966 resultados para Amyloid Vorläufer Protein (APP)


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Mutations in kerato-epithelin are responsible for a group of hereditary cornea-specific deposition diseases, 5q31-linked corneal dystrophies. These conditions are characterized by progressive accumulation of protein deposits of different ultrastructure. Herein, we studied the corneas with mutations at kerato-epithelin residue Arg-124 resulting in amyloid (R124C), non-amyloid (R124L), and a mixed pattern of deposition (R124H). We found that aggregated kerato-epithelin comprised all types of pathological deposits. Each mutation was associated with characteristic changes of protein turnover in corneal tissue. Amyloidogenesis in R124C corneas was accompanied by the accumulation of N-terminal kerato-epithelin fragments, whereby species of 44 kDa were the major constituents of amyloid fibrils. R124H corneas with prevailing non-amyloid inclusions showed accumulation of a new 66-kDa species altogether with the full-size 68-kDa form. Finally, in R124L cornea with non amyloid deposits, we found only the accumulation of the 68-kDa form. Two-dimensional gels revealed mutation-specific changes in the processing of the full-size protein in all affected corneas. It appears that substitutions at the same residue (Arg-124) result in cornea-specific deposition of kerato-epithelin via distinct aggregation pathways each involving altered turnover of the protein in corneal tissue.

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Die Alterung stellt den größten Risikofaktor für die Entwicklung der Alzheimer Krankheit dar, wobei die biochemische Basis dieser Korrelation bisher nicht bekannt ist. Ein möglicherweise zentraler Mechanismus der Alzheimer Pathologie wird durch die Prozessierung von APP repräsentiert, die in der Synthese von Aβ resultiert. Der Einfluss zellulärer Alterung auf die Biochemie der APP-Prozessierung ist bislang weitestgehend ungeklärt. In der vorliegenden Arbeit wurde gezeigt, dass die Prozessierung von endogenem APP im Verlauf der Zellalterung humaner Fibroblasten progressiv verringert wird. Die Bildung der intrazellulären APP-Spaltfragmente (C99, C83 und AICD) nahm mit zunehmender Lebensspanne ab und war gleichfalls mit einer reduzierten Synthese von extrazellulären APP-Fragmenten (sAPP, sAPPα) verbunden. Weiterhin wurde nachgewiesen, dass die Reifung von APP in seneszenten Zellen selektiv reduziert war, und dass dies durch altersabhängig erhöhte zelluläre Cholesterolspiegel vermittelt wurde. Von den APP-prozessierenden Sekretasen waren die Proteinspiegel von Presenilin-1 und Nicastrin, beides Komponenten der γ-Sekretase, im Verlauf der Zellalterung graduell verringert. Dies hatte einen progressiven Rückgang der enzymatischen Aktivität der γ-Sekretase zur Folge, wodurch die Prozessierung von APP unmittelbar reduziert wurde. Die Proteinspiegel von ADAM10, einer α-Sekretase, sowie der β-Sekretase, BACE, wiesen keine Altersregulation auf, aber interessanterweise wurde eine erhöhte enzymatische Aktivität der β-Sekretase in seneszenten Zellen nachgewiesen. Die γ-Sekretase sowie BACE sind in Lipid Rafts lokalisiert, geordneten Membransubdomänen, die hohe Cholesterol- und Caveolin-1-Spiegel aufweisen. Obwohl das Gesamtniveau dieser strukturellen Komponenten von Lipid Rafts in seneszenten Zellen erhöht war, war die Assoziation beider Moleküle mit Lipid Rafts reduziert und sie akkumulierten in speziellen Organellen, die höchstwahrscheinlich Lipidkörper darstellen. Somit wurde gezeigt, dass Lipid Rafts im Zuge der Zellalterung disintegrieren beziehungsweise in ihrem Gesamtspiegel reduziert waren. Diese altersabhängige Membranmodifikation war mit einer veränderten Verteilung von Presenilin-1 und BACE zwischen der Lipid Raft und der Nicht Raft Fraktion der Membran verbunden, die möglicherweise das Potential dieser Enzyme zur Prozessierung von APP reduzierte. In einem zweiten Teil der Arbeit wurden transgene C. elegans konstruiert, die humanes APP exprimieren, das C-terminal an GFP gekoppelt war. Diese Würmer wiesen eine reduzierte Fertilität, Eilegedefekte und eine verzögerte post-embryonale Entwicklung auf, die möglicherweise auf eine Transgen-vermittelte Neurodegeneration zurückgeführt werden können. Durch erste Untersuchungen der Prozessierung des Transgens konnten Spaltfragmente nachgewiesen werden, die potentiell auf eine spezifische Spaltung von APP durch die endogenen Sekretasen schließen lassen. Somit werden die Prozessierung sowie die Reifung von APP durch die altersabhängige Modifikationen zellulärer Biochemie nachhaltig beeinflusst. Zukünftige Studien sollen zeigen, ob sich diese zellulären Zusammenhänge in den Gesamtorganismus C. elegans übertragen lassen. Des Weiteren sollen die altersabhängigen zellulären Veränderungen, insbesondere des Cholesterol-Metabolismus und der Sekretaseaktivitäten, weitergehend analysiert werden, um zusätzliche Erkenntnisse über altersassoziierte Regulationen möglicher therapeutischer Ziele der Alzheimer Erkrankung zu gewinnen.

