4.6 Article

Hydrogen exchange of monomeric α-synuclein shows unfolded structure persists at physiological temperature and is independent of molecular crowding in Escherichia coli

Journal

PROTEIN SCIENCE
Volume 17, Issue 8, Pages 1434-1445

Publisher

WILEY
DOI: 10.1110/ps.033803.107

Keywords

Parkinson's disease; intrinsically unfolded proteins; amyloid; exchange broadening; in-cell NMR; membrane proteins

Funding

  1. NCRR NIH HHS [1S10RR016760, S10 RR016760] Funding Source: Medline

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Amide proton NMR signals from the N- terminal domain of monomeric a- synuclein ( aS) are lost when the sample temperature is raised from 10 C to 35 C at pH 7.4. Although the temperature- induced effects have been attributed to conformational exchange caused by an increase in a- helix structure, we show that the loss of signals is due to fast amide proton exchange. At low ionic strength, hydrogen exchange rates are faster for the N- terminal segment of aS than for the acidic C- terminal domain. When the salt concentration is raised to 300 mM, exchange rates increase throughout the protein and become similar for the N- and C- terminal domains. This indicates that the enhanced protection of amide protons from the C- terminal domain at low salt is electrostatic in nature. Ca chemical shift data point to < 10% residual a- helix structure at 10 C and 35 C. Conformational exchange contributions to R2 are negligible at both temperatures. In contrast to the situation in vitro, the majority of amide protons are observed at 37 C in 1 H- 15 N HSQC spectra of aS encapsulated within living Escherichia coli cells. Our finding that temperature effects on aS NMR spectra can be explained by hydrogen exchange obviates the need to invoke special cellular factors. The retention of signals is likely due to slowed hydrogen exchange caused by the lowered intracellular pH of high- density E. coli cultures. Taken together, our results emphasize that aS remains predominantly unfolded at physiological temperature and pH - an important conclusion for mechanistic models of the association of aS with membranes and fibrils.

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