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bioRxiv · 10.64898/2026.08.07.743616

Multiomic and Spatial Profiling of Colorectal Tissue Reveals Viral Persistence and Immune Dysregulation in Long COVID

Abstract

Long COVID (LC) - a chronic condition characterized by persistent, debilitating symptoms following SARS-CoV-2 infection - has emerged as a major public health challenge. Although many interrelated mechanisms have been proposed as drivers of LC, the root causes have yet to be identified, posing significant challenges for therapeutic development. While many blood-based studies have been conducted, they have not yielded conclusive mechanistic insights into LC pathogenesis. Attention has therefore turned toward direct tissue investigation, with the gastrointestinal (GI) tract becoming a major focus due to evidence that virus or viral components can persist at this site for months to years following an episode of COVID-19. Here, we performed a high-dimensional characterization of colorectal tissue and peripheral blood in a highly characterized cohort of 44 people with LC and 13 recovered controls. We profiled SARS-CoV-2 persistence, host immune responses, and tissue inflammation using bulk and single-cell RNA sequencing, nCounter RNA probe hybridization, quantitative PCR, metagenomic next-generation sequencing, plasma proteomics, high-dimensional spectral flow cytometry, in situ-hybridization/immunohistochemistry, and single-cell digital spatial omics. Our results support a model in which LC is driven by long-term immune dysregulation and perturbations of the regulatory gut immune environment which imply ongoing viral persistence, although direct viral detection was only observed in a subset of participants. Specifically, we identify a tissue-based transcriptional environment in which SARS-CoV-2 activates innate myeloid immune signaling, driving chronic inflammation while simultaneously downregulating pathways responsible for immune-mediated clearance of infected cells, including antigen presentation, phagocytosis, cytotoxic immune cell trafficking, and granzyme production. Importantly, signatures in peripheral blood are considerably weaker than those observed in tissue. Together, these findings provide a direct biological rationale for therapeutic strategies in LC aimed at enhancing or redirecting cytotoxic immune function to overcome immune dysregulation and clear persistent viral reservoirs.

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BibTeXRIS

LaFranchi, B., Maison, D. P., Vinden, J., Rodriguez, A. E., Tout, A., Grimbert, L., Velazquez, E., Vudali, U., Poblano, B. A., Dalhuisen, T., Cattle, J., Figueroa, T., Fudotan, Y., Luna, M. A., Ryder, D., Deswal, M., Abel, B. S., Lynch, J., Lipford, A., Razi, N., Steifman, C. B., McCann, H. N., Kataria, N., Girling, V., Thomas, R., Wang, C., Deitchman, A. N., Patel, S., Traglia, M., Tseng, Z. H., Szabo, G., Laszik, Z., Farrow, A., Sumimoto, N., Servellita, V., Hoh, R., Fehrman, E. A., Kelly, J. D., Martin, J. N., Deeks, S. G., Chiu, C. Y., Somsouk, M., Peluso, M. J., Henrich, T. J.. 2026-08-10. Multiomic and Spatial Profiling of Colorectal Tissue Reveals Viral Persistence and Immune Dysregulation in Long COVID. https://doi.org/10.64898/2026.08.07.743616

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