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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.
Abstract:
The premelanosomal protein (PMEL17) forms functional amyloid fibrils involved in melanin biosynthesis. Multiple PMEL17 isoforms are produced, two of which arise from excision of a cryptic intron within the amyloid-forming repeat (RPT) domain, leading to long (lRPT) and short (sRPT) isoforms with 10 and 7 imperfect repeats, respectively. Both lRPT and sRPT isoforms undergo similar pH-dependent mechanisms of amyloid formation and fibril dissolution. Here, using human PMEL17, we tested the hypothesis that the minor, but more aggregation-prone, sRPT facilitates amyloid formation of lRPT. We observed that cross-seeding by sRPT fibrils accelerates the rate of lRPT aggregation, resulting in propagation of an sRPT-like twisted fibril morphology, unlike the rodlike structure that lRPT normally adopts. This templating was specific, as the reversed reaction inhibited sRPT fibril formation. Despite displaying ultrastructural differences, self- and cross-seeded lRPT fibrils had a similar β-sheet structured core, revealed by Raman spectroscopy, limited-proteolysis, and fibril disaggregation experiments, suggesting the fibril twist is modulated by N-terminal residues outside the amyloid core. Interestingly, bioinformatics analysis of PMEL17 homologs from other mammals uncovered that long and short RPT isoforms are conserved among members of this phylogenetic group. Collectively, our results indicate that the short isoform of RPT serves as a "nucleator" of PMEL17 functional amyloid formation, mirroring how bacterial functional amyloids assemble during biofilm formation. Whereas bacteria regulate amyloid assembly by using individual genes within the same operon, we propose that the modulation of functional amyloid formation in higher organisms can be accomplished through alternative splicing.
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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