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Tamgueney, G.

Publications and source records attributed to Tamgueney, G..

2 recordsLinked to original sources

Direct disassembly of alpha-syn preformed fibrils into native alpha-syn monomers by an all-D-peptide

Parkinsons disease (PD) is the most common neurodegenerative movement disorder worldwide. One of its central features is the neurodegeneration that starts in the substantia nigra and progressively tends to involve other brain regions. -Synuclein (-syn) and its aggregation during pathogenesis have been drawn into the center of attention, where especially soluble oligomeric and fibrillar structures are thought to play a key role in cell-to-cell transmission and induction of toxic effects. Here, we report the development of all-D-enantiomeric peptide ligands that bind monomeric -syn with high affinity, thereby stabilizing the physiological intrinsically disordered structure and preventing initiation of aggregation, and more important, disassembling already existing aggregates. This "anti prionic" mode of action (MoA) has the advantage over other MoAs that it eliminates the particles responsible for disease propagation directly and independently of the immune system, thereby restoring the physiological monomer. Based on mirror image phage display on the D-enantiomeric full-length -syn target, we identified SVD-1 and SVD-1a by next generation sequencing, Thioflavin-T screens and rational design. The compounds were analyzed with regard to their anti-aggregation potential and both compounds showed aggregation delaying as well as seed capacity reducing effects in de novo and seeded environments, respectively. High affinity towards the monomeric -syn, in the low nano- to picomolar KD range was identified by surface plasmon resonance (SPR). SVD-1a reduced toxic effects as well as intracellular seeding capacity of -syn pre-fromed fibrils (PFF) in cell culture. SVD-1a disassembled -syn PFF into monomers as identified by atomic force microscopy (AFM), time dependent dynamic light scattering (DLS) and size exclusion chromatography (SEC) analysis. The present work provides promising results on the development of lead compounds with this anti-prionic mode of action for treatment of Parkinsons disease and other synucleinopathies.

neuroscience↗

Rational design of structure-based vaccines targeting misfolded alpha-synuclein conformers of Parkinson's disease and related disorders

BackgroundSynucleinopathies, including Parkinsons disease, multiple system atrophy, and dementia with Lewy bodies, are neurodegenerative disorders caused by the accumulation of misfolded alpha-synuclein protein. Developing effective vaccines against synucleinopathies has been challenging due to the difficulty of stimulating an immune-specific response against alpha-synuclein, conferring neuroprotection without causing harmful autoimmune reactions, and selectively targeting only pathological forms of alpha-synuclein. Previous attempts using linear peptides and epitopes without control of the antigen structure for immunization failed in clinical trials. The immune system was unable to distinguish between the native alpha-synuclein and its amyloid form. ResultsThe prion domain of the fungal HET-s protein was selected as a scaffold to introduce select epitopes from the surface of alpha-synuclein fibrils. Four vaccine candidates were generated by introducing specific amino acid substitutions onto the surface of the scaffold protein in regions that showed structural similarity to alpha-synuclein fibril structures. Each vaccine candidate had unique amino acid substitutions that imitated a specific epitope from alpha-synuclein amyloid fibrils. The approach successfully mimicked the stacking of the parallel in-register beta-sheet structure seen in alpha-synuclein fibrils as the vaccine candidates were found to be structurally stable and self-assembling into the desired conformations. All vaccine candidates induced substantial levels of IgG antibodies that recognized pathological alpha-synuclein fibrils derived from a synucleinopathy mouse model. Furthermore, the resulting anti-sera recognized pathological alpha-synuclein aggregates in brain lysates from patients who died from dementia with Lewy bodies, multiple system atrophy, or Parkinsons disease, but did not recognize linear alpha-synuclein peptides. Each vaccine candidate induced a unique pattern of reactivity toward alpha-synuclein aggregates contained in distinct disease pathologies. ConclusionsThis new approach, based on the rational design of vaccines using the secondary and tertiary structure of alpha-synuclein amyloid fibrils and strict control over the exposed antigen structure used for immunization, as well as the ability to mimic aggregated alpha-synuclein, provides a promising avenue towards developing effective vaccines against alpha-synuclein fibrils, which may be crucial for the prevention and treatment of synucleinopathies.

biochemistry↗