Lipid Selectivity, Orientation, and Extent of Membrane Binding of Nonacylated RP2

Éric Demers1, Élodie Boisselier1, Habib Horchani1

  • 1†CUO-Recherche, Hôpital du Saint-Sacrement, Centre de recherche du CHU de Québec and Département d'ophtalmologie, Faculté de médecine, and Regroupement stratégique PROTEO, Université Laval, Québec, Québec, Canada.

Biochemistry
|April 7, 2015
PubMed

Insights

Nonacylated Retinitis Pigmentosa 2 (RP2) protein preferentially binds to saturated phospholipids in photoreceptor membranes. This specific binding, driven by greater insertion, explains its altered localization in disease.

Area of Science:

  • Cell Biology
  • Biophysics
  • Ophthalmology

Background:

  • Retinitis Pigmentosa 2 (RP2) is crucial for photoreceptor function.
  • Dually acylated RP2 localizes to the plasma membrane.
  • RP2 mutations cause nonacylated protein mislocalization to intracellular organelles.

Purpose of the Study:

  • Investigate the membrane binding properties of nonacylated RP2 (naRP2).
  • Determine parameters influencing naRP2's interaction with photoreceptor membranes.
  • Understand the molecular basis for naRP2 mislocalization.

Main Methods:

  • Maximal insertion pressure measurements of naRP2 with phospholipid monolayers.
  • Polarization modulation infrared reflection absorption spectroscopy (PM-IRRAS) to analyze secondary structure.
  • Ellipsometric measurements to quantify protein insertion depth.

Main Results:

  • naRP2 exhibits preferential binding to saturated phospholipid monolayers.
  • The protein's β-helix orientation (60°) remains constant upon binding.
  • naRP2 inserts more deeply into saturated than polyunsaturated phospholipid monolayers.

Conclusions:

  • naRP2's affinity for saturated phospholipids is due to increased insertion depth.
  • Altered membrane binding contributes to RP2 mislocalization in disease.
  • Findings provide insights into RP2 function and dysfunction in retinitis pigmentosa.

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