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The Lambda Select cII Mutation Detection System
Published on: April 26, 2018
Activating cysteinyl leukotriene receptor 2 (CYSLTR2) mutations in blue nevi
Inga Möller1, Rajmohan Murali2, Hansgeorg Müller3
1Department of Dermatology, University Hospital Essen, West German Cancer Center, University Duisburg-Essen and the German Cancer Consortium (DKTK), Essen, Germany.
Abstract:
Blue nevi are common melanocytic tumors arising in the dermal layer of the skin. Similar to uveal melanomas, blue nevi frequently harbor GNAQ and GNA11 mutations. Recently, recurrent CYSLTR2 and PLCB4 mutations were identified in uveal melanomas not harboring GNAQ or GNA11 mutations. All four genes (GNAQ, GNA11, CYSLTR2, and PLCB4) code for proteins involved in the same signaling pathway, which is activated by mutations in these genes. Given the related functional consequences of these mutations and the known genetic similarities between uveal melanoma and blue nevi, we analyzed a cohort of blue nevi to investigate whether CYSLTR2 and PLCB4 mutations occur in tumors lacking GNAQ or GNA11 mutations (as in uveal melanoma). A targeted next-generation sequencing assay covering known activating mutations in GNAQ, GNA11, CYSLTR2, PLCB4, KIT, NRAS, and BRAF was applied to 103 blue nevi. As previously reported, most blue nevi were found to harbor activating mutations in GNAQ (59%, n=61), followed by less frequent mutations in GNA11 (16%, n=17). Additionally, one BRAF (1%) and three NRAS (3%) mutations were detected. In three tumors (3%) harboring none of the aforementioned gene alterations, CYSLTR2 mutations were identified. All three CYSLTR2 mutations were the same c.386T>A, L129Q mutation previously identified in uveal melanoma that has been shown to lead to increased receptor activation and signaling. In summary, our study identifies CYSLTR2 L129Q alterations as a previously unrecognized activating mutation in blue nevi, occuring in a mutually exclusive fashion with known GNAQ and GNA11 mutations. Similar to GNAQ and GNA11 mutations, CYSLTR2 mutations, when present, are likely defining pathogenetic events in blue nevi.
Insights
Researchers discovered new CYSLTR2 mutations in blue nevi, similar to those found in uveal melanoma. These findings suggest CYSLTR2 alterations are key genetic events in blue nevi development, independent of GNAQ/GNA11 mutations.
Area of Science:
- Dermatology
- Oncology
- Genetics
Background:
- Blue nevi are common skin tumors.
- Blue nevi and uveal melanoma share common GNAQ and GNA11 mutations.
- CYSLTR2 and PLCB4 mutations are found in uveal melanoma lacking GNAQ/GNA11 mutations.
Purpose of the Study:
- Investigate CYSLTR2 and PLCB4 mutations in blue nevi.
- Determine if these mutations occur in blue nevi without GNAQ/GNA11 alterations.
- Identify novel genetic drivers in blue nevi pathogenesis.
Main Methods:
- Analyzed 103 blue nevi using targeted next-generation sequencing.
- Assayed for mutations in GNAQ, GNA11, CYSLTR2, PLCB4, KIT, NRAS, and BRAF.
- Compared mutation profiles with known uveal melanoma genetic alterations.
Main Results:
- GNAQ mutations found in 59% and GNA11 in 16% of blue nevi.
- BRAF and NRAS mutations were detected at lower frequencies.
- CYSLTR2 L129Q mutations identified in 3% of blue nevi, mutually exclusive with GNAQ/GNA11.
Conclusions:
- CYSLTR2 L129Q is a novel activating mutation in blue nevi.
- CYSLTR2 mutations are likely key pathogenetic events in blue nevi.
- This finding expands the understanding of blue nevus genetics and its relation to uveal melanoma.
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