4.6 Article

Conformational fingerprinting of tau variants and strains by Raman spectroscopy

Journal

RSC ADVANCES
Volume 11, Issue 15, Pages 8899-8915

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ra00870f

Keywords

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Funding

  1. Rosetrees Trust [M437]
  2. ERC grant NanoChemBioVision [638258]
  3. EPSRC [EP/T020997/1]
  4. NIH [R21AG063347, R56AG061196, RF1AG059789-01, RF1AG061566]
  5. EPSRC [EP/T020997/1] Funding Source: UKRI
  6. European Research Council (ERC) [638258] Funding Source: European Research Council (ERC)

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Tauopathies are a group of disorders characterized by abnormal deposition of tau protein and neurodegeneration. Raman spectroscopy has been shown to be useful in characterizing and distinguishing different conformers of tau protein, with factors such as aggregation environment, cofactors, and post-translational modifications influencing tau conformation. The study highlights the conformational polymorphism of tau fibrils and provides a benchmark for understanding how different factors influence tau conformation.
Tauopathies are a group of disorders in which the deposition of abnormally folded tau protein accompanies neurodegeneration. The development of methods for detection and classification of pathological changes in protein conformation are desirable for understanding the factors that influence the structural polymorphism of aggregates in tauopathies. We have previously demonstrated the utility of Raman spectroscopy for the characterization and discrimination of different protein aggregates, including tau, based on their unique conformational signatures. Building on this, in the present study, we assess the utility of Raman spectroscopy for characterizing and distinguishing different conformers of the same protein which in the case of tau are unique tau strains generated in vitro. We now investigate the impact of aggregation environment, cofactors, post-translational modification and primary sequence on the Raman fingerprint of tau fibrils. Using quantitative conformational fingerprinting and multivariate statistical analysis, we found that the aggregation of tau in different buffer conditions resulted in the formation of distinct fibril strains. Unique spectral markers were identified for tau fibrils generated using heparin or RNA cofactors, as well as for phosphorylated tau. We also determined that the primary sequence of the tau monomer influenced the conformational signature of the resulting tau fibril, including 2N4R, 0N3R, K18 and P301S tau variants. These results highlight the conformational polymorphism of tau fibrils, which is reflected in the wide range of associated neurological disorders. Furthermore, the analyses presented in this study provide a benchmark for the Raman spectroscopic characterization of tau strains, which may shed light on how the aggregation environment, cofactors and post-translational modifications influence tau conformation in vivo in future studies.

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