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[Hemorheologic changes in patients with obliterative arteriopathy of the leg before and after muscle exercise tests].

Blood and plasma viscosity, erythrocyte filtrability and blood gas analysis were determined in 25 subjects with arteriosclerosis obliterans of the lower limbs before and after a muscle exercise test. Thirty-six shear rates between 0 and 230 s1 were studied to obtain viscosity curves, and regression analysis was performed for each curve. Mean viscosity curves for pathologic and control populations were plotted. The purpose of the study was to determine whether viscosity curves for blood and plasma before and after exercise, based on a high number of measurements, can provide information on rheological changes during intermittent claudication. Practically all viscosity curves in pathologic and control subjects could be described using a hyperbolic equation. Plasma as well as blood viscosity increased in pathologic subjects after exercise. However, erythrocyte filtrability and blood gas analysis in pathologic and control subjects, and blood and plasma viscosity in control subjects, showed no statistically significant changes after exercise. It is suggested that muscle exercise in reduced blood flow conditions can alter the aggregation of macromolecular complexes of plasma proteins, which could have an influence on cell components by modifying blood rheological behavior during claudication.

Arteriosclerosis↗

Inhibition of glomerular visceral epithelial cell endocytosis during nephrosis induced by puromycin aminonucleoside.

Puromycin aminonucleoside (PA), injected intravenously into rats in a single dose, causes proteinuria and ultrastructural pathology reminiscent of human lipoid nephrosis (puromycin aminonucleoside nephrosis (PAN]. Glomerular epithelial cell (GEC) endocytosis was studied in this model and in rats with protein-overload proteinuria using ultrastructural morphometry. Disappearance curves were constructed for protamine-heparin aggregates (PHA), which localized in the subepithelial region of the glomerular basal lamina following intravenous injection of protamine followed by heparin. Five groups were studied: (a) preproteinuric PAN, 4 days after PA (mean 4.5 +/- 1.5 mg of urinary protein/24 hours); (b) proteinuric PAN, 10 days after PA (mean 128 +/- 9.6 mg/24 hours); (c) recovery from PAN (mean 12.5 +/- 1.5 mg/24 hours); (d) protein-overload proteinuria, induced by injecting albumin intraperitoneally (mean 211 +/- 15.9 mg/24 hours); and (e) saline-injected controls (mean 1.2 +/- 0.2 mg/24 hours). Only the proteinuric PAN animals (group 2) had altered GEC endocytosis with a PHA half-disappearance time different from the group 5 saline controls (143.2 versus 72.6 minutes, p less than 0.05). The half-disappearance times in groups 1, 3, and 4 were 74.6, 80.7 and 86.5 minutes, respectively. Altered GEC function was further characterized by comparing PHA disappearance with the abundance of albumin-filled vacuoles in the GEC. Prolongation of PHA disappearance in group 2 correlated with the virtual absence of vacuoles; they were abundant in nonproteinuric phases of PAN and in animals with overload proteinuria. We conclude (a) GEC endocytosis is reduced only during the proteinuric phase of PAN, (b) GEC endocytosis is active during the preproteinuric phase of PAN and is a factor that may account for the absence of protein in the urine despite abnormal GBM permeability, (c) decreased GEC endocytosis during proteinuric PAN reflects abnormal cell metabolism due to PA and is not simply a consequence of albuminuria, as overload proteinuria did not produce diminished PHA or albumin uptake.

Animals↗

The oligomerization of amyloid beta-protein begins intracellularly in cells derived from human brain.

