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The M intermediate of Pharaonis phoborhodopsin is photoactive

S P Balashov1, M Sumi, N Kamo

  • 1Center for Biophysics and Computational Biology, Department of Cell and Structural Biology, University of Illinois at Urbana-Champaign, 61801, USA. sbalasho@uiuc.edu

Biophysical Journal
|May 29, 2000
PubMed

Insights

Phoborhodopsin (pR) can be converted from its M intermediate back to its initial state using light. This photoconversion reveals new intermediates and provides insights into signal transduction in halobacteria.

Area of Science:

  • Photochemistry
  • Biophysics
  • Microbiology

Background:

  • Phoborhodopsin (pR), also known as sensory rhodopsin II, is a retinal protein crucial for negative phototaxis in halobacteria.
  • Light absorption by pR generates a short-wavelength intermediate (M), which is believed to trigger the cell's motility response.
  • The M intermediate typically decays thermally to the initial pigment, completing the photocycle.

Purpose of the Study:

  • To investigate whether the M intermediate of phoborhodopsin can be converted back to its initial state via light illumination.
  • To characterize the intermediates and photoproducts formed during the light-induced photoconversion of the M intermediate.
  • To elucidate the mechanism of signal transduction in halobacteria mediated by phoborhodopsin.

Main Methods:

  • Trapping the M intermediate of pharaonis phoborhodopsin (ppR) using yellow light (>450 nm) at -50°C in a water-glycerol suspension.
  • Illuminating the trapped M intermediate with 380-nm light at -60°C to induce photoconversion.
  • Analyzing spectral changes (UV absorption) and identifying intermediates (M', ppR', ppR'(504)) at low temperatures (-160°C to -110°C) using spectroscopy.

Main Results:

  • The M intermediate of ppR was successfully converted to the initial state (λmax 501 nm) upon illumination with 380-nm light at -60°C.
  • Photoconversion and thermal transformations revealed new intermediates: M'(404) with distinct vibronic bands, ppR'(496) (blue-shifted), and ppR'(504) (red-shifted).
  • Photoexcitation of the M intermediate increased Schiff base proton affinity, followed by reprotonation during the M' to ppR' transition, likely involving the counterion Asp(75).

Conclusions:

  • Light can reverse the transformation of the M intermediate of phoborhodopsin back to its initial state, offering a novel photoreception pathway.
  • The study identified multiple transient intermediates during M photoconversion, suggesting pigment heterogeneity and complex reaction mechanisms.
  • Understanding these photoconversion pathways is crucial for deciphering the signal transduction mechanisms employed by phoborhodopsin in halobacteria.

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