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Sekiyama, N.

Publications and source records attributed to Sekiyama, N..

2 recordsLinked to original sources

Sequence-encoded conformational biases shape self-assembly modes of intrinsically disordered proteins

Self-assembly of intrinsically disordered proteins (IDPs) underlies cellular functions and disease pathogenesis. This process is mediated by two intermolecular interaction modes: transient point-to-point contacts described by the sticker-and-spacer framework, and persistent surface-to-surface contacts proposed in the cross-{beta} hypothesis. We investigated the molecular basis of these modes in the context of conformational biases, defined as sequence-encoded structural preferences of local segments. Using a five-residue model, we generated lag-series IDPs from the TIA-1 prion-like domain by systematically modulating conformational biases while preserving amino acid composition. The lag-series IDPs demonstrated distinct condensate properties and varying capacities for amyloid fibril formation. Their structural analyses revealed that strongly biased regions preferentially adopt extended structures, including {beta}-strands, and the spacing between these regions influences metastable {beta}-sheet formation. Our findings demonstrate that local conformational biases shape interaction modes of IDPs, thereby linking sequence to condensate properties and amyloid fibril formation. Significance StatementProteins fold into three-dimensional structures defined by their amino acid sequences. In contrast, intrinsically disordered proteins (IDPs) lack stable structures, yet their sequences encode unique self-assembly behaviors, including phase separation and amyloid fibril formation. Can such behaviors be explained within structure-based frameworks? Using a five-residue model, we showed that IDP sequences encode local structural preferences, termed conformational biases, within short segments. These biases determine whether segments engage in transient point-to-point interactions driving phase separation or persistent surface-to-surface interactions leading to amyloid fibril formation. By bridging sequence, structure, and interaction modes, our work provides a comprehensive mechanism for self-assembly and conceptual tools for understanding IDP-related biological functions and disease mechanisms.

biophysics↗

From Monomers to Oligomers: Structural Mechanism of Receptor-Triggered MyD88 Assembly in Innate Immune Signaling

MyD88 plays a pivotal role in Toll-like receptor (TLR) and interleukin-1 family signaling through its oligomerization upon receptor activation, leading to downstream protein recruitment. The Toll/interleukin-1 receptor domain of MyD88 (TIRMyD88) is responsible for this receptor-mediated oligomerization, but the detailed mechanism involved remains elusive. We investigated the structure of TIRMyD88 oligomers and their interactions with TLRs. Cryoelectron microscopy revealed that tandemly arrayed TIRMyD88 subunits formed an antiparallel double-stranded filament that could further form rings and cylindrical filaments. Moreover, the self-assembly of TIRMyD88 in vitro was markedly accelerated by dimeric rather than monomeric receptor TIRs, possibly reflecting the signal initiation step in vivo. High-speed atomic force microscopy further captured the dynamic processes of oligomerization of TIRMyD88, in addition to its direct interaction with the receptor TIRs. Based on these results, a novel regulatory mechanism of TIRMyD88 oligomerization underlying the signal initiation step was revealed.

biophysics↗