Uncoupling of photoreceptor peripherin/rds fusogenic activity from biosynthesis, subunit assembly, and targeting: a

Linda M Ritter1, Kathleen Boesze-Battaglia, Beatrice M Tam

  • 1Eye Research Institute, Oakland University, Rochester, Michigan 48309, USA.

Insights

Two charged residues in peripherin/rds (P/rds) are crucial for photoreceptor outer segment membrane fusion, but not for protein targeting. This separation suggests altered P/rds proteins could cause retinal diseases.

Area of Science:

  • Molecular Biology
  • Retinal Cell Biology
  • Protein Biochemistry

Background:

  • Inherited RDS gene defects cause progressive retinal diseases.
  • Peripherin/rds (P/rds) protein is essential for photoreceptor outer segment (OS) structure.
  • P/rds's function in membrane fusion for OS renewal is not fully understood.

Purpose of the Study:

  • Investigate the role of two charged residues (Glu321, Lys324) in P/rds function.
  • Determine their importance in protein biosynthesis, localization, and model membrane interaction.

Main Methods:

  • Generated three P/rds mutant variants by neutralizing Glu321 and Lys324 charges.
  • Expressed and analyzed variants in COS-1 cells, E. coli, and transgenic Xenopus laevis.
  • Utilized Western blotting, sedimentation velocity, immunofluorescence, and lipid mixing assays.

Main Results:

  • Mutations did not affect P/rds biosynthesis or OS targeting in X. laevis.
  • Neutralizing Glu321 and Lys324 abolished the protein's ability to promote model membrane fusion.
  • OS targeting and fusogenic activities are separable functions of the P/rds C-terminus.

Conclusions:

  • Charged residues Glu321 and Lys324 are critical for P/rds fusogenic activity, not OS targeting.
  • Functional alterations in P/rds, despite normal assembly and targeting, may cause retinal pathology.
  • Separable determinants for OS targeting and membrane fusion identified in P/rds C-terminal region.