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Genetics of Darier's Disease: New Insights into Pathogenic Mechanisms
Barbara Moschella1, Sabrina Busciglio1, Enrico Ambrosini2
1Medical Genetics, Department of Medicine and Surgery, University of Parma, 43126 Parma, Italy.
Abstract:
Darier's disease (DD) is a rare, autosomal dominant genodermatosis caused by pathogenic variants in the ATP2A2 gene, which encodes the SERCA2 protein, an endoplasmic reticulum ATPase Ca2+ transporter. These mutations impair the intracellular calcium homeostasis leading to increased protein misfolding, endoplasmic reticulum (ER) stress response, and the activation of the unfolded protein response (UPR), culminating in keratinocyte apoptosis and anomalies in interfollicular epidermal stratification. Clinically, the disease is characterized by the presence of skin lesions with hyperkeratotic papules and an increased susceptibility to inflammatory reactions, bacterial and viral infections. The histological hallmarks include acantholysis, dyskeratosis, and increased apoptotic keratinocytes, referred to as "corp ronds". The SERCA2b isoform is expressed not only in the epidermis but it is present ubiquitously in all tissues, suggesting that its alteration may have multi-organ effects. The review aims to provide a broad overview of the pathology, from intracellular dysfunction to the clinical manifestations, elucidating the molecular effects of SERCA2 variants found in DD patients and exploring the potential cell signaling pathways that may contribute to disease progression. Beginning with an examination of the cellular alterations, our work then shifts to exploring their impact in an organ-specific context, providing insights into new potential therapeutic strategies tailored to clinical manifestations.
Insights
Darier's disease (DD) is a rare genetic skin disorder caused by ATP2A2 gene mutations affecting calcium transport. This review explores its cellular mechanisms, clinical signs, and potential therapeutic strategies.
Area of Science:
- Genetics and Molecular Biology
- Dermatology
- Cell Biology
Background:
- Darier's disease (DD) is a rare autosomal dominant genodermatosis.
- It stems from pathogenic variants in the ATP2A2 gene, encoding the SERCA2 calcium transporter.
- These mutations disrupt intracellular calcium homeostasis, leading to ER stress and keratinocyte apoptosis.
Purpose of the Study:
- To provide a comprehensive overview of Darier's disease pathology.
- To elucidate the molecular effects of SERCA2 variants in DD.
- To explore potential therapeutic strategies based on cellular and organ-specific insights.
Main Methods:
- Review of existing literature on Darier's disease.
- Analysis of molecular mechanisms, including calcium homeostasis and ER stress.
- Correlation of cellular dysfunction with clinical manifestations and potential organ-specific effects.
Main Results:
- DD pathogenesis involves impaired SERCA2 function, causing calcium imbalance and unfolded protein response activation.
- Clinical features include hyperkeratotic papules, inflammation, and increased infection susceptibility.
- Histological hallmarks are acantholysis, dyskeratosis, and apoptotic keratinocytes ('corp ronds').
Conclusions:
- SERCA2 variants initiate a cascade of cellular dysfunctions impacting epidermal integrity and stratification.
- The ubiquitous expression of SERCA2b suggests potential multi-organ involvement in DD.
- Understanding these pathways may lead to targeted therapeutic interventions for Darier's disease.
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