The progressive aggregation and deposition of amyloid beta-protein (Abeta) in brain regions subserving memory and cognition is an early and invariant feature of Alzheimer's disease, the most common cause of cognitive failure in aged humans. Inhibiting Abeta aggregation is therapeutically attractive because this process is believed to be an exclusively pathological event. Whereas many studies have examined the aggregation of synthetic Abeta peptides under nonphysiological conditions and concentrations, we have detected and characterized the oligomerization of naturally secreted Abeta at nanomolar levels in cultures of APP-expressing CHO cells [Podlisny, M. B., Ostaszewski, B. L., Squazzo, S. L., Koo, E. H., Rydell, R. E., Teplow, D. B., and Selkoe, D. J. (1995) J. Biol. Chem. 270, 9564-9570 (1); Podlisny, M. B., Walsh, D. M., Amarante, P., Ostaszewski, B. L., Stimson, E. R., Maggio, J. E., Teplow, D. B., and Selkoe, D. J. (1998) Biochemistry 37, 3602-3611 (2)]. To determine whether similar species occur in vivo, we probed samples of human cerebrospinal fluid (CSF) and detected SDS-stable dimers of Abeta in some subjects. Incubation of CSF or of CHO conditioned medium at 37 degrees C did not lead to new oligomer formation. This inability to induce oligomers extracellularly as well as the detection of oligomers in cell medium very early during the course of pulse-chase experiments suggested that natural Abeta oligomers might first form intracellularly. We therefore searched for and detected intracellular Abeta oligomers, principally dimers, in primary human neurons and in neuronal and nonneural cell lines. These dimers arose intracellularly rather than being derived from the medium by reuptake. The dimers were particularly detectable in neural cells: the ratio of intracellular to extracellular oligomers was much higher in brain-derived than nonbrain cells. We conclude that the pathogenically critical process of Abeta oligomerization begins intraneuronally.

Amyloid beta-Peptides↗

Microtubule binding and clustering of human Tau-4R and Tau-P301L proteins isolated from yeast deficient in orthologues of glycogen synthase kinase-3beta or cdk5.

Phosphorylation of Tau protein and binding to microtubules is complex in neurons and was therefore studied in the less complicated model of humanized yeast. Human Tau was readily phosphorylated at pathological epitopes, but in opposite directions regulated by kinases Mds1 and Pho85, orthologues of glycogen synthase kinase-3beta and cdk5, respectively (1). We isolated recombinant Tau-4R and mutant Tau-P301L from wild type, Delta mds1 and Delta pho85 yeast strains and measured binding to Taxol-stabilized mammalian microtubules in relation to their phosphorylation patterns. Tau-4R isolated from yeast lacking mds1 was less phosphorylated and bound more to microtubules than Tau-4R isolated from wild type yeast. Paradoxically, phosphorylation of Tau-4R isolated from kinase Pho85-deficient yeast was dramatically increased resulting in very poor binding to microtubules. Dephosphorylation promoted binding to microtubules to uniform high levels, excluding other modifications. Isolated hyperphosphorylated, conformationally altered Tau-4R completely failed to bind microtubules. In parallel to Tau-4R, we expressed, isolated, and analyzed mutant Tau-P301L. Total dephosphorylated Tau-4R and Tau-P301L bound to microtubules very similarly. Surprisingly, Tau-P301L isolated from all yeast strains bound to microtubules more extensively than Tau-4R. Atomic force microscopy demonstrated, however, that the high apparent binding of Tau-P301L was due to aggregation on the microtubules, causing their deformation and bundling. Our data explain the pathological presence of granular Tau aggregates in neuronal processes in tauopathies.

Cyclin-Dependent Kinase 5↗

[Effects of fusion gene encoding the hVEGF165 and fused hirudin on restenosis of injured carotid artery induced by angioplasty].