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Die Alzheimer’sche Erkrankung (AD) ist die am häufigsten vorkommende Form der Demenz. Die Spaltung des APP scheint eine große Rolle in der Pathologie der Erkrankung zu spielen. APP kann auf zwei Wegen prozessiert werden. Dem amyloidogenen Weg, bei dem neben einem löslichen extrazellulären Fragment (sAPPβ) und der APP Intrazellulären Domäne (AICD) auch Aβ entsteht. Auf dem nicht-amyloidogenen Weg entsteht sAPPα, p3 und die AICD. Dem sAPPα werden neuroprotektiv Eigenschaften zugeschrieben. rnEs konnte gezeigt werden, dass sAPPα in jungen IMR90 Zellen, den durch proteasomalen Stress ausgelösten Anstieg der Bag3 und Hsp70 Proteinlevel senkt. Gleichzeitig konnte gezeigt werden, dass sAPPα die Zellviabilität nach proteasomalen Stress erhöht und weniger Aggresomen gebildet werden. Die Analyse der proteasomalen Aktivität zeigte, dass sAPPα die proteasomale Aktivität gestresster junger Zellen erhöhen kann. In alten IMR90 Zellen konnte keine Beeinflussung der Autophagie und der proteasomalen Aktivität festgestellt werden. Das ist ein Anhaltspunkt dafür, dass im Alter das Proteasom zu stark geschädigt ist, um durch sAPPα aktiviert zu werden. Das bei der amyloidogenen Prozessierung von APP entstehende sAPPβ zeigte eine ähnliche protektive Eigenschaft. rnInsgesamt konnte ein protektiver Einfluss von sAPPα und sAPPβ unter proteotoxischen Bedingungen in jungen und klonalen Zellen gezeigt werden, wodurch die Zellviabilität verbessert wird. rn

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To study the association of the inflammatory markers serum amyloid A (SAA) and C-reactive protein (CRP) with retinal microvascular parameters in hypertensive individuals with and without type 2 diabetes.

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Fibrillogenesis of the amyloid β-protein (Aβ) is believed to play a central role in the pathogenesis of Alzheimer’s disease. Previous studies of the kinetics of Aβ fibrillogenesis showed that the rate of fibril elongation is proportional to the concentration of monomers. We report here the study of the temperature dependence of the Aβ fibril elongation rate constant, ke, in 0.1 M HCl. The rate of fibril elongation was measured at Aβ monomer concentrations ranging from 50 to 400 μM and at temperatures from 4°C to 40°C. Over this temperature range, ke increases by two orders of magnitude. The temperature dependence of ke follows the Arrhenius law, ke = A exp (−EA/kT). The preexponential factor A and the activation energy EA are ≈6 × 1018 liter/(mol·sec) and 23 kcal/mol, respectively. Such a high value of EA suggests that significant conformational changes are associated with the binding of Aβ monomers to fibril ends.

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Transthyretin (TTR) amyloid fibril formation is observed systemically in familial amyloid polyneuropathy and senile systemic amyloidosis and appears to be the causative agent in these diseases. Herein, we demonstrate conclusively that thyroxine (10.8 μM) inhibits TTR fibril formation efficiently in vitro and does so by stabilizing the tetramer against dissociation and the subsequent conformational changes required for amyloid fibril formation. In addition, the nonnative ligand 2,4,6-triiodophenol, which binds to TTR with slightly increased affinity also inhibits TTR fibril formation by this mechanism. Sedimentation velocity experiments were employed to show that TTR undergoes dissociation (linked to a conformational change) to form the monomeric amyloidogenic intermediate, which self-assembles into amyloid in the absence, but not in the presence of thyroxine. These results demonstrate the feasibility of using small molecules to stabilize the native fold of a potentially amyloidogenic human protein, thus preventing the conformational changes, which appear to be the common link in several human amyloid diseases. This strategy and the compounds resulting from further development should prove useful for critically evaluating the amyloid hypothesis—i.e., the putative cause-and-effect relationship between TTR amyloid deposition and the onset of familial amyloid polyneuropathy and senile systemic amyloidosis.

