Submitted:
26 November 2024
Posted:
27 November 2024
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Abstract
Keywords:
1. Introduction
2. Epidemiology
3. Differential Diagnosis
4. Immunopathogenesis
4.1. Granuloma Formation
4.2. Pathophysiology
- Genetic Predisposition and Environmental Triggers: Genetically predisposed individuals with sarcoidosis may develop malignancies after persistent environmental exposure;
- Immunosuppressive Treatment Risks: Corticosteroid treatment, often required in sarcoidosis, can reduce immune surveillance, potentially in-creasing cancer risk (discussed further in a later chapter);
- Sarcoid-Like Reactions (SLRs): Some malignancies can trigger sarcoidosis-like responses in tissues without systemic sarcoidosis, particularly when malignancy predates sarcoidosis [3]).
5. Epigenetics
5.1. Genetics
6. Environmental and Infectious Factors
6.1. Common Environmental Triggers
6.2. Infectious Diseases
6.2.1. NHL
6.2.2. HL
6.2.3. Sarcoidosis
7. Effects of Immunosuppressive Treatment
7.1. Immunosuppressants Used in Sarcoidosis
- Methotrexate (MTX) and anti-TNF-α antibodies (Infliximab-IFX): the second- and third-line treatment. These are used in cases of unacceptable toxicity of CS, in refractory or relapsing disease and as steroid-sparing agents [72].
- Other drugs: Azathioprine (AZA), Leflunomide and Rituximab, an anti CD20 B-lymphocyte antibody used as a third-line drug [72].
- Pulmonary Fibrosis: antifibrotic treatment (nintedanib) may be added to the therapeutic regimen and in severe cases lung transplantation might be necessary [72].
7.2. CS and Lymphoma
7.3. MTX, Anti-TNF-α Agents and Lymphoma
7.4. AZA and Lymphoma
- its immunosuppressant abilities, particularly after viral exposure in post-transplant patients, can promote lymphoproliferative disorders;
- it can directly damage DNA through 6-thioguanine accumulation [70].
8. Sarcoid-Like Reactions
9. Conclusion
10. Key Points
- Sarcoidosis-Lymphoma Syndrome describes the link between sarcoidosis and lymphoproliferative diseases, often seen in middle-aged individuals, with Hodgkin disease being the most common lymphoma type;
- Differentiating sarcoidosis from lymphoma is challenging due to overlapping features, requiring a combination of advanced imaging techniques, histological verification, and careful clinical assessment;
- Sarcoidosis may develop before, after, or alongside cancer. Key contributing factors include genetic predisposition, immunosuppressive treatment, and sarcoid-like reactions (SLRs) triggered by tumors;
- Granulomas form in sarcoidosis due to a cell-mediated immune response, which can also occur around tumor antigens, showing immunological overlap with lymphoma;
- Chronic inflammation and immune dysregulation drive both sarcoidosis and cancer risk, with macrophage polarization (M1/ M2 types) and cytokine elevations playing significant roles;
- SLRs are granulomas in cancer patients without systemic sarcoidosis, often triggered by cancer therapies, and may indicate an immune response to cancer;
- Shared genetic markers like microRNAs and HLA alleles link sarcoidosis and lymphoma, suggesting common immunological pathways;
- Risk factors like smoking, obesity, and certain infections (e.g., EBV, HIV for lymphoma, bacteria for sarcoidosis) influence disease development in each condition;
- Long-term use of corticosteroids and other immunosuppressants in sarcoidosis may increase lymphoma risk, necessitating close monitoring in treat-ed patients. These points summarize the complex interactions between sarcoidosis, lymphoma, immune responses, genetic predispositions, and environmental influences.
Author Contributions
Funding
Conflicts of Interest
References
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| NHL | HL | Sarcoidosis |
|---|---|---|
| Smoking (FL) | Smoking | Decreased sun exposure |
| Hair Dye 1 (FL, CLL) | Eczema | Inhalation of organic bioaerosols (musty odors, industrial organic dusts) |
| UV Radiation | Ionizing Radiation (especially Uranium) | Inhalation of inorganic aerosol exposures (several metal dusts)3 |
| Dietary Fat | Wood stove, Fireplace use | |
| Dessert Foods | Exposure to photocopier tone | |
| Carbohydrates (B-cell lymphoma) | Silica exposure | |
| Broiled meat | Man-mademineral fiber exposure | |
| Solvents (especially benzene and TCE) | Silicate exposure | |
| Some pesticides | Working with vegetable dust | |
| Higher BMI | Higher BMI | Higher BMI |
| Farmers2 | Living/Working in a Farm2 | |
| Blood Transfusion (nodal B-CLL, high-grade extranodal lymphomas) | Working with high humidity |
| NHL | HL | Sarcoidosis |
|---|---|---|
| UV Radiation (B-cell subtypes, DLBCL) | UV Radiation (EBV-positive HL) | Smoking |
| Vitamin C (FL) | Physical activity (younger women) | |
| Dietary B12 | Higher BMI (Older Women) | |
| Vitamin B6, Methionine, Folate | Low-dose aspirin use1 | |
| Other Antioxidants: Dietary Manganese, Proanthocyanidins, alpha-carotene | ||
| High intake of some vegetables (cruciferous vegetables) and fruits | ||
| Sun Exposure | ||
| Atopic Diseases | ||
| Blood Transfusion | ||
| Alcohol |
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