OBJECTIVE: To study the effects of fusion gene encoding the hVEGF(165) and fused hirudin on restenosis of injured carotid artery. METHODS: A fusion gene encoding hVEGF(165) and fused hirudin (hVEGF(165)-FH) was constructed and clone into the eukaryotic expression vector pcDNA3.0, thus constructing the plasmid VEGF(165)-FH/pcDNA3.0. Its activities to stimulate endothelial cell proliferation and to inhibit thrombosis were identified. Sixteen New Zealand rabbits underwent ligation of external carotid artery and a balloon was inserted into the common carotid artery for 30 minutes so as to construct model of restenosis of injured carotid artery. Then the rabbits were randomly divided into 4 equal groups. In the one-week and 3-week control groups, 400 microg of DNA of the plasmid pcDNA3.0 were transfused into the arterial lumen at the injured part immediately after the angioplasty, and 400 microg of DNA of the plasmid VEGF(165)-FH/pcDNA3.0 were transfused in the 1-week and 3-week experimental groups. One week and 3 weeks after the treatment peripheral blood samples were collected to detect the activated partial thromboplastin time (APTT), thrombin time (TT), and platelet aggregation rate, and then the rabbits underwent angiography to observe the situation of restenosis. Then the rabbits were killed to take out the injured part of artery to undergo pathological examination and Western blotting. RESULTS: The values of APTT, TT, and platelet aggregation rate were not significantly different among the 4 groups. Angiography conducted 1 and 3 weeks later showed that restenosis was significantly mild in the 2 experimental groups in comparison with the 2 control groups, and severe restenosis was seen in the 3-week control group. Western blotting showed that expression of specific fused protein could be found in the 1-week and 3-week experimental group, the amount of the latter group being less than that of the former group; however, no expression of specific fused protein was found in the 2 control groups. Pathological examination showed that the narrowing of lumen 1-week and 3-week experimental groups were 11.50% and 19.75%, both significantly milder than those of the 1-week and 3-week control groups (33.25% and 52.25% respectively, both f P < 0.05). VB staining showed that the (intima/media (I/M) ratio of the 1-week and 3-week experimental groups were 0.12 and 0.35 respectively, both significantly lower than those of the 2 control groups (0.50 and 1.07 respectively, both P < 0.05). CONCLUSION: Accelerating re-endothelialization and inhibiting thrombosis, the fused gene hVEGF(165)-FH effectively prevents restenosis after angioplasty, On the basis of endothelial repair, construction of fused genes with double even multiple targets may be a novel and potential therapeutic approach for restenosis after percutaneous coronary intervention.

Animals↗

Proteolytic stress: a unifying concept for the etiopathogenesis of Parkinson's disease.

The etiopathogenesis of Parkinson's disease (PD) has been elusive. Recently, several lines of evidence have converged to suggest that defects in the ubiquitin-proteasome system and proteolytic stress underlie nigral pathology in both familial and sporadic forms of the illness. In support of this concept, mutations in alpha-synuclein that cause the protein to misfold and resist proteasomal degradation cause familial PD. Similarly, mutations in two enzymes involved in the normal function of the ubiquitin-proteasome system, parkin and ubiquitin C-terminal hydrolase L1, are also associated with hereditary PD. Furthermore, structural and function defects in 26/20S proteasomes with accumulation and aggregation of potentially cytotoxic abnormal proteins have been identified in the substantia nigra pars compacta of patients with sporadic PD. Thus, a defect in protein handling appears to be a common factor in sporadic and the various familial forms of PD. This hypothesis may also account for the vulnerability of the substantia nigra pars compacta in PD, why the disorder is age related, and the nature of the Lewy body. It has also facilitated the development of experimental models that recapitulate the behavioral and pathological features of PD, and hopefully will lead to the development of novel neuroprotective therapies for the disorder.

Cysteine Endopeptidases↗

Anti-aggregating antibodies, a new approach towards treatment of conformational diseases.

More and more evidence shows that Alzheimer's and prion-related diseases belong to the family of conformational diseases characterized by protein self-association and tissue deposition as amyloid fibrils. Regardless of the nature of the protein constituent, all forms of amyloid are stable assemblies based on noncovalent interactions between subunits of crossed beta-sheet structure. Understanding the mechanism and molecular details of the pathological conformational conversion of amyloidogenic proteins may be of importance to the development of approaches towards prevention and treatment of such diseases. We previously found that monoclonal antibodies (mAbs) interact at strategic sites where protein unfolding is initiated, thereby stabilizing the protein and preventing further precipitation. Indeed, site-directed mAbs raised against the N-terminal region of Alzheimer's beta-peptide (A beta P) disaggregate A beta P fibrils, restore peptide solubility and prevent its neurotoxic effects. Similarly, selected mAbs raised against the human prion peptide 106-126 modulate conformational changes occurring in the prion peptide exposed to aggregating conditions, preventing its aggregation and related neurotoxicity on cultivated neural-like cells. All these data and related procedures bring more attention to the immunological concept in the treatment of conformational diseases, and the recent performance of such antibodies in transgenic mice, as a model for human diseases, suggests the development of vaccination approaches against such diseases.

