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Clinical Molecular Pathology and Treatment Developments in Advanced Uveal Melanoma: State of the Art
Stefano Dore1, Matteo Sacchi1, Antonio Pinna1
1Unit of Ophthalmology, Department of Medicine, Surgery and Pharmacy, University of Sassari, Viale San Pietro 43, Sassari, 07100, Italy.
Abstract:
Uveal melanoma (UM) is the most common intraocular cancer, with approximately 5.2 individuals per million affected annually in the United States. It represents approximately 3% of the global malignant melanoma cases, accounting for 80% of the overall noncutaneous melanomas. Clinically, it remains silent in about 30% of the cases; when symptomatic, it generally causes metamorphopsia (painless loss or distortion of vision) and/or photopsia (flashing or flickering of light in the visual field). Discoloration of the iris, astigmatism, glaucoma, and even blindness are other, less common clinical manifestations. Several pathophysiological mechanisms underlie the development of UM. Genetic mutations, involving especially the G protein subunit alpha q (GNAQ), guanine nucleotide-binding protein subunit alpha-11 (GNA11), BRCA1 associated deubiquitinase 1 (BAP1), splicing factor 3b subunit 1 (SF3B1), and eukaryotic translation initiation factor 1A, X-linked (EIF1AX) genes as well as the MAPK/ERK signaling pathway genes, have been largely associated with the development of UM. Chromosomal aberrations, inflammatory and immunological alterations are often concurrent factors for the development and progression of UM. Therapies targeting specific genetic alterations and immunotherapy agents have been recently developed and introduced in clinical practice for the management of advanced-stage UMs. This review aims to present the latest advances in the clinical molecular pathology of UM, along with the resulting targeted, immunological, and other therapies that have been introduced or are currently under investigation.
Insights
Uveal melanoma (UM), a rare eye cancer, is linked to genetic mutations and immune system changes. Recent advances include targeted therapies and immunotherapies for advanced cases.
Area of Science:
- Ophthalmology
- Oncology
- Genetics
Background:
- Uveal melanoma (UM) is the most common primary intraocular cancer.
- It accounts for 80% of noncutaneous melanomas and presents with varied symptoms or asymptomatically.
- Genetic mutations (GNAQ, GNA11, BAP1, SF3B1, EIF1AX) and chromosomal aberrations are key in UM development.
Purpose of the Study:
- To review the latest clinical molecular pathology of uveal melanoma.
- To highlight emerging targeted, immunological, and other therapies for UM management.
Main Methods:
- Literature review of recent advances in uveal melanoma research.
- Analysis of genetic mutations, chromosomal aberrations, and immunological alterations.
- Overview of current and investigational therapies.
Main Results:
- Identified key genetic drivers including GNAQ, GNA11, BAP1, SF3B1, and EIF1AX.
- Highlighted the role of MAPK/ERK signaling pathway, chromosomal aberrations, and immune alterations.
- Noted the development of targeted therapies and immunotherapies for advanced UM.
Conclusions:
- UM pathogenesis involves complex genetic and immunological factors.
- Targeted therapies and immunotherapies represent promising treatment strategies for advanced UM.
- Ongoing research continues to refine understanding and treatment of uveal melanoma.
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