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Limited solubility and precipitation of amyloidogenic sequences such as the Alzheimer peptide (β-AP) are major obstacles to a molecular understanding of protein fibrillation and deposition processes. Here we have circumvented the solubility problem by stepwise engineering a β-AP homology into a soluble scaffold, the monomeric protein S6. The S6 construct with the highest β-AP homology crystallizes as a tetramer that is linked by the β-AP residues forming intermolecular antiparallel β-sheets. This construct also shows increased coil aggregation during refolding, and a 14-mer peptide encompassing the engineered sequence forms fibrils. Mutational analysis shows that intermolecular association is linked to the overall hydrophobicity of the sticky sequence and implies the existence of “structural gatekeepers” in the wild-type protein, that is, charged side chains that prevent aggregation by interrupting contiguous stretches of hydrophobic residues in the primary sequence.

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An immunoglobulin light chain protein was isolated from the urine of an individual (BRE) with systemic amyloidosis. Complete amino acid sequence of the variable region of the light chain (VL) protein established it as a kappa I, which when compared with other kappa I amyloid associated proteins had unique residues, including Ile-34, Leu-40, and Tyr-71. To study the tertiary structure, BRE VL was expressed in Escherichia coli by using a PCR product amplified from the patient BRE's bone marrow DNA. The PCR product was ligated into pCZ11, a thermal-inducible replication vector. Recombinant BRE VL was isolated, purified to homogeneity, and crystallized by using ammonium sulfate as the precipitant. Two crystal forms were obtained. In crystal form I the BRE VL kappa domain crystallizes as a dimer with unit cell constants isomorphous to previously published kappa protein structures. Comparison with a nonamyloid VL kappa domain from patient REI, identified significant differences in position of residues in the hypervariable segments plus variations in framework region (FR) segments 40-46 (FR2) and 66-67 (FR3). In addition, positional differences can be seen along the two types of local diads, corresponding to the monomer-monomer and dimer-dimer interfaces. From the packing diagram, a model for the amyloid light chain (AL) fibril is proposed based on a pseudohexagonal spiral structure with a rise of approximately the width of two dimers per 360 degree turn. This spiral structure could be consistent with the dimensions of amyloid fibrils as determined by electron microscopy.

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NACP, a 140-amino acid presynaptic protein, is the precursor of NAC [the non-amyloid beta/A4 protein (A beta) component of Alzheimer disease (AD) amyloid], a peptide isolated from and immunologically localized to brain amyloid of patients afflicted with AD. NACP produced in Escherichia coli bound to A beta peptides, the major component of AD amyloid. NACP bound to A beta 1-38 and A beta 25-35 immobilized on nitrocellulose but did not bind to A beta 1-28 on the filter under the same conditions. NACP binding to A beta 1-38 was abolished by addition of A beta 25-35 but not by A beta 1-28, suggesting that the hydrophobic region of the A beta peptide is critical to this binding. NACP-112, a shorter splice variant of NACP containing the NAC sequence, bound to A beta, but NACP delta, a deletion mutant of NACP lacking the NAC domain, did not bind A beta 1-38. Furthermore, binding between NACP-112 and A beta 1-38 was decreased by addition of peptide Y, a peptide that covers the last 15 residues of NAC. In an aqueous solution, A beta 1-38 aggregation was observed when NACP was also present in an incubation mixture at a ratio of 1:125 (NACP/A beta), whereas A beta 1-38 alone or NACP alone did not aggregate under the same conditions, suggesting that the formation of a complex between A beta and NACP may promote aggregation of A beta. Thus, NACP can bind A beta peptides through the specific sequence and can promote A beta aggregation, raising the possibility that NACP may play a role in the development of AD amyloid.

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Similar pathological processes may be involved in the deposition of extracellular proteins in the brains of patients with Creutzfeldt-Jakob disease (CJD) and Alzheimer's disease (AD). Hence, this study compared the spatial patterns of prion protein (PrP) deposits in the cerebral cortex and hippocampus in cases of sporadic CJD with those of β-amyloid (Aβ) deposits in sporadic AD. PrP and Aβ deposits were aggregated into clusters and, in 90% of brain areas in CJD and 57% in AD, the clusters were regularly distributed parallel to the tissue boundary. In a significant proportion of cortical analyses, the mean diameter of the clusters of PrP and Aβ deposits were similar to those of the cells of origin of the cortico-cortical pathways. Aβ deposits in AD were distributed more frequently in larger-sized clusters than PrP deposits in CJD. In addition, in the hippocampus and dentate gyrus, clustering of Aβ deposits was observed in AD but PrP deposits were rare in these regions in CJD. The size, location and distribution of the extracellular protein deposits within the cortex of both disorders was consistent with the degeneration of the cortico-cortical pathways. Furthermore, spread of the pathology along these pathways may be a pathogenic feature common to CJD and AD. © 2001 Elsevier Science Ireland Ltd.

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This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.