bioRxiv · 10.64898/2026.08.27.747468
Sequential Molecular Interactions Shape Aβ42 Aggregation, Propagation, and Toxicity
Abstract
Protein aggregation is a context-dependent process in which the molecular environment can influence the properties of the resulting assemblies. In biological systems, these interactions can occur sequentially, as aggregates formed in one cellular or tissue context may encounter different molecular partners and act as seeds in subsequent aggregation events. Here, we used sequential seeding as a controlled experimental model of this temporal and contextual complexity to investigate how prion-like sequences from the gut microbiome modulate amyloid-{beta} aggregation across successive aggregation cycles. Combining kinetic, biophysical, conformational, and toxicity analyses, we show that early interactions with exogenous peptides modify the properties of first-generation A{beta}40- and A{beta}42-derived seeds, resulting in propagated A{beta}42 assemblies with distinct molecular and functional properties. These findings support an Interaction History model in which exogenous sequences bias the emergence of aggregate populations whose properties and subsequent propagation depend on the molecular contexts experienced during earlier aggregation events. Overall, our results present A{beta} aggregation as a history-dependent process and suggest that single-step assays may fail to capture aggregate diversity that emerges across successive aggregation cycles.
Explore related subjects
Keep this discovery
Seira Curto, J., Perez Collell, G., Romero Ruiz, M., Villegas Hernandez, S., Fernandez, M. R., Sanchez de Groot, N.. 2026-09-01. Sequential Molecular Interactions Shape Aβ42 Aggregation, Propagation, and Toxicity. https://doi.org/10.64898/2026.08.27.747468
Cite the original work for its findings. Save a collection to share your selection of sources.
Discover connections
Connections use source metadata and explicit phrase matches, not verified experimental comparisons.