasting after hyperpolarizations. We conclude that in addition to providing a releasable pool of Ca2+, the caffeine-sensitive stores also influence cellular events by their contribution to Ca2+ buffering.

Animals

The effect of capsaicin on voltage-gated calcium currents and calcium signals in cultured dorsal root ganglion cells.

1. The effects of capsaicin on voltage-gated Ca2+ currents (ICa), and intracellular Ca2+ concentrations [( Ca2+]i) in cultured dorsal root ganglion (DRG) neurones of the rat were examined in vitro by use of combined patch clamp-microfluorometric recordings. 2. Under voltage-clamp conditions, capsaicin (0.1-10 microM) caused a concentration-dependent decrease in the magnitude of the ICa, an elevation in the holding current (Ih) and a concomitant rise in the [Ca2+]i in most cells examined. Repeated application of capsaicin produced marked desensitization. 3. Some decrease in the ICa produced by capsaicin was also observed when the rise in [Ca2+]i was buffered with EGTA or BAPTA and when Ba2+ was used as the charge carrier; under these conditions the desensitization previously observed was smaller. 4. The decrement in voltage-gated current was smaller in Ba2+ containing solutions than in Ca2+ containing solutions suggesting that the capsaicin-induced influx of Ca2+ partially mediated the observed decrease in the voltage-gated current. In cells which showed a marked response to capsaicin an outward (positive) current was sometimes observed upon depolarization from -80 to 0 mV. This effect was consistent with an outward movement of cations through the capsaicin conductance pathway which may also account, in part, for the apparent reduction in ICa by capsaicin. 5. The effects of capsaicin under voltage-clamp conditions were prevented by ruthenium red (1 microM). 6. Under current clamp conditions, capsaicin depolarized and caused a rise in [Ca2+]i in the majority of DRG cells examined. Both of these effects could be prevented by ruthenium red (500 nM). 7. It is concluded that capsaicin reduces the Ic. of rat DRG neurones primarily by indirect mechanisms.

Animals

Symptomatic hydrocephalus and reversible spinal cord compression in Listeria monocytogenes meningitis. Case report.

Central nervous system infections with Listeria monocytogenes result in varied clinical syndromes ranging from meningitis to rhomboencephalitis. A case of Listeria meningitis complicated by symptomatic communicating hydrocephalus and hydrostatic cervical cord compression is presented which clinically and radiographically improved with aggressive ventricular drainage.

Brain

Multiple sclerosis: serial study of gadolinium-enhanced MR imaging.

Thirteen patients with definite multiple sclerosis (MS), studied 16-24 months previously with magnetic resonance (MR) imaging with and without enhancement by intravenously administered gadolinium diethylenetriaminepentaacetic acid (DTPA) dimeglumine, were reexamined with a similar protocol. Assessment of enhancement and clinical activity in both studies revealed that enhancement was observed in 13 of 14 cases in which clinical activity had changed within 4 weeks of the study and thus appeared more sensitive than clinical examination in determining active disease. The 3-minute postinjection, short repetition time image (TR) was the most efficient for depicting enhancement. Enhancing lesions (active plaques) arose from previously hyper- or isointense regions on long TR images. Previously active lesions reverted to areas of iso- or hyperintensity on long TR images. Serial comparison of long TR images in this population reveals a decrease in high-intensity lesions on long TR images in some cases and an increase in others. The findings of high-intensity regions on long TR images and previously enhancing lesions both becoming isointense suggests that transient inflammatory changes with concomitant edema without demyelination and/or with significant remyelination may occur in some MS lesions. MS lesions are dynamic; both active and inactive lesions may show dramatic change on longitudinal MR imaging studies.

Adult

Solvent structure and enzyme activity.

Enzymes are fluctuating particles in thermal equilibrium with their solvent environment. A variety of models of enzyme action have postulated selective excitation of enzyme vibrational modes or triggering of correlated motion of catalytic groups through collisions with solvent particles as the basis of catalytic activity. Solvent composition and structure are expected to influence such interactions. Solutes such as p-dioxane, t-butanol, and tetraalkylammonium chlorides are known to be strong perturbants of the structure of water. However, when the kinetic parameters of two enzymes, carboxypeptidase A and alpha-chymotrypsin, were examined carefully in aqueous mixtures containing these solutes, no significant influence of solvent structure or mass composition on the catalytic rate constant was found. The results indicate, furthermore, that, within the low viscosity limit, fluctuations in enzyme structure that are responsible for activated processes in the catalytically rate limiting step appear not to be significantly influenced by dynamic processes in the bulk solvent.

Binding Sites