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Biomedical subjects

G Perry

Publications and source records attributed to G Perry.

298 records · Page 17Linked to original sources

Copernicus revisited: amyloid beta in Alzheimer's disease.

The beta-amyloid hypothesis of Alzheimer's Disease (AD) has dominated the thinking and research in this area for over a decade and a half. While there has been a great deal of effort in attempting to prove its centrality in this devastating disease, and while an enormous amount has been learned about its properties (e.g., putative toxicity, processing and signaling), Abeta has not proven to be both necessary and sufficient for the development, neurotoxicity, and cognitive deficits associated with this disease. Instead, the few treatments that are available have emerged from aging research and are primarily directed toward modification of acetylcholine levels. Clearly, it is time to rethink this position and to propose instead that future approaches should focus upon altering the age-related sensitivity of the neuronal environment to insults involving such factors as inflammation and oxidative stress. In other words "solve the problems of aging and by extension those of AD will also be reduced." This review is being submitted as a rather Lutherian attempt to "nail an alternative thesis" to the gate of the Church of the Holy Amyloid to open its doors to the idea that aging is the most pervasive element in this disease and Abeta is merely one of the planets.

Age Factors↗

Oxidative damage in Alzheimer's disease: the metabolic dimension.

Cell bodies of neurons at risk of death in Alzheimer disease have increased lipid peroxidation, nitration, free carbonyls, and nucleic acid oxidation. These oxidative changes are uniform among neurons and are seen whether or not the neurons display neurofibrillary tangles and, in fact, are acutally reduced in the latter case. In consideration of this localization of damage, in this review, we provide a summary of recent work demonstrating some key abnormalities that may initiate and promote neuronal oxidatave damage.

Alzheimer Disease↗

Universal isolation of cross-linked peptides: application to neurofibrillary tangles.

A universal procedure to isolate cross-linked peptides has been demonstrated. The procedure relies on initially converting the epsilon-amino groups of lysine to dimethyl lysine by reductive methylation with sodium cyanoborohydride and formaldehyde. The lysine-modified protein is proteolytically cleaved and the resulting alpha-amino groups derivatized with methoxypoly(ethylene glycol)5000 succinyl hydroxysuccinimide. Any unintentional derivatization of tyrosine side chains can be reversed by incubation under mildly alkaline conditions. The cross-linked polypeptides contain two poly(ethylene glycol)5000 chains while non-cross-linked peptides contain a single poly(ethylene glycol)5000 chain. The two populations of peptides can be separated by gel filtration chromatography. This procedure has been shown capable of isolating cross-linked peptides using glutathione, lysozyme, chemically cross-linked hemoglobin, and neurofibrillary tangles isolated from the brain of a case of Alzheimer's disease.

Alzheimer Disease↗

Alexander disease: Alzheimer disease of the developing brain?

Alexander disease is a leukodystrophy-like neurodegenerative disease that typically presents in infancy or childhood. The disease is essentially a sporadic condition, and there is no known genetic predisposition or metabolic abnormality. The hallmark of the disease is the diffuse accumulation of Rosenthal fibers (RF) throughout the central nervous system. Although an etiological relationship of the RF to disease pathogenesis has been suspected since the initial description of Alexander disease, such a relationship has not been confirmed. We previously identified a number of oxidative post-translational modifications, including advanced glycation end products and lipid peroxidation adducts, in intimate association with the RF of Alexander disease. Such oxidative protein damage provides a mechanism, through protein crosslinking, for insolubility and accumulation of RF. Notably, these findings show a striking parallel with the biochemical features of age-related neurodegenerative diseases such as Alzheimer disease. Therefore, Alexander disease and Alzheimer disease likely share a common pathogenesis, namely oxidative injury as a potential primary process in the etiology and pathogenesis.

Alzheimer Disease↗

Synaptic dysfunction and oxidative stress in Alzheimer's disease: emerging mechanisms.

In this paper, we review experimental advances in molecular neurobiology of Alzheimer's disease (AD), with special emphasis on analysis of neural function of proteins involved in AD pathogenesis, their relation with several signaling pathways and with oxidative stress in neurons. Molecular genetic studies have found that mutations in APP, PS1 and PS2 genes and polymorphisms in APOE gene are implicated in AD pathogenesis. Recent studies show that these proteins, in addition to its role in beta-amyloid processing, are involved in several neuroplasticity-signaling pathways (NMDA-PKA-CREB-BDNF, reelin, wingless, notch, among others). Genomic and proteomic studies show early synaptic protein alterations in AD brains and animal models. DNA damage caused by oxidative stress is not completely repaired in neurons and is accumulated in the genes of synaptic proteins. Several functional SNPs in synaptic genes may be interesting candidates to explore in AD as genetic correlates of this synaptopathy in a "synaptogenomics" approach. Thus, experimental evidence shows that proteins implicated in AD pathogenesis have differential roles in several signaling pathways related to neuromodulation and neurotransmission in adult and developing brain. Genomic and proteomic studies support these results. We suggest that oxidative stress effects on DNA and inherited variations in synaptic genes may explain in part the synaptic dysfunction seen in AD.

Alzheimer Disease↗

The effect of agonists and antagonists on the morphology of non-transformed human smooth muscle cell in vitro.

