| Literature DB >> 33271951 |
Amrita Srivastava1, Helen P Makarenkova1.
Abstract
Sjögren's syndrome (SS) is a systemic autoimmune disorder affecting approximately 3% of the population in the United States. This disease has a female predilection and affects exocrine glands, including lacrimal and salivary glands. Dry eyes and dry mouths are the most common symptoms due to the loss of salivary and lacrimal gland function. Symptoms become more severe in secondary SS, where SS is present along with other autoimmune diseases like systemic lupus erythematosus, systemic sclerosis, or rheumatoid arthritis. It is known that aberrant activation of immune cells plays an important role in disease progression, however, the mechanism for these pathological changes in the immune system remains largely unknown. This review highlights the role of different immune cells in disease development, therapeutic treatments, and future strategies that are available to target various immune cells to cure the disease.Entities:
Keywords: B cell; Sjögren’s syndrome; T cell; autoimmune disease; cytokines; dry eye; dry mouth; immune cells; immunotherapy; inflammation; lacrimal gland; macrophages; salivary glands
Mesh:
Substances:
Year: 2020 PMID: 33271951 PMCID: PMC7730146 DOI: 10.3390/ijms21239172
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Histopathological features of mouse lacrimal gland at 3 months of age. (A) Histochemical staining of paraffin-embedded mouse lacrimal gland sections with hematoxyllin-eosin (H&E). (B) Higher magnification reveals severe infiltration of immune cells in the lacrimal gland. (C) Immunostaining of the NOD mouse lacrimal gland sections with the B220 antibody (B cell marker) (D) and CD3 antibody (a marker of T cells). Each scale bar is 100 μm.
Figure 2B cell development and maturation. B cells originate from hematopoietic stem cells in the bone marrow. Hematopoietic stem cell differentiates into common lymphoid progenitor cell, which give rise to a B lymphocyte progenitor that then differentiates into a Pro-B cell (CD34+CD10+), and a Pre-B cell, and then an immature B cell (IgM+CD10+BAFF-Rlow). In the spleen, immature B cells differentiate into naïve mature B cells. A small population of naïve mature B cells becomes marginal zone B cells (CD21+CD23−IgMhiIgDlo), whereas most of the naïve mature B cells develop into follicular B cells (CD21+CD23+IgMloIgDhi). Later marginal zone B cells transform into short-lived plasma cells (CD38++CD138+) and follicular B cells, when encountering an antigen, and become activated B cells. These activated B cells take part in GC reactions in the secondary lymphoid organs like spleen and lymph nodes where they differentiate into long-lived, antibody-secreting plasma cells (CD38++CD138++BCMA+), or memory B cells (IgG+BAFF-R+CD27+CD21+CD23−).
Figure 3T cell development and maturation. T cells originate from hematopoietic stem cells in the bone marrow. These cells then migrate to thymus where they first develop into double-negative thymocytes (DN1-DN4). These thymocytes can be differentiated based on CD117, CD44, CD25, CD3, and CD 127 markers. DN4 then differentiates into double-positive (DP, CD4+CD8+) thymocytes after pre-TCR signaling. These DP’s differentiate into single-positive thymocytes as CD4+ and CD8+ cells.
Figure 4Pathogenesis of Sjögren’s syndrome. Virus or other environmental factors cause epithelial cell activation that will then express ligands, receptors, and various cytokines such as IL-6, IL-22, and chemokines like CXCL13. These further activate several other immune cells like natural killer cells (NK), dendritic cells (DCs), and macrophages (Mφ). Conventional dendritic cells interact with NK cells and T helper cells (Th) leading to increase IFN-γ production and tissue damage. IFN-1 and IFN-γ enhance BAFF production which leads to B and T cell activation. Activated B cells produce pathogenic autoantibodies.
B cell-targeted therapies in SS patients.
