Innate Immunity in Calcinosis Cutis
Abstract
:1. Introduction
2. Pathogenesis
2.1. Calcinosis Cutis with Normal Serum Calcium and Phosphate
2.2. Calcinosis Cutis with Abnormal Serum Calcium and Phosphate
2.3. Summary
3. Autoantibody Associations
3.1. Dermatomyositis
3.2. Systemic Sclerosis
3.3. Other Autoimmune Diseases
3.4. Summary
4. Treatment
4.1. Bisphosphonates
4.2. Antibiotics
4.3. Colchicine
4.4. Corticosteroids and Intravenous Immunoglobulin
4.5. Biologics
4.6. Summary
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Disease | Autoantibody | Role in Innate Immunity | References |
---|---|---|---|
All | Anti-nuclear | a Forms immune complexes with cognate antigens, inducing the production of type I IFNs and other cytokines | [67] |
Dermatomyositis | Anti-MDA5 | b Senses viral RNA and induces type I IFN production b Stimulates chemotaxis of CXCR3+ lymphocytes to the dermoepidermal junction | [63,64,65] |
Anti-mitochondrial | a Forms immune complexes with mtDNA, inducing IL-8 production and NET formation | [68] | |
Anti-NXP2 | b Binds RNA and regulates transcription by localization of PML nuclear bodies | [69] | |
MCTD | Anti-U1-RNP | a Forms immune complexes with cognate antigens, inducing the production of proinflammatory cytokines | [70] |
Systemic sclerosis | Anti-centromere (centromere-kinetochore macrocomplex) | b Associates with nuclear cGAS, activating STING and stimulating NF-κB and IRF3 expression | [71] |
Anti-DNA topoisomerase I | b Activates the transcription of proinflammatory genes via positive regulation of RNA polymerase II b Triggers antiviral immunity through cGAS-STING signaling * | [72,73] |
Treatment | Subclass | Mechanism | References |
---|---|---|---|
Bisphosphonates | - | Reduces monocyte/macrophage cell number and viability and induces apoptosis | [93] |
Antibiotics | Minocycline | Reduces TNF-α, IL-1, and IL-6, inhibits neutrophil chemotaxis, and suppresses of MMP activity | [96,97,98] |
Ceftriaxone | Reduces TNF-α and suppresses MMP activity | [98] | |
Colchicine | - | Inhibits neutrophil chemotaxis and NETosis, suppresses NLRP3 inflammasome activation, and reduces proinflammatory cytokine release by macrophages | [99,100] |
Corticosteroids | - | Reduces pro-inflammatory cytokine release, decreases circulating innate immune cells, and suppresses fibroblast growth and TGF-β1 production Reduces vessel permeability | [101,102] |
IVIG | - | Suppresses the production of pro-inflammatory cytokines in CD16+ intermediate monocytes Inhibits DC maturation and differentiation, reducing IL-12 secretion and the expression of costimulatory molecules | [103,104] |
Biologics | Adalimumab | Inhibits TNF-α | [105] |
Infliximab | Inhibits TNF-α | [106] |
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Jiang, S.W.; Petty, A.J.; Nicholas, M.W. Innate Immunity in Calcinosis Cutis. Immuno 2022, 2, 443-459. https://doi.org/10.3390/immuno2030027
Jiang SW, Petty AJ, Nicholas MW. Innate Immunity in Calcinosis Cutis. Immuno. 2022; 2(3):443-459. https://doi.org/10.3390/immuno2030027
Chicago/Turabian StyleJiang, Simon W., Amy J. Petty, and Matilda W. Nicholas. 2022. "Innate Immunity in Calcinosis Cutis" Immuno 2, no. 3: 443-459. https://doi.org/10.3390/immuno2030027