Alzheimer Disease↗

Physiological and pathological aspects of circulating immune complexes.

Complement participates in the elimination of IC in many circumstances. When antigen/antibody IC first form in the circulation, complement inhibits their aggregation because the covalent binding of C3b to the IC modifies their biophysical properties and they remain soluble. Such opsonized (C3b coated) IC attach to cells bearing C3b receptors (CR1) in the circulation, in particular to erythrocytes, since in humans 85 to 90% of CR1 in the blood is located on these cells. This immune adherence binding reaction appears to be a physiological system that allows IC to be transported through the circulation to the fixed macrophages of the MPS where they are safely eliminated. The deposition of circulating complement-fixing IC in various organs such as the kidney may be considered as a failure of this transport system. This is apparent in complement deficient and depleted states, and also for non-complement-fixing IC (IgA IC). The formation of insoluble IC (by definition immune deposits found in human pathology are insoluble) produces complement activation and inflammation at the site of the immune aggregate.

Animals↗

The role of G-protein-coupled receptor kinase 5 in pathogenesis of sporadic Parkinson's disease.

Sporadic Parkinson's disease (sPD) is a common neurodegenerative disorder, characterized by selective degeneration of dopaminergic neurons in the substantia nigra. Although the pathogenesis of the disease remains undetermined, phosphorylation of alpha-synuclein and its oligomer formation seem to play a key role. However, the protein kinase(s) involved in the phosphorylation in the pathogenesis of sPD has not been identified. Here, we found that G-protein-coupled receptor kinase 5 (GRK5) accumulated in Lewy bodies and colocalized with alpha-synuclein in the pathological structures of the brains of sPD patients. In cotransfected cells, GRK5 phosphorylated Ser-129 of alpha-synuclein at the plasma membrane and induced translocation of phosphorylated alpha-synuclein to the perikaryal area. GRK5-catalyzed phosphorylation also promoted the formation of soluble oligomers and aggregates of alpha-synuclein. Genetic association study revealed haplotypic association of the GRK5 gene with susceptibility to sPD. The haplotype contained two functional single-nucleotide polymorphisms, m22.1 and m24, in introns of the GRK5 gene, which bound to YY1 (Yin Yang-1) and CREB-1 (cAMP response element-binding protein 1), respectively, and increased transcriptional activity of the reporter gene. The results suggest that phosphorylation of alpha-synuclein by GRK5 plays a crucial role in the pathogenesis of sPD.

Aged↗

Aluminum binds to the hyperphosphorylated tau in Alzheimer's disease: a hypothesis.

The hypterphosphorylation of tau proteins is a well-established step in the expression of the pathological features in Alzheimer's disease (AD). While a primary event that links aluminum and AD, the so-called 'aluminum hypotheses', is far from being demonstrated, however, the metal ion could be an important etiological factor, most likely not the only one, of AD etiopathogenesis acting as an aggregating agent of the cytoskeletal elements forming very stable bridges between phosphate groups of the hyperphosphorylated tau elements.

Aluminum↗

Cytoskeletal changes in hepatocytes induced by Microcystis toxins and their relation to hyperphosphorylation of cell proteins.

