bioRxiv Science⌕ Search

Biology subjects

Janowska, M.

Publications and source records attributed to Janowska, M..

2 recordsLinked to original sources

Disorder with consequence: Phosphorylation sites in HSPB5 yield distinct structural outcomes

HSPB5, a member of the small heat shock protein family, acts as a first responder to cellular stress. One proposed mechanism of stress activation is phosphorylation. HSPB5 is phosphorylated at three sites--serine residues at positions 19, 45, and 59--located within its disordered N-terminal region (NTR). The extent of phosphorylation of the different sites leads to different cellular outcomes. HSPB5 forms polydisperse oligomers, where the NTR regions can either be exposed to the solvent or buried within the oligomer, forming internal contacts. We assessed the effect of single and triple phospho-mimicry on HSPB5 oligomeric properties. Our findings indicate that single phosphorylation causes localized and subtle changes in oligomer size, subunit exchange, hydrogen-deuterium protection patterns, and ability to delay aggregation of a known eye lens client, {gamma}D-crystallin. In contrast, the triple phosphomimic shows substantial structural and functional alterations. We provide a rationale for the increased chaperone activity observed in the S45D phosphomimic. Taken together, our results offer structural insights into how different phosphorylation events lead to distinct cellular outcomes.

biophysics↗

Integrated modeling of the Nexin-dynein regulatory complex reveals its regulatory mechanism

Cilia are hairlike protrusions that project from the surface of eukaryotic cells and play key roles in cell signaling and motility. Ciliary motility is regulated by the conserved nexin-dynein regulatory complex (N-DRC), which links adjacent doublet microtubules and regulates and coordinates the activity of outer doublet complexes. Despite its critical role in cilia motility, the assembly and molecular basis of the regulatory mechanism are poorly understood. Here, utilizing cryo-electron microscopy in conjunction with biochemical cross-linking and integrative modeling, we localized 12 DRC subunits in the N-DRC structure of Tetrahymena thermophila. We also found that the CCDC96/113 complex is in close contact with the N-DRC. In addition, we revealed that the N-DRC is associated with a network of coiled-coil proteins that most likely mediates N-DRC regulatory activity.

cell biology↗