N-terminal domains elicit formation of functional Pmel17 amyloid fibrils

Brenda Watt1, Guillaume van Niel, Douglas M Fowler

  • 1Departments of Pathology and Laboratory Medicine, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.

Insights

Pmel17 protein fragments form amyloid fibrils essential for melanosome formation. The polycystic kidney disease-1 domain drives fibril assembly and protein trafficking, while the RPT domain regulates timing.

Area of Science:

  • Cell Biology
  • Biochemistry
  • Structural Biology

Background:

  • Pmel17 is crucial for melanosome biogenesis, where melanin pigments are synthesized.
  • Proteolytic Pmel17 fragments form amyloid-like fibrils that serve as scaffolds for melanin deposition.
  • The precise mechanisms regulating Pmel17 amyloid formation remain unclear.

Purpose of the Study:

  • To identify specific domains within Pmel17 responsible for in vitro fibril formation.
  • To elucidate the role of different Pmel17 domains in amyloidogenesis and intracellular trafficking.
  • To understand the regulation of Pmel17 amyloid formation within melanocytes.

Main Methods:

  • Purification and in vitro analysis of recombinant Pmel17 fragments.
  • Analysis of Pmel17 fibrils formed in melanocytes.
  • Investigating the role of specific domains (N-terminal, PKD-1, RPT) in fibril formation and trafficking.

Main Results:

  • Two regions, an N-terminal domain and a polycystic kidney disease-1 (PKD-1) repeat domain, efficiently form amyloid in vitro.
  • The PKD-1 domain constitutes a significant part of the physiological amyloid core in melanocytes.
  • The PKD-1 domain is essential for Pmel17 trafficking to multivesicular compartments where fibril formation initiates.
  • The RPT domain, while required in vivo, is not essential for in vitro fibril formation and does not form amyloid in isolation.

Conclusions:

  • The PKD-1 domain defines the structural core of Pmel17 amyloid.
  • The RPT domain appears to play a regulatory role in the timing of Pmel17 amyloid conversion.
  • Pmel17 fibril formation may be intrinsically linked to its sorting into multivesicular bodies.

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