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A master autoantigen-ome links alternative splicing, female predilection, and COVID-19 to autoimmune diseases
Julia Y Wang1, Michael W Roehrl1, Victor B Roehrl1
1Curandis, New York, NY, USA.
Abstract:
Chronic and debilitating autoimmune sequelae pose a grave concern for the post-COVID-19 pandemic era. Based on our discovery that the glycosaminoglycan dermatan sulfate (DS) displays peculiar affinity to apoptotic cells and autoantigens (autoAgs) and that DS-autoAg complexes cooperatively stimulate autoreactive B1 cell responses, we compiled a database of 751 candidate autoAgs from six human cell types. At least 657 of these have been found to be affected by SARS-CoV-2 infection based on currently available multi-omic COVID data, and at least 400 are confirmed targets of autoantibodies in a wide array of autoimmune diseases and cancer. The autoantigen-ome is significantly associated with various processes in viral infections, such as translation, protein processing, and vesicle transport. Interestingly, the coding genes of autoAgs predominantly contain multiple exons with many possible alternative splicing variants, short transcripts, and short UTR lengths. These observations and the finding that numerous autoAgs involved in RNA-splicing showed altered expression in viral infections suggest that viruses exploit alternative splicing to reprogram host cell machinery to ensure viral replication and survival. While each cell type gives rise to a unique pool of autoAgs, 39 common autoAgs associated with cell stress and apoptosis were identified from all six cell types, with several being known markers of systemic autoimmune diseases. In particular, the common autoAg UBA1 that catalyzes the first step in ubiquitination is encoded by an X-chromosome escape gene. Given its essential function in apoptotic cell clearance and that X-inactivation escape tends to increase with aging, UBA1 dysfunction can therefore predispose aging women to autoimmune disorders. In summary, we propose a model of how viral infections lead to extensive molecular alterations and host cell death, autoimmune responses facilitated by autoAg-DS complexes, and ultimately autoimmune diseases. Overall, this master autoantigen-ome provides a molecular guide for investigating the myriad of autoimmune sequalae to COVID-19 and clues to the rare adverse effects of the currently available mRNA and viral vector-based COVID vaccines.
Insights
COVID-19 infection can trigger autoimmune diseases by altering host cells and creating autoantigen-dermatan sulfate complexes. This study identifies key autoantigens, offering insights into post-viral autoimmunity and vaccine side effects.
Area of Science:
- Immunology
- Virology
- Molecular Biology
Background:
- Chronic autoimmune sequelae are a growing concern post-COVID-19.
- Dermatan sulfate (DS) binds apoptotic cells and autoantigens (autoAgs), stimulating autoreactive B1 cells.
Purpose of the Study:
- To compile and analyze a comprehensive autoantigen-ome.
- To investigate the role of autoantigens in viral infections and autoimmune disease development.
- To explore potential links between viral infections, autoantigens, and COVID-19 sequelae.
Main Methods:
- Compiled a database of 751 candidate autoantigens from six human cell types.
- Analyzed multi-omic COVID data to identify SARS-CoV-2 affected autoantigens.
- Cross-referenced autoantigens with known autoantibody targets in autoimmune diseases and cancer.
Main Results:
- Identified 657 autoantigens affected by SARS-CoV-2 infection and 400 confirmed autoantibody targets.
- Autoantigen-ome is linked to viral infection processes like translation and RNA splicing.
- Discovered 39 common autoantigens, including UBA1, associated with cell stress and apoptosis, particularly relevant for aging women.
Conclusions:
- Propose a model where viral infections induce molecular alterations and cell death, leading to autoimmune responses via autoantigen-dermatan sulfate complexes.
- The autoantigen-ome serves as a guide for understanding COVID-19 autoimmune sequelae.
- Findings offer clues to rare adverse effects of COVID-19 vaccines.
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