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.
Abstract:
Retinitis pigmentosa 2 (RP2) is an ubiquitary protein of 350 residues. The N-terminus of RP2 contains putative sites of myristoylation and palmitoylation. The dually acylated protein is predominantly localized to the plasma membrane. However, clinically occurring substitution mutations of RP2 in photoreceptors lead to the expression of a nonacylated protein, which was shown to be misrouted to intracellular organelles using different cell lines. However, the parameters responsible for the modulation of the membrane binding of nonacylated RP2 (naRP2) are still largely unknown. The maximal insertion pressure of naRP2 has thus been determined after its injection into the subphase underneath monolayers of phospholipids, which are typical of photoreceptor membranes. These data demonstrated that naRP2 shows a preferential binding to saturated phospholipid monolayers. Moreover, polarization modulation infrared reflection absorption spectroscopy has allowed comparison of the secondary structure of this protein in solution and upon binding to phospholipid monolayers. In addition, simulations of these spectra have allowed to determine that the β-helix of naRP2 has an orientation of 60° with respect to the normal, which remains unchanged regardless of the type of phospholipid. Finally, ellipsometric measurements of naRP2 demonstrated that its particular affinity for saturated phospholipids can be explained by its larger extent of insertion in this phospholipid monolayer compared to that in polyunsaturated phospholipid monolayers.
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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