bioRxiv Science⌕ Search

Biology subjects

Huang, J. Y. C.

Publications and source records attributed to Huang, J. Y. C..

2 recordsLinked to original sources

Calcium modulates intramolecular long-range contacts to form a polymorphic α-synuclein A53T fibril

Human -synuclein (aSyn) is an intrinsically disordered protein, and aggregations of its amyloid fibrils are associated with Parkinsons disease (PD). Apart from familial aSyn mutations, accumulated environmental calcium exacerbates aSyn aggregation and accelerates symptoms in aging PD patients. Here, we explored the effects of Ca2+ ions on aSyn A53T, an aggregation-prone mutant variant, from disordered states to fibrillar structures. Paramagnetic nuclear magnetic resonance (NMR) revealed that binding of Ca2+ ions to the aSyn C-terminal (residues 110-140) relaxed the aSyn conformation, resulting in more aggressive fibrillogenesis. Cryo-electron microscopy structures of aSyn A53T with or without Ca2+ ion revealed substantial differences in amyloid folds and fibril assemblies. We characterized N1 (residues 61-66), N2 (residues 69-79), and N3 (residues 89-95) segments in the central non-amyloid {beta} component (NAC) crucial for forming localized structural contacts during early-step aggregation. Our work establishes the contacts governing aSyn misfolding from disordered monomer to aggregated fibril and provides insights into the structural changes elicited by Ca2+ ions.

biophysics↗

Structural basis of K11/K48-branched ubiquitin chain recognition by the human 26S proteasome

Beyond the canonical K48-linked homotypic polyubiquitination for proteasome-targeted proteolysis, K11/K48-branched ubiquitin (Ub) chains are involved in fast-tracking protein turnover during cell cycle progression and proteotoxic stress. Here, we report cryo-EM structures of human 26S proteasome in a complex with a K11/K48-branched Ub chain. The structures revealed a multivalent substrate recognition mechanism involving a hitherto unknown K11-linked Ub binding site at the groove formed by RPN2 and RPN10 in addition to the canonical K48-linkage binding site formed by RPN10 and RPT4/5 coiled-coil. Additionally, RPN2 recognizes an alternating K11-K48 linkage through a conserved motif similar to the K48-specific T1 binding site of RPN1. The insights gleaned from these structures explain the molecular mechanism underlying the recognition of the K11/K48 branched Ub as a priority signal in the ubiquitin-mediated proteasomal degradation.

biochemistry↗