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Biomedical subjects

M Brammer

Publications and source records attributed to M Brammer.

63 records · Page 4Linked to original sources

Galactocerebroside is expressed by non-myelin-forming Schwann cells in situ.

Interest in the glycosphingolipid galactocerebroside (GC) is based on the consensus that in the nervous system it is expressed only by myelin-forming Schwann cells and oligodendrocytes, and that it has a specific role in the elaboration of myelin sheaths. We have investigated GC distribution in two rat nerves--the sciatic, containing a mixture of myelinated and non-myelinated axons, and the cervical sympathetic trunk, in which greater than 99% of axons are non-myelinated. Immunohistochemical experiments using mono- and polyclonal GC antibodies were carried out on teased nerves and cultured Schwann cells, and GC synthesis was assayed biochemically. Unexpectedly, we found that mature non-myelin-forming Schwann cells in situ and in short-term cultures express unambiguous GC immunoreactivity, comparable in intensity to that of myelinated fibers or myelin-forming cells in short-term cultures. GC synthesis was also detected in both sympathetic trunks and sciatic nerves. In the developing sympathetic trunk, GC was first seen at day 19 in utero, the number of GC-positive cells rising to approximately 95% at postnatal day 10. In contrast, the time course of GC appearance in the sciatic nerve shows two separate phases of increase, between day 18 in utero and postnatal day 1, and between postnatal days 20 and 35, at which stage approximately 94% of the cells express GC. These time courses suggest that Schwann cells, irrespective of subsequent differentiation pathway, start expressing GC at about the same time as cell division stops. We suggest that GC is a ubiquitous component of mature Schwann cell membranes in situ. Therefore, the role of GC needs to be reevaluated, since its function is clearly not restricted to events involved in myelination.

Animals↗

The rise and fall of pineal N-acetyltransferase in vitro: neural regulation in the developing rat.

In rats, the pineal gland has a rhythm in the activity of the enzyme, N-acetyltransferase (NAT), which is thought responsible for daily cycles of melatonin synthesis. Neonatal rat pineal glands, but not those of adult rats, have a single cycle that is observed in vitro during the first day of organ culture. The neural regulation of the cycle was investigated using neonatal rats with adult rats used for comparison. Prior treatment of rat pups with constant light did not abolish the cycle in vitro though it did abolish the in vivo rhythm. Removal of the superior cervical ganglia did not abolish the in vivo rhythm that was measured the first day after surgery, but ablation of the ganglia did abolish the rhythm if several days or more elapsed after surgery. Extirpation of the superior cervical ganglia abolished the in vitro NAT cycle in pup pineal glands as did the pharmacological equivalent, injection of 6-hydroxydopamine. Propranolol, a beta blocking agent, prevented the occurrence of the cycle in vitro.

Acetyltransferases↗

Pineal glands of immature rats: rise and fall in N-acetyltransferase activity in vitro.

N-acetyltransferase activity in the pineal glands of immature rats (12--14 days old) shows a spontaneous rise and fall when the glands are placed in organ culture. The peak of the 28-fold change occurs 5--16 hr after the cultures are initiated. This observation can be interpreted in two ways: (1) the pup pineal gland is responding to norepinephrine released when nerve endings degenerate in culture, or (2) the pup pineal gland has an innate ability which is responsible. Whatever the mechanism, the phenomenon is associated with the development of pineal gland function since pineal glands of adult rats do not show a spontaneous rise and fall in identical experiments.

Acetyltransferases↗

The subcellular distribution of triphosphoinositide phosphomonoesterase in guinea-pig brain.

1. Some properties of the triphosphoinositide phosphomonoesterase from the homogenates of guinea-pig brain were studied. The enzyme has an optimum pH range 6.7-7.3, is stimulated with KCl at a concentration of 0.1m, and under these conditions has K(m)1.43x10(-4)m. 2. A factor from the ;pH5 supernatant' of guinea-pig brain stimulates the enzyme activity over and above the stimulation produced by KCl. Subcellular fractions of guinea-pig brain varied in their response to the ;pH5 supernatant'. Maximum stimulation was observed with the P(1) fraction, containing myelin and nuclei. 3. An assay system for the enzyme was developed that contained optimum concentrations of both KCl and the ;pH5 supernatant'. Acid phosphatases were inhibited by NaF, but, in contrast with previous work, no EDTA was added to the assay system to inhibit the alkaline phosphatases. This reagent inhibited the triphosphoinositide phosphomonoesterase. It was estimated that the remaining fraction of non-specific phosphatases can account for only 14% of the observed triphosphoinositide phosphomonoesterase activity. 4. Subcellular fractions of guinea-pig brain were characterized by electron microscopy and subcellular markers. The triphosphoinositide phosphomonoesterase exhibited a distribution between the fractions similar to that of 5'-nucleotidase, but different from that of alkaline phosphatase.

Acid Phosphatase↗

Seeing visual hallucinations with functional magnetic resonance imaging.

We have used blood oxygenation level dependent imaging with functional magnetic resonance imaging (fMRI) to investigate the visual cortex response to photic stimulation during and in the absence of continuous visual hallucinations. A patient with cortical Lewy body dementia who experienced persistent and vivid complex hallucinations underwent fMRI on and off treatment with risperidone. When he was not hallucinating, photic stimulation produced a normal bilateral activation in striate cortex. During hallucinations, very limited activation in striate cortex could be induced. We interpret this result as indicating that at least part of the activity in the brain responsible for the experience of visual hallucinations is located in the primary visual cortex.

Hallucinations↗

[Decreased 67-gallium plasma protein binding in senile dementia of the Alzheimer type].

We examined the plasma-protein-binding of 67-gallium in 10 patients with probable dementia of the Alzheimer-type (DAT), diagnosed according to NINCDS-ADRDA-criteria, and in 10 healthy controls matched for age (mean: 82 and 83 years) and sex (2m:8f). In comparison to the control group, the percentage of 67-gallium bound in the plasma of DAT-patients was significantly decreased (10.6% vs 15.5%; p less than 0.05). As gallium and aluminum show corresponding biochemical characteristics, these results may indicate a potential contribution of a disturbed peripheral transport in DAT, leading to the intracerebral deposition of neurotoxic aluminum levels.

Aged↗