Globular and Protofibrillar Aβ Aggregates Impair Neurotransmission by Different Mechanisms
Autor: | Holger Rosenbrock, Bastian Hengerer, Jens Moreth, Cathrin Schnack, Christine A. F. von Arnim, Katja S. Kroker, Daniel Schwanzar, Lothar Kussmaul |
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Rok vydání: | 2013 |
Předmět: |
Male
Amyloid β Peptide Hippocampal formation Neurotransmission Biological effect Hippocampus Synaptic Transmission Biochemistry Mice Alzheimer Disease medicine Animals Humans Rats Wistar Cells Cultured Neurons chemistry.chemical_classification Amyloid beta-Peptides Neurotoxicity Long-term potentiation medicine.disease Rats Mice Inbred C57BL chemistry Biophysics |
Zdroj: | Biochemistry. 52:1466-1476 |
ISSN: | 1520-4995 0006-2960 |
DOI: | 10.1021/bi3016444 |
Popis: | In Alzheimer's disease, substantial evidence indicates the causative role of soluble amyloid β (Aβ) aggregates. Although a variety of Aβ assemblies have been described, the debate about their individual relevance is still ongoing. One critical issue hampering this debate is the use of different methods for the characterization of endogenous and synthetic peptide and their intrinsic limitations for distinguishing Aβ aggregates. Here, we used different protocols for the establishment of prefibrillar Aβ assemblies with varying morphologies and sizes and compared them in a head-to-head fashion. Aggregation was characterized via the monomeric peptide over time until spheroidal, protofibrillar, or fibrillar Aβ aggregates were predominant. It could be shown that a change in the ionic environment induced a structural rearrangement, which consequently confounds the delineation of a measured neurotoxicity toward a distinct Aβ assembly. Here, neuronal binding and hippocampal neurotransmission were found to be suitable to account for the synaptotoxicity to different Aβ assemblies, based on the stability of the applied Aβ aggregates in these settings. In contrast to monomeric or fibrillar Aβ, different prefibrillar Aβ aggregates targeted neurons and impaired hippocampal neurotransmission with nanomolar potency, albeit by different modalities. Spheroidal Aβ aggregates inhibited NMDAR-dependent long-term potentiation, as opposed to protofibrillar Aβ aggregates, which inhibited AMPAR-dominated basal neurotransmission. In addition, a provoked structural conversion of spheroidal to protofibrillar Aβ assemblies resulted in a time-dependent suppression of basal neurotransmission, indicative of a mechanistic switch in synaptic impairment. Thus, we emphasize the importance of addressing the metastability of prefacto characterized Aβ aggregates in assigning a biological effect. |
Databáze: | OpenAIRE |
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