Derailed Ceramide Metabolism in Atopic Dermatitis (AD): A Causal Starting Point for a Personalized (Basic) Therapy
Abstract
:1. Introduction
2. Ceramides and Altered Sphingolipid Profile in AD
2.1. Role of Ceramides in Cells and Skin Development
2.2. (Sphingo)Lipid Profile of Sensitive and Inflammatory Skin and Lesions of Patients with AD
2.3. Impaired Maturation and Premature Apoptosis of Keratinocytes
2.4. The Two Different pH-Dependent Enzymatic Activities of aCERase
2.5. aCERase: Shift from Ceramidase to revaCERase Activity in Lysosomes
3. New Therapy Concept: Active Adjustment of Ceramide Metabolism
4. Addressed Therapeutic Targets in Keratinocytes
5. Therapy Objectives for Treatment and Prophylaxis
- Inhibition of forming C16-ceramide in lysosomes.
- Stabilization of very long-chain fatty acid-CoA synthesis (≥C18) for very long-chain ceramide de novo synthesis.
- Protecting lysosomal V-ATPase from inactivation (formation of the disulfide bond between Cys 254 and Cys 532) and stabilizing the ceramidase activity of aCERase.
- Modulating expression of AD-relevant gene.
- Enrichment of very long-chain ceramides of de novo synthesis.
6. Implementation of Therapy Objectives
- 2.
- Stabilization of very long-chain fatty acid-CoA synthesis (≥C18) for very long-chain ceramide de novo synthesis and
- 3.
- Protecting lysosomal V-ATPase from inactivation and stabilizing the ceramidase activity of aCERase
7. Therapeutic Concept
8. Personalized Therapy
9. Does the Concept Work?
10. Conclusions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
aCERase | lysosomal acidic ceramidase |
acyl-CoA | fatty acid-coenzyme A |
AD | atopic dermatitis |
EASI score | eczema area and severity index score |
ELOVL | very longchain-3-oxoacyl-CoA synthases |
CerS | ceramide synthases |
GSH | glutathione |
revaCERase | reverse ceramide synthase activity of aCERase |
V-ATPase | vacuolar H+-ATPase |
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Ceramides | Ceramides + Free Fatty Acids | Free Fatty Acids |
---|---|---|
Short chain ceramides, in particular C16-ceramide [NS], are elevated in inflammatory skin and lesions | Free fatty acids and ceramides with very long chains (≥C24) are significantly reduced. | Short-chain free fatty acids palmitic acid (C16:0) and stearic acid (C18: 0) are elevated. |
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Blaess, M.; Deigner, H.-P. Derailed Ceramide Metabolism in Atopic Dermatitis (AD): A Causal Starting Point for a Personalized (Basic) Therapy. Int. J. Mol. Sci. 2019, 20, 3967. https://doi.org/10.3390/ijms20163967
Blaess M, Deigner H-P. Derailed Ceramide Metabolism in Atopic Dermatitis (AD): A Causal Starting Point for a Personalized (Basic) Therapy. International Journal of Molecular Sciences. 2019; 20(16):3967. https://doi.org/10.3390/ijms20163967
Chicago/Turabian StyleBlaess, Markus, and Hans-Peter Deigner. 2019. "Derailed Ceramide Metabolism in Atopic Dermatitis (AD): A Causal Starting Point for a Personalized (Basic) Therapy" International Journal of Molecular Sciences 20, no. 16: 3967. https://doi.org/10.3390/ijms20163967