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P F Good

Publications and source records attributed to P F Good.

25 records · Page 2Linked to original sources

Selective accumulation of aluminum and iron in the neurofibrillary tangles of Alzheimer's disease: a laser microprobe (LAMMA) study.

We report the results of an examination of the elemental content of neurofibrillary tangle-bearing and neurofibrillary tangle-free neurons identified within the hippocampus of 10 subjects with Alzheimer's disease and 4 neuropathologically intact age-matched control subjects. The study employed laser microprobe mass analysis (LAMMA), a technique that provides extremely sensitive multielement detection in plastic-embedded, semithin-sectioned tissues. Evidence for the selective accumulation of aluminum within the neurofibrillary tangle-bearing neurons was obtained in all 10 subjects with Alzheimer's disease. The site of aluminum deposition within these cells was the neurofibrillary tangle itself, and not the "nuclear region," as we previously reported. Iron accumulation was also detected within neurofibrillary tangles. Evaluation for the accumulation of other elements within the tangle-bearing neurons failed to reveal any other metallic element as being consistently present. In addition, probe sites directed to neurons identified in snap-frozen cryostat sections from 2 subjects with Alzheimer's disease revealed similar spectra with prominent aluminum-related peaks, confirming that our findings are not related to exogenous contamination through fixation, embedding, or other procedures prior to analysis. This study further confirms the association of aluminum and neurofibrillary tangle formation in Alzheimer's disease.

Aluminum↗

Comparative techniques for determining cellular iron distribution in brain tissues.

Iron is essential for a number of normal brain functions and accumulates in high concentrations in specific regions of the brain. In pathological states, it may further accumulate in these and other areas that are typically low in iron content. The contribution of excess iron to potential central nervous system damage through its ability to donate an electron and to promote oxygen free radical formation has made the nature, location, extent, and process of iron deposition in the brain important areas of investigation. Nevertheless, there is relatively little information currently available on the cellular and subcellular distribution of iron in the central nervous system in either normal or diseased states. We describe and compare a number of the currently available techniques by which iron can be detected within the cellular components of the brain. Histochemical approaches, primarily in the form of the Perls' stain, yields information only on iron in its ferric state and is a relatively insensitive technique. Electron microscopy with x-ray spectrometry can provide positive identification of iron but has limitations regarding morphological verification of the specific cells being probed and also has a relatively high lowest detection limit. Secondary ion mass spectrometry and proton-induced x-ray spectrometry are both expensive, highly complex techniques with greater detection sensitivity, but they have problems identifying the cellular components being analyzed. Finally, laser microprobe mass analysis combines histological localization and identification of probe sites in plastic-embedded histological sections with detection limits in the single part per million range.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Aluminum, Alzheimer's disease, and the olfactory system.

In Alzheimer's disease, it has been recognized that there is a dramatic tendency for the development of neurofibrillary tangles among neurons of cortical regions associated with the olfactory system. We have demonstrated that neurofibrillary tangle-bearing neurons contain dramatically elevated levels of aluminum. The olfactory system, the only portion of the central nervous system with exposure to the external environment, is uniquely capable of uptake and transneuronal spread of exogenous substances. We argue that inasmuch as aluminum is not employed in any physiologic process, these deposits must arise from exogenous sources. Using parkinsonism-dementia complex of Guam as a model, we present data which suggest that the olfactory system is particularly vulnerable to damage and is affected very early in the disease. This supports the concept that etiologic agents of importance to this epidemic may be airborne in nature and may enter the central nervous system via the olfactory pathways.

Aluminum↗

The association of aluminum Alzheimer's disease, and neurofibrillary tangles.

Alzheimer's disease is a progressive neurodegenerative disease characterized by the development of large numbers of neurofibrillary tangles in certain neuronal populations. Aluminum salts inoculated into experimental animals produce neurofilamentous lesions which are similar, but not identical, to the neurofibrillary tangle of Alzheimer's disease. Although a few reports suggest evidence of increased amounts of aluminum in the brains of Alzheimer's disease victims, such bulk analysis studies have been difficult to replicate. Using scanning electron microscopy with x-ray spectrometry, we have identified accumulations of aluminum in neurofibrillary tangle-bearing neurons of Alzheimer's disease. Similar accumulations have been identified in the neurofibrillary tangle-bearing neurons found in the brains of indigenous natives of Guam who suffer from parkinsonism with dementia and from amyotrophic lateral sclerosis. This ongoing research still cannot ascribe a causal role of aluminum in the pathogenesis of the neurofibrillary tangle; however, it does suggest that environmental factors may play an important part in the formation of this abnormality.

Aluminum↗

A therapeutic trial of gangliosides and thymosin in the Wobbler mouse model of motor neuron disease.

Mixed bovine gangliosides have been reported to enhance neuronal regeneration and sprouting. The Wobbler mouse model of motor neuron disease was used to test the clinical effects of long-term ganglioside administration on the course of the disease. Mixed gangliosides were injected subcutaneously into a group of 5 Wobbler mice and compared to a control group of 5 Wobbler mice which received saline. Because of several reports implicating involvement of the immune system in ALS, a 3rd group of 5 Wobbler mice received thymosin. All mice were 4 weeks old at commencement of injections. The 3 groups were examined weekly and graded with respect to front leg power, ability to climb a vertical grating, and walking posture. After 4 months of treatment, no significant difference between either experimental group and the controls was found.

Animals↗

Cholinergic function in lumbar aluminum myelopathy.

To determine whether perikaryal neurofilamentous accumulation in cholinergic neurons is associated with a deficit in cholinergic function, we developed a new model of aluminum-induced neurofibrillary degeneration, referred to as focal lumbar aluminum myelopathy. The model is produced by direct intramedullary microinjection of AlCl3, which results in a characteristic neurological syndrome. Four weeks after injections, affected rabbits show extensive neurofilamentous lesions of both large and small neurons in the lumbar spinal cord, including a majority of anterior horn cells. These animals are capable of long-term survival. Posterior tibial nerve morphometry in these rabbits revealed no significant loss of myelinated fibers. Choline acetyltransferase (ChAT) activity in the sciatic nerve was decreased 39%, from 45.70 +/- 2.36 nmol ACh/hour/3-mm segment in acid-injected controls to 17.72 +/- 1.94 in aluminum-intoxicated rabbits. The rate of accumulation of ChAT activity proximal to a sciatic nerve ligature was significantly greater in the aluminum-treated rabbits, although the total amount of ChAT activity accumulating in a 24-hour period did not differ from controls. We conclude that aluminum-induced accumulation of neurofilaments in cholinergic perikarya is associated with a sharp decrease of ChAT activity in the axons of those cells and possibly with a compensatory increase in the rate of delivery of the enzyme.

Aluminum↗