Quantifying oligomer populations in real time during protein aggregation using single-molecule mass photometry

Author:

Paul Simanta Sarani,Lyons Aaron,Kirchner Russell,Woodside Michael T.

Abstract

ABSTRACTProtein aggregation is a hallmark of many neurodegenerative diseases. The early stages of the aggregation cascade are crucial because small oligomers are thought to be key neurotoxic species, but they are difficult to study because they feature heterogeneous mixtures of transient states. We show how the populations of different oligomers can be tracked as they evolve over time during aggregation by using single-molecule mass photometry to measure individually the masses of the oligomers present in solution. Applying the approach to tau protein, whose aggregates are linked to diseases including Alzheimer’s and frontotemporal dementia, we found that tau existed in an equilibrium between monomers, dimers, and trimers before aggregation was triggered. Once aggregation commenced, the monomer population dropped continuously, paired first with a rise in the population of the smallest oligomers and then a steep drop as the protein was incorporated into larger oligomers and fibrils. Fitting these populations to kinetic models allowed different models of aggregation to be tested, identifying the most likely mechanism and quantifying the microscopic rates for each step in the mechanism. This work demonstrates a powerful new approach for characterizing previously inaccessible regimes in protein aggregation and building quantitative mechanistic models.

Publisher

Cold Spring Harbor Laboratory

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