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Published on: September 28, 2019
Mutations in or near the transmembrane domain alter PMEL amyloid formation from functional to pathogenic
Brenda Watt1, Danièle Tenza, Mark A Lemmon
1Department of Pathology and Laboratory Medicine and Department of Physiology, University of Pennsylvania, Philadelphia, Pennsylvania, United States of America.
Abstract:
PMEL is a pigment cell-specific protein that forms physiological amyloid fibrils upon which melanins ultimately deposit in the lumen of the pigment organelle, the melanosome. Whereas hypomorphic PMEL mutations in several species result in a mild pigment dilution that is inherited in a recessive manner, PMEL alleles found in the Dominant white (DW) chicken and Silver horse (HoSi)--which bear mutations that alter the PMEL transmembrane domain (TMD) and that are thus outside the amyloid core--are associated with a striking loss of pigmentation that is inherited in a dominant fashion. Here we show that the DW and HoSi mutations alter PMEL TMD oligomerization and/or association with membranes, with consequent formation of aberrantly packed fibrils. The aberrant fibrils are associated with a loss of pigmentation in cultured melanocytes, suggesting that they inhibit melanin production and/or melanosome integrity. A secondary mutation in the Smoky chicken, which reverts the dominant DW phenotype, prevents the accumulation of PMEL in fibrillogenic compartments and thus averts DW-associated pigment loss; a secondary mutation found in the Dun chicken likely dampens a HoSi-like dominant mutation in a similar manner. We propose that the DW and HoSi mutations alter the normally benign amyloid to a pathogenic form that antagonizes melanosome function, and that the secondary mutations found in the Smoky and Dun chickens revert or dampen pathogenicity by functioning as null alleles, thus preventing the formation of aberrant fibrils. We speculate that PMEL mutations can model the conversion between physiological and pathological amyloid.
Insights
Dominant white (DW) and Silver horse (HoSi) mutations in the pigment-melanin (PMEL) gene create aberrant amyloid fibrils, causing significant pigment loss. Secondary mutations revert this by preventing aberrant fibril formation.
Area of Science:
- Genetics
- Cell Biology
- Biochemistry
Background:
- PMEL protein forms physiological amyloid fibrils in melanosomes for melanin deposition.
- Recessive PMEL mutations cause mild pigment dilution.
- Dominant mutations in PMEL's transmembrane domain (TMD) cause striking pigment loss.
Purpose of the Study:
- Investigate the mechanism by which dominant PMEL mutations (DW, HoSi) cause pigment loss.
- Determine the role of PMEL TMD in fibril formation and melanosome function.
- Analyze the effect of secondary mutations in Smoky and Dun chickens.
Main Methods:
- Analysis of PMEL mutations in Dominant white (DW) chicken and Silver horse (HoSi).
- Studying PMEL TMD oligomerization and membrane association.
- Investigating pigment loss in cultured melanocytes.
- Examining secondary mutations in Smoky and Dun chickens.
Main Results:
- DW and HoSi mutations alter PMEL TMD oligomerization and membrane association, leading to aberrantly packed fibrils.
- Aberrant PMEL fibrils inhibit melanin production and/or melanosome integrity.
- Secondary mutations in Smoky and Dun chickens prevent PMEL accumulation in fibrillogenic compartments, averting pigment loss.
Conclusions:
- Dominant PMEL mutations convert benign amyloid into a pathogenic form that disrupts melanosome function.
- Secondary mutations act as null alleles, preventing aberrant fibril formation and pigment loss.
- PMEL mutations serve as a model for the transition between physiological and pathological amyloid.
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