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Plasmablast Storms: Microbial Drivers of Acute and Chronic Autoimmune Flares
Muhammad Soyfoo1, Julie Sarrand1
1Department of Rheumatology, Hôpital Erasme, Université Libre de Bruxelles, 1070 Brussels, Belgium.
Abstract:
Autoimmune flares are often accompanied by abrupt surges of circulating plasmablasts-short-lived, high-output antibody-secreting cells generated through extrafollicular B-cell activation in response to microbial cues. Three categories of microbial input appear to repeatedly trigger these "plasmablast storms": latent herpesvirus reactivations (Epstein-Barr virus, cytomegalovirus, human herpesvirus-6, varicella-zoster virus), acute respiratory or gastrointestinal infections including SARS-CoV-2, and chronic oral or gut dysbiosis. Although biologically distinct, these stimuli converge on innate sensing pathways driven by pathogen-associated molecular patterns such as unmethylated CpG DNA, single-stranded RNA, lipopolysaccharide, and bacterial lipoglycans. Through Toll-like receptors and type I interferon signalling, microbial signatures accelerate class switching, amplify inflammatory cytokine milieus, and lower B-cell activation thresholds, enabling rapid plasmablast mobilisation. Dysbiosis further maintains B cells in a hyper-responsive state by disrupting mucosal homeostasis and altering microbial metabolite profiles, thereby reducing the stimulus required to trigger plasmablast bursts. Once generated, these waves of oligoclonal plasmablasts home to inflamed tissues, where chemokine and adhesion landscapes shape their retention during flares. Emerging evidence suggests that such episodic plasmablast expansions promote autoantibody diversification, somatic hypermutation, and epitope spreading, progressively eroding tolerance. This review synthesizes these insights into a unified model in which infections and dysbiosis promote microbe-licensed plasmablast storms that influence the tempo and severity of autoimmune disease.
Insights
Microbial triggers like infections and dysbiosis cause "plasmablast storms," leading to increased autoantibodies and autoimmune disease flares. These storms involve B-cell activation pathways that amplify inflammation and autoantibody production.
Area of Science:
- Immunology
- Microbiology
- Autoimmunity
Background:
- Autoimmune flares correlate with surges in plasmablasts, antibody-secreting cells from extrafollicular B-cell activation.
- Microbial cues, including latent herpesviruses, acute infections (e.g., SARS-CoV-2), and dysbiosis, trigger these plasmablast responses.
Purpose of the Study:
- To synthesize current understanding of how microbial stimuli induce plasmablast storms.
- To present a unified model linking infections, dysbiosis, and autoimmune disease severity.
Main Methods:
- Review of existing literature on B-cell activation, innate sensing pathways, and autoimmune disease mechanisms.
- Analysis of how microbial patterns (PAMPs) engage Toll-like receptors and interferon signaling.
- Examination of the role of dysbiosis in maintaining B-cell hyper-responsiveness.
Main Results:
- Microbial stimuli converge on innate sensing pathways (TLRs, IFN signaling) to accelerate B-cell class switching and cytokine production.
- Dysbiosis exacerbates B-cell hyper-responsiveness by altering mucosal homeostasis and microbial metabolites.
- Plasmablast expansions home to inflamed tissues, promoting autoantibody diversification and epitope spreading, thereby worsening autoimmunity.
Conclusions:
- Infections and dysbiosis drive microbe-licensed plasmablast storms.
- These storms significantly influence the onset, tempo, and severity of autoimmune diseases.
- Understanding these mechanisms offers potential therapeutic targets for autoimmune conditions.
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