In the present study we used scanning electron microscopy (SEM) to investigate morphological changes of non-transformed line of human bronchial smooth muscle cells (bSMC) induced by different agonists. Explants of normal bronchi were dissected and subcultured between 2 and 6 passage. In addition, smooth muscle actin content was assessed by SDS-PAGE electrophoresis, and its isoelectric point by IPG followed by immunoblotting. SMC were fixed by 2.0% paraformaldehyde and 2% glutaraldehyde and then were post-fixed by OSO4 and followed by dehydration and gold coating. Cytosolic free calcium was measured using adherent cells incubated with 500 microM Fura-2 acetoxymethylester and monitored by single excitation fluorimetry. Cultured cells possess predominantly charged actin isoforms with pI at 4.95; they respond to acetylcholine (100 microM), bradykinin (5 microM) and sulfidopeptide leukotriens (0.3-1.0 microM) with contraction, marked morphological lesions, such as widespread monolayer disorganization, extension of cell contacts. The number of microvilli on the cell surfaces was correlated with the degree of the alterations of the cellular morphology. Receptor antagonists antagonized these changes: atropine (0.3 microM), HOE 140 (1 microM) and MK 571 (1 microM). Acetylcholine and bradykinin induced a biphasic elevation of cytosolic calcium, which was antagonized by their receptor antagonists. Calcium changes in response to agonists were maintained over repetitive passages. Therefore, morphological changes seen in human bronchial SMC in culture with physiological response to various, structurally unrelated agonists can be future concern for the study the possible testing of the different pharmacological substances.

Acetylcholine↗

Pathobiology of familial hypercholesterolemic atherosclerosis.

Many factors play a role in the development of atherosclerotic lesions. One of the leading risk factors for development of atherosclerosis is familial hypercholesterolemia (FH). FH is a genetic disease characterized by a deficiency, and/or mutation, of receptors for low density lipoprotein (LDL) on the plasmalemma of endothelial cells (EC), a high level of low density lipoprotein in the plasma, and early, spontaneous development of atherosclerosis and skin xanthoma. In this review we describe Watanabe heritable hyperlipidemic (WHHL) rabbits, which represent such an animal model for human FH. This strain of the rabbits is characterized by a genetic deficiency or mutation of functional LDL receptors and develops severe atherosclerosis, which is pathologically similar to familial homozygous hyperlipidemic patients. The most completely characterized animal model is the Watanabe rabbit, a model of homozygous and heterozygous type IIa hypercholesterolemia related to an LDL receptor deficiency. Additional manipulation such as aortic injury in this rabbit model induces the development of atherosclerotic lesions that are structurally similar to those found in humans. Thus, this model of hypercholesterolemia fulfils the above criteria set, i.e. it is able to provide new insights for a better understanding of the pathogenesis of atherosclerosis and for testing new treatment strategies.

Animals↗

Trace copper levels in the drinking water, but not zinc or aluminum influence CNS Alzheimer-like pathology.

Mounting evidence suggests copper may influence the progression of Alzheimer's disease by reducing clearance of the amyloid beta protein (Abeta) from the brain. Previous experiments show that addition of only 0.12 PPM copper (one-tenth the Environmental Protection Agency Human consumption limits) to distilled water was sufficient to precipitate the accumulation of Abeta in the brains of cholesterol-fed rabbits (1). Here we report that addition of copper to the drinking water of spontaneously hypercholesterolemic Watanabe rabbits, cholesterol-fed beagles and rabbits, PS1/APP transgenic mice produced significantly enhanced brain levels of Abeta. In contrast to the effects of copper, we found that aluminum- or zinc-ion-supplemented distilled water did not have a significant effect on brain Ab accumulation in cholesterol-fed rabbits. We also report that administration of distilled water produced a reduction in the expected accumulation of Ab in three separate animal models. Collectively, these data suggest that water quality may have a significant influence on disease progression and Ab neuropathology in AD.

Aluminum↗

Workplace tobacco interventions.

Health promotion programs are becoming an integral part of work site activities. Recent data from Indiana businesses suggest that smoking is a leading concern. An objective has been adopted by the Indiana Chamber of Commerce that states that the number of employers with work site smoking cessation policies should increase. Smoking control and cessation programs implemented in industry have contributed to a decrease in the number of smokers and in the health risks of nonsmokers exposed to environmental tobacco smoke. This report describes the effectiveness of work site smoking control programs.

Health Promotion↗

Alzheimer disease: protein-protein interaction and oxidative stress.

Alzheimer disease, the most prevalent dementia of the aged, is defined by the concurrence of two filamentous brain lesions: neurofibrillary tangles and senile plaques. The lesions are temporally and spatially correlated to each other and to cognitive impairment suggesting that is a interaction between neurofibrillary tangles and senile plaques that might play a role in disease pathogenesis. Here we present findings demonstrating specific interactions between the major protein components of the lesions. Such an interaction is likely important to lesion genesis and to the overall cognitive deficits seen clinically. Also important are forces that stabilize and cement abnormal interactions and protect them form removal. Oxidative post-translational modifications is probably one of the major mediators that by disrupting cellular homeostatic balance both promotes abnormal interactions and makes them resistant to proteolytic removal. Overall, these findings support the view that the lesions of Alzheimer disease are intimately involved in neuronal destructions.

Alzheimer Disease↗