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sun, c.

Publications and source records attributed to sun, c..

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AI-Guided Dual Strategy for Peptide Inhibitor Design Targeting Structural Polymorphs of α-Synuclein Fibrils

One of the most important events in the pathogenesis of Parkinsons disease and related disorders is the formation of abnormal fibrils via the aggregation of -synuclein (-syn) with {beta}-sheet-rich organization. The use of Cryo-EM has uncovered different polymorphs of the fibrils, each having unique structural interfaces, which has made the design of inhibitors even more challenging. Here, a structure-guided framework incorporating AI-assisted peptide generation was set up with the objective of targeting the conserved {beta}-sheet motifs that are present in various forms of -syn fibrils. The ProteinMPNN, then, AlphaFold-Multimer, and PepMLM were employed to create short peptides that would interfere with the growth of the fibrils. The two selected candidates, T1 and S1, showed a significant inhibition of -syn fibrillation, as measured by a decrease in the ThT fluorescence and the generation of either amorphous or fragmented aggregates. The inhibitory potency of the peptides was in line with the predicted interface energies. This research work illustrates that the integration of cryo-EM structural knowledge with the computational design method leads to the quick discovery of the wide-spectrum peptide inhibitors, which is a good strategy for the precision treatment of neurodegenerative diseases.

neuroscience↗

Cryo-EM structure of amyloid fibril formed by α-synuclein familial A53E mutation

Synucleinopathies, including Parkinsons disease (PD), dementia with Lewy bodies (DLB), and multiple systems atrophy (MSA) have the same hallmark pathologic feature of misfolded -synuclein protein accumulation in the brain. PD patients who carry -syn hereditary mutations tend to have an earlier onset and more severe clinical symptoms and pathology than sporadic PD patients who carry wild-type (WT) -syn. Therefore, revealing the structural effect of -syn hereditary mutations on the wild-type fibril structure can help us understand synucleinopathies structural basis. Here, we present a 3.38 [A] cryo-electron microscopy structure of -synuclein fibrils containing the hereditary A53E mutation. The A53E fibril is symmetrically composed of two protofilaments, as are many other synucleopathic structures - including WT. Interestingly, the interface between the protofilaments in A53E has significantly less buried surface area than all other documented fibril structures of -syn and its other mutants. The A53E fibril also exhibits slower formation/growth in in vitro fibrillation experiment compared to other mutants. This implies that the structural differences - both in the protofilament and between each protofilament of A53E - change the aggregation mechanism, or in the least, its kinetics of formation. These differences influence the molecular characteristics of each fibril mutant and likely plays a macro-scale role in progressing one clinical pathology over another.

biophysics↗