The heptapeptide toxins produced by the blue-green alga (cyanobacterium) Microcystis aeruginosa are selectively hepatotoxic in mammals. The characteristic post-mortem pathology of the liver is extensive lobular disruption due to sinusoidal breakdown, leakage of blood into the tissue and hepatocyte disintegration. Isolated hepatocytes incubated with toxin show severe structural deformity and surface blebbing. This paper demonstrates the effects of Microcystis toxins on the contraction and aggregation of actin microfilaments, and on the relocation and breakdown of cytokeratin intermediate filaments, in cultured hepatocytes. Earlier work did not show changes in the assembly/disassembly of actin; however, this paper demonstrates the change in cytokeratin from intermediate filaments to distributed granules in the cytoplasm of toxin-affected cells. Acrylamide gel electrophoresis of cytoskeletal fractions from hepatocytes did not show changes in total cytokeratins; however, marked changes in the immunogenicity of cytokeratins at 52 and 58 kDa were seen on toxin exposure of cells. Measurement of 32P-phosphorylation of proteins in toxin-affected cells incubated with [32P]orthophosphate showed a dramatic increase compared to control incubations. This is in agreement with research elsewhere describing phosphatase inhibition in vitro by Microcystis toxins. The data indicate that phosphorylated cytokeratin is a major component of cytoplasmic fraction phosphorylated protein after toxin exposure to hepatocytes. It is concluded that the mechanism of Microcystis toxicity to the hepatocyte is through cytoskeletal damage leading to loss of cell morphology, cell to cell adhesion and finally cellular necrosis. The underlying biochemical lesion is likely to be phosphatase inhibition causing hyperphosphorylation of a number of hepatocyte proteins, including those cytokeratins responsible for microfilament orientation and intermediate filament integrity.

Actins↗

A possible model of senile plaques using synthetic amyloid beta-protein and rat glial culture.

The senile plaque (SP) is one of the pathological hallmarks in the brains of patients with Alzheimer's disease (AD), but the mechanism of its formation and its role in AD progression are not yet fully understood. Synthetic amyloid beta-protein (Abeta)1-40 is known to aggregate in vitro, and the aggregated Abeta has been widely used for in vitro experiments, in which its peculiar effects on neuronal and glial cells have been shown. To date, however, the formation of a SP-like structure in a culture system using synthetic Abeta has not been demonstrated. In this study, we established a possible SP model using synthetic Abeta1-40 and rat glial cultures as follows: (1) large spherical aggregates of synthetic Abeta (sAmys) were produced from synthetic Abeta1-40 (10-50 microm in diameter), (2) the sAmys were added to a glial culture, and (3) the characteristics of the sAmys and the reactions of glial cells (microglia and astrocytes) around the sAmys were analyzed. We found that the sAmys exhibited the same features as the dense amyloid core in SPs, including the intense green birefringence under polarized light with Congo red, and induced reactive features in glial cells, including induction of major histocompatibility complex class II antigen in the microglia and interleukin-1beta in the astrocytes, similar to those seen in SPs in the brain in AD. Given our findings, we consider that this glial culture system with the sAmys is a possible in vitro SP model and useful for investigating the effects of massive amyloid deposition on neuronal and glial cells.

Amyloid beta-Peptides↗

Sick chaperones and ageing: a perspective.

Intra- and extra-cellular protein deposits characterize many pathologic disorders (proteinopathies). These deposits contain different proteins, some of which are distinctive of a given disorder or type of disease, whereas others are not. The disorder-specific proteins are as a rule defective and have a tendency to misfold, aggregate, and precipitate-thus deposits are formed. The abnormal proteins typical of the better-characterized proteinopathies are not molecular chaperones, and the chaperoning systems in patients with these diseases are apparently normal. In this article, disorders in which abnormal chaperones seem to be the main pathogenetic factor are presented as a subset of the proteinopathies and termed chaperonepathies. A defective chaperone molecule (sick chaperone) will impact on the chaperoning system and pathway in which it normally participates. Since chaperones are ubiquitous their malfunctioning will have universal deleterious effects. In fact, the few known disorders in which a sick chaperone seems to be the main etiology, are clinically heterogeneous with many tissues affected. Senescence is characterized by a progressive decline of vigor and function throughout the body reflecting the failure of many molecules due to wear and tear, accumulation of mutations, and perhaps other factors. It is likely that this age-associated decline is due in part to a progressive failure of the chaperoning systems. Senescence would proceed even faster when a defective chaperone appears early in life due to a genetic defect. Furthermore, sick chaperones will make the individual vulnerable to stressors since the chaperoning systems are key anti-stress mechanisms. In this context, a combination of sick chaperones with stress appears as a driving force in the process of ageing.

