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Quddus, A.

Publications and source records attributed to Quddus, A..

2 recordsLinked to original sources

Structure-specific Mini-Prion Model for Alzheimer's Disease Tau Fibrils

A critical discovery of the past decade is that tau protein fibrils adopt disease-specific hallmark structures in each tauopathy. The faithful generation of synthetic fibrils adopting hallmark structures that can serve as targets for developing diagnostic and/or therapeutic strategies remains a grand challenge. We report on a rational design of synthetic fibrils built of a short peptide that adopts a critical structural motif in tauopathy fibrils found in Alzheimers Disease (AD) and Chronic Traumatic Encephalopathy (CTE). They serve as minimal prions with exquisite seeding competency, in vitro and in tau biosensor cells, for recruiting tau constructs ten times larger its size en route to AD or CTE fibril structures. We demonstrate that the generation of AD and CTE-like fibril structures is dramatically catalyzed in the presence of mini-AD prions and further influenced by salt composition in solution. Double Electron-Electron Resonance studies confirmed the preservation of AD-like folds across multi-generational seeding. Fibrils formed with the full AD/CTE-like core show strong seeding competency, with their templating effect dominating over the choice of salt composition that tunes the initial selection of AD- and CTE-like fibril populations. The mini-AD prions serve as a potent catalyst with templating capabilities that offer a novel strategy to design pathological tau fibril models.

biophysics↗

CBD and PSP cell-passaged Tau Seeds Generate Heterogeneous Fibrils with A Subpopulation Adopting Disease Folds

The recent discovery by cryo-electron microscopy (cryo-EM) that the neuropathological hallmarks of different tauopathies, including Alzheimers disease, corticobasal degeneration (CBD), and progressive supranuclear palsy (PSP), are caused by unique misfolded conformations of the protein tau is among the most profound developments in neurodegenerative disease research. To capitalize on these discoveries for therapeutic development, one must achieve in vitro replication of tau fibrils that adopt the representative tauopathy disease folds, which represents a grand challenge for the field. An widely used approach is seeded propagation using pathological tau fibrils derived from post-mortem patients in biosensor cells that expresses a fragment of the tau protein, known as K18 or Tau4RD, containing mainly the microtubule-binding repeat domain of tau as the substrate. The new insight from cryo-EM raised the question whether the Tau4RD fragment is capable of adopting the specific tau folds found in CBD and PSP patient fibrils, and whether cell-passaged and amplified tau fibrils can be used as seeds to achieve cell-free assembly of recombinant 4R tau into fibrils without the addition of any cofactors. Using Double Electron Electron Resonance (DEER) spectroscopy, we discovered that cell-passaged pathological seeds generate heterogeneous fibrils that are distinct between the CBD and PSP lysate-seeded fibrils. These fibrils are also distinct from heparin-induced tau fibril populations. Moreover, the lysate-seeded fibrils contain a characteristic sub-population that resembles the disease fold corresponding to the respective starting patient sample. These findings indicate that templated propagation using CBD and PSP patient-derived fibrils is possible with a tau fragment that does not contain the entire pathological fibril core, and that additional mechanisms must be tuned to converge to a homogeneous fibril population.

biophysics↗