Precision proteoform design for 4R tau isoform selective templated aggregation

Author:

Longhini Andrew P.12ORCID,DuBose Austin3ORCID,Lobo Samuel4,Vijayan Vishnu3,Bai Yeran125,Rivera Erica Keane12ORCID,Sala-Jarque Julia12,Nikitina Arina12,Carrettiero Daniel C.126ORCID,Unger Matthew T.12,Sclafani Olivia R.12ORCID,Fu Valerie12ORCID,Beckett Emily R.12,Vigers Michael3,Buée Luc78ORCID,Landrieu Isabelle910ORCID,Shell Scott4,Shea Joan E.311,Han Songi34,Kosik Kenneth S.12

Affiliation:

1. Neuroscience Research Institute, University of California Santa Barbara, Santa Barbara, CA 93106

2. Department of Molecular, Cell and Developmental Biology, University of California Santa Barbara, Santa Barbara, CA 93106

3. Department of Chemistry and Biochemistry, University of California Santa Barbara, Santa Barbara, CA 93106

4. Department of Chemical Engineering, University of California Santa Barbara, Santa Barbara, CA 93106

5. Photothermal Spectroscopy Corp., Santa Barbara, CA 93101

6. Center for Natural and Human Sciences, Federal University of ABC, São Bernardo do Campo, São Paulo 09600-000, Brazil

7. University of Lille, Inserm, CHU Lille, Lille Neuroscience & Cognition Lille F-59000, France

8. Laboratoire d'Excellence Development of Innovative Strategies for a Transdisciplinary Approach to Alzheimer's Disease, Alzheimer & Tauopathies Team, Lille F-59000, France

9. Center National de la Recherche Scientifique Équipe de Recherche 9002–Integrative Structural Biology, Lille F-59000, France

10. University of Lille, Inserm, Centre Hospitalier Universitaire de Lille, Institut Pasteur de Lille, U1167–Risk Factors and Molecular Determinants of Aging-Related Diseases Lille F-59000, France

11. Department of Physics, University of California Santa Barbara, Santa Barbara, CA 93106

Abstract

Prion-like spread of disease-specific tau conformers is a hallmark of all tauopathies. A 19-residue probe peptide containing a P301L mutation and spanning the R2/R3 splice junction of tau folds and stacks into seeding-competent fibrils and induces aggregation of 4R, but not 3R tau. These tau peptide fibrils propagate aggregated intracellular tau over multiple generations, have a high β-sheet content, a colocalized lipid signal, and adopt a well-defined U-shaped fold found in 4R tauopathy brain-derived fibrils. Fully atomistic replica exchange molecular dynamics (MD) simulations were used to compute the free energy landscapes of the conformational ensemble of the peptide monomers. These identified an aggregation-prohibiting β-hairpin structure and an aggregation-competent U-fold unique to 4R tauopathy fibrils. Guided by MD simulations, we identified that the N-terminal-flanking residues to PHF6, which slightly vary between 4R and 3R isoforms, modulate seeding. Strikingly, when a single amino acid switch at position 305 replaced the serine of 4R tau with a lysine from the corresponding position in the first repeat of 3R tau, the seeding induced by the 19-residue peptide was markedly reduced. Conversely, a 4R tau mimic with three repeats, prepared by replacing those amino acids in the first repeat with those amino acids uniquely present in the second repeat, recovered aggregation when exposed to the 19-residue peptide. These peptide fibrils function as partial prions to recruit naive 4R tau—ten times the length of the peptide—and serve as a critical template for 4R tauopathy propagation. These results hint at opportunities for tau isoform–specific therapeutic interventions.

Funder

HHS | National Institutes of Health

UC | UCLA | California NanoSystems Institute

National Science Foundation

W. M. Keck Foundation

Publisher

Proceedings of the National Academy of Sciences

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