Search bioRxiv⌕ Search

Biology subjects

Jaudzems, K.

Publications and source records attributed to Jaudzems, K..

2 recordsLinked to original sources

Structural basis of epitope recognition by anti-alpha synuclein antibodies MJFR14-6-4-2

Intraneuronal -synuclein inclusions in the brain are hallmarks of so-called Lewy body diseases - Parkinsons disease and Dementia with Lewy bodies. Lewy bodies are cytoplasmic inclusions, containing mainly aggregated -synuclein together with some other proteins including ubiquitin, neurofilament protein, and alpha B crystallin. In its monomeric form, -synuclein is predominantly localized in nerve terminals, regulating neuronal transmission and synaptic vesicle trafficking. Monomeric -synuclein lacks a well-defined three-dimensional structure and is considered an intrinsically disordered protein. However, in diseased cells -synuclein aggregates into oligomeric and fibrillar amyloid species, which can be detected using aggregate-specific antibodies. Here we investigate the aggregate specificity of rabbit monoclonal MJFR14-6-4-2 antibodies, preferentially recognizing aggregated -synuclein species. We conclude that partial masking of epitope in unstructured monomer in combination with a high local concentration of epitopes instead of distinct epitope conformation is the main reason for apparent selectivity towards various aggregates, including oligomers, fibrils, and artificial virus-like particle constructs bearing multiple copies of the MJFR14-6-4-2 epitope. Based on the structural insight, we were able to express mutant -synuclein that when fibrillated are unable to bind MJFR14-6-4-2. Using these "stealth" fibrils as a tool for seeding cellular -synuclein aggregation, provides superior signal/noise ratio for detection of cellular -synuclein aggregates by MJFR14-6-4-2 immunocytochemistry. Our data provide a molecular level understanding of specific recognition of toxic amyloid oligomers, which is critical for the development of inhibitors against synucleinopathies.

neuroscience↗

dGAE(297-391) tau fragment promotes formation of CTE-like full-length tau filaments

The microtubule-associated protein tau forms disease-specific filamentous aggregates in several different neurodegenerative diseases. In order to understand how tau undergoes misfolding into a specific filament type and to control this process for drug development purposes, it is crucial to study in vitro tau aggregation methods and investigate the structures of the obtained filaments at the atomic level. Here, we used the tau fragment dGAE, which aggregates spontaneously, to seed the formation of full-length tau filaments. The structures of dGAE and full-length tau filaments were investigated by solid-state MAS NMR, showing that dGAE allows propagation of a chronic traumatic encephalopathy (CTE)-like fold to the full-length tau. The obtained filaments efficiently seeded tau aggregation in HEK293T cells. This work demonstrates that in vitro preparation of disease-specific types of full-length tau filaments is feasible.

biophysics↗