Aging↗

Does an ultra violet photooxidation of the manganese-loaded/copper-depleted prion protein in the retina initiate the pathogenesis of TSE?

Ecosystems supporting clusters of sporadic transmissible spongiform encephalopathy (TSE) are characterized by common properties of high-manganese/low-copper, zinc, selenium mineral status, and high-altitude/snow-covered/pre-cambrian mountain terrain where above-average intensities of ultra violet/ozone oxidants are prevalent. Cell culture trials have confirmed the hypothesis that manganese (Mn) substitutes at Prion Protein's (PrP's) vacated copper (Cu) domain, whereupon PrP loses its Cu-mediated antioxidant function, transforming into a protease-resistant misfolded isoform that aggregates into fibril 'tombstone' structures - the key hallmark distinguishing TSE central nervous system (CNS) pathology. The cellular localisation of PrP suggests PrP serves a 'front line' contributory role in neutralizing radicals generated by incoming environmental oxidants, whilst an intensive expression of PrP messenger ribonucleic acid (mRNA) in the retina, melanocytes, epidermis, etc., suggests PrP performs a key antioxidant role as a 'photooxidative shock absorber'; binding of porphyrin IX, Congo red and other photosensitisers to PrPc suggests PrPc serves as an integral associate of the porphyrin/melanin chromophore electron transfer chain; thereby serving as a quencher of singlet O2/superoxide generated by photoenergised chromophores/xeno photosensitisers. It is proposed that sporadic TSE pathogenesis is initiated in the retina of environmentally/genetically predisposed individuals via a two-stage chronic toxic process - Mn substitution at PrP's Cu domain forming a stable Mn2+-PrP complex, followed by an ultra violet in situ photo-oxidization of the Mn2+ component; whereby the latent 'Jekyll and Hyde' capacity of the Mn2+-PrP conjugate is activated into the fully fledged, 'infectious' lethal auto-oxidizing, Mn3+-PrP 'prion' agent. Thus, PrPc's Cu-mediated antioxidant function is replaced by a Mn3+-mediated autooxidant dysfunction. Could the UK's increased loading of a cocktail of environmental oxidants that penetrated the CNS of the UK bovine (ultra violet microwaves/ozone/systemic cu-chelating insecticides) account for a more virulent Mn4+ mediated acceleration of the TSE degenerative process in Mn-contaminated/genetically predisposed individuals, manifesting as the widespread emergence of new-variant bovine spongiform encephalopathy (BSE)/variant Creutzfeldt-Jacob disease (VCJD)/FSE in younger mammals?

Animals↗

A new type of neuronal cytoplasmic inclusion: histological, ultrastructural, and immunocytochemical studies.

A novel type of non-viral cytoplasmic inclusion is described, which was seen in virtually every neuron in the brain and spinal cord of a child with a presumed metabolic disorder whose clinical picture and CNS pathology were compatible with Leigh Syndrome. The ovoid to round inclusions were sharply demarcated, measuring up to 11 microns in diameter. They showed no distinctive staining with a battery of routine histological techniques. The ultrastructural features are unique, comprising non-membrane-bounded aggregates of randomly oriented plate-like structures with parallel linear densities depicting a periodicity of 11-16 nm. Immunocytochemical studies revealed strong staining with antisera to tropomyosin and weaker staining with antisera to actin. There was no reactivity with antibodies against neurofilaments, microtubules and their associated proteins, paired helical filaments, ubiquitin, vinculin or alpha-actinin. It is postulated that the metabolic disorder resulted in a neurodegenerative condition which manifested pathologically with lesions compatible with those of Leigh Syndrome. Associated with the condition was the discrete accumulation of cytoplasmic proteinaceous components, including tropomyosin, in the form of neuronal cytoplasmic inclusions possibly resulting from an alteration of the neuronal cytoskeleton.

