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Tanzusch, K.

Publications and source records attributed to Tanzusch, K..

2 recordsLinked to original sources

Metal-induced energy transfer uncovers activation-induced axial reorganization of signaling complexes inside cells

Transmembrane signaling mediated by cytokine receptors orchestrates key cellular processes such as proliferation, differentiation, and immune responses. While numerous high-resolution structures of cytokine receptor ectodomains are available, the structural organization of the largely disordered intracellular domain (ICD) has remained unclear. Here, we interrogate the axial organization of cytokine receptor signaling complexes at the plasma membrane by metal-induced energy transfer (MIET). For this purpose, we leveraged biofunctionalized nanodot arrays (bNDAs) to capture cell surface receptors at a defined distance from the substrate. Readout by fluorescence lifetime imaging microscopy enabled quantifying axial distances of proteins in the plasma membrane of cells at both ensemble and single-molecule levels with a resolution of [~]1 nm. Using the prototypic, biomedically relevant class I cytokine receptor GP130 as a model system, we uncover by MIET that the ICD extends randomly into the cytosol in the resting state, but surprisingly undergoes an axial compaction upon signal activation. These results demonstrate the potential of bNDA-supported MIET for resolving the axial architecture of signaling complexes within the cellular context.

biophysics↗

Ultrastructural organization and dynamics of TIRAP filaments

TIRAP (MAL) is an essential adaptor protein in Toll-like receptor (TLR) signaling, bridging activated receptors to downstream effectors such as MyD88 to initiate pro-inflammatory responses. Assembly of TLR signaling complexes is driven by homotypic interactions between Toll/interleukin-1 receptor (TIR) domains. Although previous studies demonstrated that isolated TIR domains of TIRAP can form filaments in vitro, the structural organization and membrane-dependent regulation of full-length TIRAP remained poorly understood. Here, we report a 3.3 [A] cryo-electron microscopy (cryo-EM) structure of full-length human TIRAP filaments combined with the first super-resolution imaging of TIRAP assemblies at the plasma membrane of cells. Using complementary lipid-binding assays on supported lipid bilayers (SLBs) and functional live-cell nanopatterning analysis, we identify a critical role of the N-terminal phosphoinositide-binding motif (PBM) in governing filament geometry and assembly dynamics, plasma membrane partitioning, and effector coupling capacity. Collectively, our multimodal analysis provides a comprehensive structure-function framework of TIRAP, highlighting the intricate features of the PBM as a regulator controlling spatiotemporally defined filament assembly and efficient signal induction at the plasma membrane.

biophysics↗