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Updated: Jan 29, 2026

Chemical Modification of the Tryptophan Residue in a Recombinant Ca2+-ATPase N-domain for Studying Tryptophan-ANS FRET
Published on: October 9, 2021
pH-Dependent fibril maturation of a Pmel17 repeat domain isoform revealed by tryptophan fluorescence
Dexter N Dean1, Jennifer C Lee1
1Laboratory of Protein Conformation and Dynamics, Biochemistry and Biophysics Center, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD 20892, United States.
Abstract:
The pre-melanosomal protein (Pmel17) aggregates within melanosomes to form functional amyloid fibrils that facilitate melanin polymerization. The repeat domain (RPT) of Pmel17 fibrillates under strict acidic melanosomal pH. Alternative splicing results in a shortened repeat domain (sRPT), which also forms amyloid fibrils. Here, we explored the effects of pH and protein concentration on sRPT aggregation by monitoring the intrinsic fluorescence of the sole tryptophan at position 381 (381W). 381W emission properties revealed changes of local environment polarity for sRPT fibrils formed at different pH. At pH 4, fibrils formed rapidly with no lag phase. A high 381W intensity was observed with a slight blue shift (10 nm). These fibrils underwent further structural rearrangements at intermediate pH (5-6), mirroring that of melanosome maturation, which initiates at pH 4 and increases to near neutral pH. In contrast, typical sigmoidal kinetics were observed at pH 6 with slower rates and 381W exhibited quenched emission. Interestingly, biphasic kinetics were observed at pH 5 in a protein concentration-dependent manner. A large 381W blue shift (23 nm) was measured, indicating a more hydrophobic environment for fibrils made at pH 5. Consistent with 381W fluorescence, Raman spectroscopy revealed molecular level perturbations in sRPT fibrils that were not evident from circular dichroism, transmission electron microscopy, or limited proteolysis analysis. Finally, sRPT fibrils did not form at pH ≥7 and preformed fibrils rapidly disaggregated under these solution conditions. Collectively, this work yields mechanistic insights into pH-dependent sRPT aggregation in the context of melanosome maturation.
Insights
The shortened repeat domain (sRPT) of Pmel17 protein forms amyloid fibrils. Its aggregation is pH-dependent, influencing melanosome maturation and melanin production.
Area of Science:
- Biochemistry
- Structural Biology
- Cell Biology
Background:
- Pre-melanosomal protein 17 (Pmel17) forms amyloid fibrils essential for melanin production within melanosomes.
- The repeat domain (RPT) of Pmel17 aggregates under acidic conditions, and alternative splicing yields a shortened repeat domain (sRPT) that also forms fibrils.
Purpose of the Study:
- To investigate the impact of pH and protein concentration on the aggregation kinetics and structural properties of the sRPT domain.
- To elucidate the role of sRPT aggregation in the context of melanosome maturation.
Main Methods:
- Monitoring intrinsic tryptophan fluorescence (381W) to probe local environment polarity and aggregation kinetics.
- Utilizing Raman spectroscopy, circular dichroism, transmission electron microscopy, and limited proteolysis to analyze fibril structure.
Main Results:
- sRPT aggregation kinetics and 381W fluorescence are highly pH-dependent, with rapid fibril formation at pH 4 and slower, sigmoidal kinetics at pH 6.
- Protein concentration influences aggregation at pH 5, leading to biphasic kinetics and a more hydrophobic fibril environment.
- Raman spectroscopy revealed molecular-level structural changes in sRPT fibrils not detected by other methods.
- sRPT fibrils do not form at pH ≥7 and disaggregate under neutral conditions.
Conclusions:
- pH is a critical regulator of sRPT amyloid fibril formation, influencing aggregation rates and fibril structure.
- The observed pH-dependent aggregation of sRPT mirrors the pH changes during melanosome maturation.
- These findings provide mechanistic insights into Pmel17's role in melanogenesis.
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