Modulating functional amyloid formation via alternative splicing of the premelanosomal protein PMEL17

Dexter N Dean1, Jennifer C Lee1

  • 1Laboratory of Protein Conformation and Dynamics, Biochemistry and Biophysics Center, NHLBI, National Institutes of Health, Bethesda, Maryland 20892.

Insights

The short premelanosomal protein 17 (sRPT) isoform acts as a nucleator, accelerating amyloid formation of the long isoform (lRPT). This process, driven by alternative splicing, influences melanin biosynthesis in mammals.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • Premelanosomal protein 17 (PMEL17) forms functional amyloid fibrils essential for melanin biosynthesis.
  • Alternative splicing generates long (lRPT) and short (sRPT) PMEL17 isoforms with differing numbers of imperfect repeats.
  • Both isoforms exhibit pH-dependent amyloid formation and dissolution.

Purpose of the Study:

  • To investigate if the aggregation-prone sRPT isoform facilitates amyloid formation of the lRPT isoform.
  • To elucidate the structural basis and regulation of PMEL17 functional amyloid assembly.

Main Methods:

  • Cross-seeding experiments using human PMEL17 lRPT and sRPT isoforms.
  • Analysis of fibril morphology using electron microscopy (implied).
  • Spectroscopic (Raman) and biochemical (limited proteolysis, disaggregation) techniques to probe fibril structure.
  • Bioinformatics analysis of PMEL17 homologs across mammalian species.

Main Results:

  • sRPT fibrils accelerated lRPT aggregation and templated a twisted morphology, distinct from the normal rodlike lRPT structure.
  • This cross-seeding effect was specific, with reversed seeding inhibiting sRPT formation.
  • Despite morphological differences, both self- and cross-seeded fibrils shared a similar beta-sheet core, indicating N-terminal modulation of fibril twist.
  • Conserved long and short RPT isoforms were identified in mammalian PMEL17 homologs.

Conclusions:

  • The sRPT isoform acts as a nucleator for PMEL17 functional amyloid formation, analogous to bacterial biofilm assembly.
  • Alternative splicing is proposed as a mechanism for modulating functional amyloid formation in higher organisms.
  • The findings reveal a novel regulatory pathway for melanin biosynthesis involving isoform-specific amyloid templating.

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