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Updated: Jun 19, 2026

Purification of the Dendritic Filopodia-rich Fraction
Published on: May 2, 2019
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.
Abstract:
Pmel17 is a transmembrane protein that mediates the early steps in the formation of melanosomes, the subcellular organelles of melanocytes in which melanin pigments are synthesized and stored. In melanosome precursor organelles, proteolytic fragments of Pmel17 form insoluble, amyloid-like fibrils upon which melanins are deposited during melanosome maturation. The mechanism(s) by which Pmel17 becomes competent to form amyloid are not fully understood. To better understand how amyloid formation is regulated, we have defined the domains within Pmel17 that promote fibril formation in vitro. Using purified recombinant fragments of Pmel17, we show that two regions, an N-terminal domain of unknown structure and a downstream domain with homology to a polycystic kidney disease-1 repeat, efficiently form amyloid in vitro. Analyses of fibrils formed in melanocytes confirm that the polycystic kidney disease-1 domain forms at least part of the physiological amyloid core. Interestingly, this same domain is also required for the intracellular trafficking of Pmel17 to multivesicular compartments within which fibrils begin to form. Although a domain of imperfect repeats (RPT) is required for fibril formation in vivo and is a component of fibrils in melanosomes, RPT is not necessary for fibril formation in vitro and in isolation is unable to adopt an amyloid fold in a physiologically relevant time frame. These data define the structural core of Pmel17 amyloid, imply that the RPT domain plays a regulatory role in timing amyloid conversion, and suggest that fibril formation might be physically linked with multivesicular body sorting.
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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