Sequence, Structure, and Dynamic Determinants of Hsp27 (HspB1) Equilibrium Dissociation Are Encoded by the N-Terminal Domain
- 20 January 2012
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 51 (6), 1257-1268
- https://doi.org/10.1021/bi2017624
Abstract
Human small heat shock protein 27 (Hsp27) undergoes concentration-dependent equilibrium dissociation from an ensemble of large oligomers to a dimer. This phenomenon plays a critical role in Hsp27 chaperone activity in vitro enabling high affinity binding to destabilized proteins. In vivo dissociation, which is regulated by phosphorylation, controls Hsp27 role in signaling pathways. In this study, we explore the sequence determinants of Hsp27 dissociation and define the structural basis underlying the increased affinity of Hsp27 dimers to client proteins. A systematic cysteine mutagenesis is carried out to identify residues in the N-terminal domain important for the equilibrium between Hsp27 oligomers and dimers. In addition, spin-labels were attached to the cysteine mutants to enable electron paramagnetic resonance (EPR) analysis of residue environment and solvent accessibility in the context of the large oligomers, upon dissociation to the dimer, and following complex formation with the model substrate T4 Lysozyme (T4L). The mutagenic analysis identifies residues that modulate the equilibrium dissociation in favor of the dimer. EPR analysis reveals that oligomer dissociation disrupts subunit contacts leading to the exposure of Hsp27 N-terminal domain to the aqueous solvent. Moreover, regions of this domain are highly dynamic with no evidence of a packed core. Interaction between T4L and sequences in this domain is inferred from transition of spin-labels to a buried environment in the substrate/Hsp27 complex. Together, the data provide the first structural analysis of sHSP dissociation and support a model of chaperone activity wherein unstructured and highly flexible regions in the N-terminal domain are critical for substrate binding.Keywords
This publication has 62 references indexed in Scilit:
- N-terminal domain of αB-crystallin provides a conformational switch for multimerization and structural heterogeneityProceedings of the National Academy of Sciences, 2011
- Protein Folding in the Cytoplasm and the Heat Shock ResponseCold Spring Harbor Perspectives in Biology, 2010
- Phosphorylation Dynamics Regulate Hsp27-Mediated Rescue of Neuronal Plasticity Deficits in Tau Transgenic MiceJournal of Neuroscience, 2010
- Solid-state NMR and SAXS studies provide a structural basis for the activation of αB-crystallin oligomersNature Structural & Molecular Biology, 2010
- Crystal structures of truncated alphaA and alphaB crystallins reveal structural mechanisms of polydispersity important for eye lens functionProtein Science, 2010
- Phosphorylation Dependence of Hsp27 Multimeric Size and Molecular Chaperone FunctionJournal of Biological Chemistry, 2009
- Structure and Mechanism of Protein Stability Sensors: Chaperone Activity of Small Heat Shock ProteinsBiochemistry, 2009
- Structure and Orientation of T4 Lysozyme Bound to the Small Heat Shock Protein α-CrystallinJournal of Molecular Biology, 2008
- Protein production by auto-induction in high-density shaking culturesProtein Expression and Purification, 2005
- CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choiceNucleic Acids Research, 1994