| Drug | Target | Dose | No. of Pats | Type of Study | Efficacy | Side Effects | Refs |
|---|---|---|---|---|---|---|---|
| Rituximab | Chimeric mAb against CD20 | Twice 1 g on days 1 and 15 | 17 | Randomized, double-blind, Placebo-controlled pilot study | Improvement after 6 months, sicca symptoms did not improve | IRR, SSR | [ |
| 1 g with an interval of 2 weeks or placebo | 30 | Prospective, single center, randomized, double-blind, placebo-controlled trial | Stimulated saliva flow rate and lacrimal gland function improvement | SSR | [ | ||
| 375 mg/m2/week for 4 weeks or 1 g on days 1 and 15 | 78 | Prospective study (AIR registry) | 1st cycle efficacy in 47 patients (60 %) | IRR, SSR | [ | ||
| 1 g with an interval of 15 days. patients received 6 courses of therapy | 41 | Prospective, multicenter, follow-up study | ESSDAI decrease. | No adverse effects | [ | ||
| Twice 1 g, 15 days apart | 28 | Prospective single-center study | ESSDAI and ESSPRI score improved. | Not reported | [ | ||
| Twice 1 g, two weeks apart | 120 | Randomized, double-blind, | No significant difference | Few patients had IRR | [ | ||
| two doses of rituximab (1 g) or placebo, two weeks apart | 110 | A randomized double-blind placebo-controlled clinical trial | No significant difference | Not reported | [ | ||
| Two courses of rituximab (1 g) at weeks 0, 2, 24, and 26 or placebo. | 133 | A multicenter, randomized, double-blind, placebo-controlled, parallel-group trial | No significant improvement in any outcome except unstimulated saliva flow | Few serious adverse events were reported but there were no deaths | [ | ||
| Epratuzumab | Humanized anti-CD22 monoclonal antibody | 4 infusions of 360 mg/m2 biweekly | 16 | An open-label phase I/II study | Improvements in fatigue. B-cell reduction, T cells did not change | Not reported | [ |
| 600 mg every week, or epratuzumab 1200 mg every other week for 4 weeks | 1584 | Randomized, double-blind, placebo-controlled, multicenter studies | Disease activity in patients with SLE and associated SS showed improvements | Adverse events were comparable in the treated and placebo group | [ | ||
| Belimumab | Human IgG1ʎ mAb targeting BAFF | 10 mg/kg, monthly dose | 30 | Phase II open-label | In 60% of patients improvement in dryness, fatigue, and musculoskeletal pain | One patient develops pneumococcal meningitis | [ |
| Ianalumab (VAY736) | a B cell-depleting, BAFF-R blocking, monoclonal antibody | single infusion at either 3 mg/kg, 10 mg/kg or placebo. | 27 | Double-blind, placebo-controlled, phase II, single-center study | Both doses lead to depletion of B cells for a long time | Moderate infusion related side effects | [ |
| BAFF-R | Monthly s.c. doses (5, 50, 300 mg) or placebo. | 190 | Phase 2b Study | Primary endpoint achieved, improvement for 300 mg dose | Safety profile looked good | [ | |
| Baminercept | Lymphotoxin-β receptor Fusion protein, reduces B cell infiltration | s.c. injections of 100 mg of baminercept every week for 24 weeks or placebo | 52 | Phase II multicenter, randomized, double-blind, placebo-controlled trial | No significant difference in ESSDAI, no difference in salivary gland secretion and ocular dryness | Higher incidence of liver toxicity | [ |
This table displays B cell targeted therapies for SS. The table displays drugs and drug’s dose, targets number of patients (Pats), study type, efficacy, and side effects. Abbreviations: mAb—monoclonal antibody, CD20—cluster of differentiation 20, IRR—infusion-related reaction, SSR—serum sickness-related, AIR airway intervention registry, ESSDAI—the EULAR Sjögren’s syndrome disease activity index, ESSPRI the EULAR SS patient reported index, MSG—minor salivary gland, TEARS -tolerance and efficacy of Rituximab in primary SS, SLE—Systemic lupus erythematosus, BAFF—B-cell activating factor.
Figure 5B cell-targeted therapies and their outcomes in primary Sjögren’s Syndrome. Current therapies include CD20, CD22, BAFF, and LTβ receptor targeting. BAFF, B-cell activating factor; LTβ, lymphotoxin β; and LTβR, lymphotoxin β receptor.
T cell targeted therapies in pSS patients.
| Drug | Target | Dose | No. of Pats | Phase of Study | Efficacy | Side Effects | Refs |
|---|---|---|---|---|---|---|---|
| Abatacept | Anti-CD80/86, targets activation of T cells | 8 doses of 500/750 mg, 2 weeks apart | 11 | A pilot study | CTLA-4 Ig treatment significantly reduces salivary gland inflammation, increases saliva production | No serious adverse effects | [ |
| 8 infusions, first 3 were 2 weeks apart, then 4 weeks apart | 15 | Open-label study | Improvement in disease symptoms and fatigue. | No serious side effects or infections were seen | [ | ||
| ~10 mg/kg by i.v. infusion on days 1, 15, and 29 and every 4 weeks thereafter for 24 weeks | 15 | Open-label study | Reduction of circulating Tfh cells and ICOS expression on T cells was noticed | Not reported | [ | ||
| 125 mg s.c. once a week for 24 weeks or placebo | 80 | Single center, randomized, double-blind, phase 3 trial | ESSDAI no significant difference | Few serious adverse events reported | [ | ||
| Alefacept | Anti-CD2 dimeric fusion protein | Two 12-week courses of 15 mg i.m. per week with a two-week interval or a placebo | 73 | Phase 2, double-blind, placebo-controlled | Lowered insulin usage and reduced hypoglycemic events | A severe drop in CD4+ and CD8+ T cells pose a major concern | [ |
This table displays T cell targeted therapies for SS. The table displays drugs, targets, drug’s dose, number of patients, study phase, efficacy, side effects, and references. Abbreviations: CD80/86-cluster of differentiation 80/86, CTLA-4Ig—cytotoxic lymphocyte-associated molecule-4 Immunoglobulin, ICOS inducible costimulatory molecule, i.m. intramuscular, CD2—cluster of differentiation 2, CD4—cluster of differentiation 4, and CD8—cluster of differentiation 8.
