Hidden dynamics in the unfolding of individual bacteriorhodopsins

ORAL

Abstract

Protein folding occurs as a set of transitions between structural states within an energy landscape. An oversimplified view of the folding process emerges when transiently populated states are undetected because of limited instrumental resolution. Using force spectroscopy optimized for 1-µs resolution, we reexamined the unfolding of individual bacteriorhodopsin (bR) molecules in native lipid bilayers. The experimental data reveal the unfolding pathway in unprecedented detail. Numerous newly detected intermediates—many separated by as few as 2–3 amino acids—exhibited complex dynamics, including frequent refolding and state occupancies of <10 µs. Equilibrium measurements between such states enabled the folding free-energy landscape to be deduced. These results sharpen the picture of the mechanical unfolding of membrane proteins, and, more broadly, enable experimental access to previously obscured protein dynamics.

*This work was supported by a National Institute of Health Molecular Biophysics Training Grant Slot to M.S. (T32 GM-065103), a National Research Council Fellowship to D.E., the National Science Foundation (DBI-135398; Phys-1125844), and NIST.

Presenters

  • Thomas Perkins

    • JILA, NIST & Univ of Colorado

Authors

  • Hao Yu

    • JILA, NIST & Univ of Colorado
  • Matthewy Siewny

    • JILA, NIST & Univ of Colorado
  • Devin Edwards

    • JILA, NIST & Univ of Colorado
  • Thomas Perkins

    • JILA, NIST & Univ of Colorado