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Published on: September 27, 2017
NAMPT and PARylation Are Involved in the Pathogenesis of Atopic Dermatitis
Ana B Arroyo1,2,3, Martín Bernal-Carrión1,2, Joaquín Cantón-Sandoval1,2,3
1Inmunidad, Inflamación y Cáncer, Departamento de Biología Celular e Histología, Facultad de Biología, Universidad de Murcia, 30100 Murcia, Spain.
Insights
New research reveals altered NAD+ and PAR metabolism in atopic dermatitis (AD) skin, linking NAMPT and PARP1 to disease severity. Inhibiting these targets shows promise for novel AD treatments.
Area of Science:
- Dermatology
- Molecular Biology
- Biochemistry
Background:
- Atopic dermatitis (AD) is a prevalent, chronic inflammatory skin condition with complex, poorly understood pathogenesis.
- Current treatments lack specificity, necessitating research into novel therapeutic targets.
- NAD+ and poly (ADP-ribose) (PAR) metabolism have been implicated in oxidative stress and inflammation.
Purpose of the Study:
- To investigate the role of NAD+ and PAR metabolism in atopic dermatitis.
- To explore the correlation between NAMPT and PARP1 expression and AD lesional status.
- To evaluate the therapeutic potential of inhibiting NAMPT and PARP in AD.
Main Methods:
- Analysis of NAD+ and PAR metabolism in skin samples from AD patients.
- Correlation studies between NAMPT/PARP1 expression and AD lesional severity.
- Utilizing a human 3D organotypic skin model of AD to test pharmacological inhibitors.
Main Results:
- Demonstrated altered NAD+ and PAR metabolism in AD skin for the first time.
- Found a strong correlation between NAMPT and PARP1 expression and AD lesional status.
- Showed that inhibiting NAMPT and PARP reduces AD-associated biomarkers in a 3D skin model.
Conclusions:
- NAD+ and PAR metabolism are significantly altered in atopic dermatitis.
- NAMPT and PARP1 are potential therapeutic targets for treating AD.
- Pharmacological inhibition of NAMPT and PARP offers a promising avenue for new AD therapies.
Abstract:
Atopic dermatitis (AD) is a chronic inflammatory skin disease of very high prevalence, especially in childhood, with no specific treatment or cure. As its pathogenesis is complex, multifactorial and not fully understood, further research is needed to increase knowledge and develop new targeted therapies. We have recently demonstrated the critical role of NAD+ and poly (ADP-ribose) (PAR) metabolism in oxidative stress and skin inflammation. Specifically, we found that hyperactivation of PARP1 in response to DNA damage induced by reactive oxygen species, and fueled by NAMPT-derived NAD+, mediated inflammation through parthanatos cell death in zebrafish and human organotypic 3D skin models of psoriasis. Furthermore, the aberrant induction of NAMPT and PARP activity was observed in the lesional skin of psoriasis patients, supporting the role of these signaling pathways in psoriasis and pointing to NAMPT and PARP1 as potential novel therapeutic targets in treating skin inflammatory disorders. In the present work, we report, for the first time, altered NAD+ and PAR metabolism in the skin of AD patients and a strong correlation between NAMPT and PARP1 expression and the lesional status of AD. Furthermore, using a human 3D organotypic skin model of AD, we demonstrate that the pharmacological inhibition of NAMPT and PARP reduces pathology-associated biomarkers. These results help to understand the complexity of AD and reveal new potential treatments for AD patients.
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