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New insights on the structure of the mouse silver locus and on the function of the silver protein
F Solano1, M Martínez-Esparza, C Jiménez-Cervantes
1Department of Biochemistry and Molecular Biology, School of Medicine, University of Murcia, Spain. psolano@fcu.um.es
Abstract:
The melanosomal proteins encoded by the silver locus play important roles in melanogenesis. The human locus yields two proteins, PMEL17 and GP100, by alternative mRNA splicing. The mouse si locus was reported to encode a Pmel17 protein, and later gp87, a GP100 homologue. When we re-examined the products of wild-type and silver-mutant mouse si loci, RT-PCR of wild-type RNA and genomic DNA sequence accounted for gp87 but excluded the occurrence of Pmel17. Analysis of cDNA from the silver (si/si) melanocyte line, melan-si, showed that the pathogenic mutation is a G to A substitution at nt 1808, which yields a premature stop codon and a predicted protein truncated in the C-terminus. This was confirmed by reaction of a specific anti-gp87 antiserum with si/si melanocyte extracts. To further explore gp87 function, we compared the DHICA oxidase activity of extracts from B16, melan-si (heterozygous for the brown mutation and homozygous for the silver mutation) and Cloudman S91 cells (homozygous for the brown mutation), since both TRP1 and gp87 are thought to be involved in DHICA oxidation/polymerization. Cloudman extracts do not oxidize significantly DHICA and its methyl ester, supporting the involvement of native mouse TRP1 in DHICA oxidation. Extracts from B16 and melan-si do not show significant differences for the oxidation of free acid and methylated dihydroxyindoles, indicating that the mechanism is not decarboxylative. Melan-si extracts are very efficient in catalyzing dihydroxyindole oxidation, in spite of being heterozygous for the TRP1 mutation, consistent with a stablin effect for the wild-type gp87 protein. On the other hand, aggregated and degraded forms of that mutant gp87 protein are found in the cytosolic fraction of melan-si, suggesting that misrouting and aberrant processing of the gp87 and tyrosinase may also be related to the high DHICA oxidase activity of these melanocytes.
Insights
The silver locus mutation in mice produces a truncated gp87 protein, impacting melanogenesis. This study clarifies gp87
Area of Science:
- Melanogenesis research
- Molecular biology of pigmentation
- Cellular and molecular biology
Background:
- The silver locus encodes melanosomal proteins crucial for melanogenesis, with human genes yielding PMEL17 and GP100, and mouse loci producing Pmel17 and gp87.
- Previous studies suggested the mouse silver locus encodes Pmel17 and gp87, a GP100 homologue.
Discussion:
- The silver mutation (G to A at nt 1808) causes a premature stop codon, resulting in a truncated gp87 protein.
- Analysis of DHICA oxidase activity in B16, melan-si, and Cloudman S91 cells suggests TRP1's role in DHICA oxidation and a stabilizing effect of wild-type gp87.
- Aberrant processing and misrouting of mutant gp87 and tyrosinase in melan-si cells may contribute to elevated DHICA oxidase activity.
Key Insights:
- RT-PCR and genomic DNA sequencing confirm the mouse silver locus produces gp87 but not Pmel17.
- The silver mutation leads to a truncated gp87 protein, affecting melanocyte function.
- Melan-si cells exhibit high DHICA oxidase activity, potentially due to misrouted and degraded mutant gp87.
Outlook:
- Further investigation into the precise mechanisms of gp87 protein processing and its interaction with tyrosinase.
- Exploring the functional consequences of truncated gp87 in melanosome biogenesis and pigment production.
- Potential therapeutic targets for pigmentation disorders by modulating melanosomal protein function.