Cofactor-Free Tau Filaments Are Dynamic and Undergo Structural Evolution Driven by Thermodynamic Control
Wyatt C. Powell, Nicholas Yan, Eric Tse, Arthur A. Melo, Jennifer A. Vasquez, Daniel R. Southworth, Jason E. GestwickiAbstract
Tau filaments are a hallmark of neurodegenerative tauopathies, such as Alzheimer’s disease (AD). Structural studies have revealed that patient-derived tau fibrils adopt distinct folds in different tauopathies; however, it is unclear what forces guide this process. To explore this question, we investigated the assembly of a tau fragment containing four disease-associated phospho-mimetics (termed Tau(297–407)-4D) in vitro. Under cofactor-free and quiescent conditions, Tau(297–407)-4D forms fibrils with a core structure that partially resembles the AD fold after about 7 days. Strikingly, we noticed that this filament behaves as a hydrogel and evolves into two new polymorphs as it ages over the next 35 days. Thus, tau fibrils formed under cofactor-free conditions are dynamic, exhibiting substantial nonequilibrium behavior. To probe what types of perturbations might stabilize these structures, we applied mechanical agitation, which drove the filaments toward thermodynamic equilibrium in a mechanism consistent with Ostwald ripening into solid-phase, micrometer-sized particles. Likewise, the addition of polyanionic cofactors to preformed Tau(297–407)-4D fibrils significantly stabilized them, as judged by solubility equilibria and chemical denaturation experiments. A subset of the polyanions also remodeled the fibril structure and tuned the extent of fibril–fibril interactions (i.e., “clumping”). We conclude that environmental factors, such as mechanical stress and/or polyanions, play an important role in promoting the thermodynamic stability of otherwise dynamic tau fibrils. We speculate that, in patients, such factors might contribute to the maturation of disease-specific conformers.