Brain Diseases, Metabolic↗

Interaction between Abeta peptide and alpha synuclein: molecular mechanisms in overlapping pathology of Alzheimer's and Parkinson's in dementia with Lewy body disease.

Amyloidogenic proteins (Abeta peptide) in Alzheimer's disease (AD) and alpha-synuclein (alpha-Syn) in Parkinson's disease (PD) are typically soluble monomeric precursors, which undergo remarkable conformational changes and culminate in the form of aggregates in diseased condition. Overlap of clinical and neuropathological features of both AD and PD are observed in dementia with Lewy body (DLB) disease, the second most common form of dementia after AD. The identification of a 35-amino acid fragment of alpha-Syn in the amyloid plaques in DLB brain have raised the possibility that Abeta and alpha-Syn interact with each other. In this report, the molecular interaction of alpha-Syn with Abeta40 and/or Abeta42 are investigated using multidimensional NMR spectroscopy. NMR data in the membrane mimic environment indicate specific sites of interaction between membrane-bound alpha-Syn with Abeta peptide and vice versa. These Abeta-alpha-Syn interactions are demonstrated by reduced amide peak intensity or change in chemical shift of amide proton of the interacting proteins. Based on NMR results, the plausible molecular mechanism of overlapping pathocascade of AD and PD in DLB due to interactions between alpha-Syn and Abeta is described. To the best of our knowledge, it is the first report using multidimensional NMR spectroscopy that elucidates molecular interactions between Abeta and alpha-Syn which may lead to onset of DLB.

Alzheimer Disease↗

Protofibril formation of amyloid beta-protein at low pH via a non-cooperative elongation mechanism.

Deposition of the amyloid beta-protein (Abeta) in senile or diffuse plaques is a distinctive feature of Alzheimer's disease. The role of Abeta aggregates in the etiology of the disease is still controversial. The formation of linear aggregates, known as amyloid fibrils, has been proposed as the onset and the cause of pathological deposition. Yet, recent findings suggest that a more crucial role is played by prefibrillar oligomeric assemblies of Abeta that are highly toxic in the extracellular environment. In the present work, the mechanism of protofibril formation is studied at pH 3.1, starting from a solution of oligomeric precursors. By combining static light scattering and photon correlation spectroscopy, the growth of the mass and the size of aggregates are determined at different temperatures. Analysis and scaling of kinetic data reveal that under the studied conditions protofibrils are formed via a single non-cooperative elongation mechanism, not prompted by nucleation. This process is well described as a linear colloidal aggregation due to diffusion and coalescence of growing aggregates. The rate of elongation follows an Arrhenius law with an activation enthalpy of 15 kcal mol(-1). Such a value points to a conformational change of peptides or oligomers being involved in binding to protofibrils or in general to a local reorganization of each aggregate. These results contribute to establishing a clearer relation at the molecular level between the fibrillation mechanism and fibrillar precursors. The observation of a non-cooperative aggregation pathway supports the hypothesis that amyloid formation may represent an escape route from a dangerous condition, induced by the presence of toxic oligomeric species.

Alzheimer Disease↗

Ubiquitin-proteasome system and Parkinson's disease.

Increasing genetic, pathological, and experimental evidence suggest that neurodegeneration in both familial and sporadic forms of Parkinson's disease (PD) may be related to a defect in the capacity of the ubiquitin-proteasome system (UPS) to clear unwanted proteins, resulting in protein accumulation, aggregation, and cytotoxicity. This concept is supported by in vitro and in vivo laboratory experiments which show that inhibition of UPS function can cause neurodegeneration coupled with the formation of Lewy body-like inclusions. This hypothesis could account for the presence of protein aggregates and Lewy bodies in PD, the other biochemical features seen in the disorder, and the age-related vulnerability of the substantia nigra pars compacta. It also suggests novel targets for putative neuroprotective therapies for PD.

Age Factors↗