Figure 6T cell-targeted therapies and their outcomes in primary Sjögren’s Syndrome. Current therapies include CD40, CD80/86, ICOSL, CD11a targeting. CD2, cluster of differentiation 2; CD40, Cluster of differentiation 40; CD28, Cluster of Differentiation 28; CD80, Cluster of differentiation 80; ICOS, inducible costimulatory; ICOSL, ICOS ligand.
Stem cells targeted therapies in pSS patients.
| MSCs | Cell Number, Origin | Administration | Effect | Refs |
|---|---|---|---|---|
| UMSCs | 1 × 106 /Kg one dose | iv | Increase saliva flow, reduction in anti-SSA/Ro and anti-SSB/La antibodies | [ |
| UMSCs | Human N/A | Coculture | Differentiation and proliferation of Tfh cells decreased | [ |
| UMSCs microencapsulated | Human N/A | Coculture | Decrease in proliferation of T cells, and numbers of Th1, Th17; Treg increased | [ |
| UMSCs | Human 1 × 106 /Kg | iv | Reduced IL-12, decrease inTh17 and Tfh cells; Treg increased | [ |
This table displays SS therapies targeting mesenchymal stem cell (MSC). The table shows the origin of the MSCs, injected cell number, route of administration, effect of treatment, and references. Abbreviations: UMSCs—Umbilical cord-derived mesenchymal stem cell, iv—intravenous, SSA—Sjögren’s syndrome A antibodies, SSB—Sjögren’s syndrome B antibodies, Tfh—T follicular helper, Th1—T helper type 1, Th17—T helper 17, Treg—T regulatory cells, and IL-12—Interleukin-12.
Cytokine-targeted therapies in pSS patients.
| Drug | Cytokines | Target | Dose | No of Pats | Phase of Study | Efficacy | Side Effects | Refs |
|---|---|---|---|---|---|---|---|---|
| Infliximab | TNF family | TNF-α | 3 mg/kg two weeks apart, three infusions | 16 | Phase II | Improvement in the visual analog score, fatigue, and dryness | No significant adverse events were seen | [ |
| infliximab | TNF family | TNF-α | 3 infusions of 5 mg/kg drug or placebo two weeks apart | 103 | Randomized, double-blind, placebo-controlled study | No significant differences | Severe adverse events reported in the infliximab group | [ |
| Etanercept | TNF family | TNF-α | 25 mg s.c. twice per week for 12 weeks | 15 | Pilot study | No increase in salivary or lacrimal gland function | Injection-site reactions occurring in about one-third of patients | [ |
| IFN-α | IFN-α | 150 IU of interferon-α 3 times a day for 24 weeks | 12 | Double-blind placebo-controlled | Improvement in symptoms of xerostomia and xerophthalmia | Well tolerated | [ | |
| IFN-α | 150 IU of interferon-α 3 times a day for 24 weeks | 497 | 2 Phase III clinical trials | Majority of symptoms improved | No significant adverse effect noted | [ | ||
| Tofacitinib | IFN | 0.0003–0.005% daily | 327 | Phase 1/2 prospective, randomized | Better patient-reported ocular tolerability | Well tolerated | [ | |
| Anakinra, a non-glycosylated recombinant version of the human IL-1 receptor antagonist, IL-lRa | IL-1 | IL-1R blockade | 100 mg/day or a placebo for 4 weeks | 26 | A double-blind, placebo-controlled parallel-group study | No significant changes | Two serious adverse events (SAE) were observed | [ |
| Tocilizumab | IL-6 | anti-IL-6 mAb | 8 mg/kg | 1 | Case study | EULAR SS activity Index was stabilized at 4, CT scan and pulmonary function normalized | Treatment was well tolerated | [ |
This table displays the cytokine-targeted therapies for Sjögren’s syndrome reviewed in this article. The table displays cytokines and their target including drugs and their doses, number of patients, phase of study, efficacy, and side effects. Abbreviations: TNF Tumor necrosis factor, s.c. subcutaneous, IU International unit, IFN Interferon, IL-1 Interleukin-1, IL-1R Interleukin-1 receptor, and CT scan Computed tomography scan.
Figure 7Cytokine-targeted therapies and their outcomes in primary Sjögren’s Syndrome. Current therapies include IL-1R, TNF-α, IL-6R, IL-2, JAK, IFN-α targeting. IL, interleukins; TNF-α, tumor necrosis factor–α; IFN-α, interferon α; and JAK, Janus kinase.