Dirk Elewaut
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Articles (11)
Tregs protect against invariant <scp>NKT</scp> cell‐mediated autoimmune colitis and hepatitis
Immunomodulatory T cells play a pivotal role in protection against (auto)immune‐mediated diseases that open perspectives for therapeutic modulation. However, how immune regulatory networks operate in vivo is less understood. To this end, we focused on FOXP3+CD4+CD25+ regulatory T cells (Tregs) and invariant natural killer T (iNKT) cells, two lymphocyte populations that independently regulate adaptive and innate immune responses. In vitro, a functional interplay between Tregs and iNKT cells has been described, but whether Tregs modulate the function and phenotype of iNKT cell subsets in vivo and whether this controls iNKT‐mediated autoimmunity is unclear. Taking advantage of the conditional depletion of Tregs, we examined the in vivo interplay between iNKT and Treg cells in steady state and in preclinical models of liver and gut autoimmunity. Under non‐inflamed conditions, Treg depletion enhanced glycolipid‐mediated iNKT cell responses, with a general impact on Type 1, 2 and 17 iNKT subsets. Moreover, in vivo iNKT activation in the absence of Tregs suppressed the induction of iNKT anergy, consistent with a reduction in programmed cell death receptor 1 (PD‐1) expression. Importantly, we unveiled a clear role for an in vivo Treg‐iNKT crosstalk both in concanavalin A‐induced acute hepatitis and oxazolone‐induced colitis. Here, the absence of Tregs led to a markedly enhanced liver and gut pathology, which was not observed in iNKT‐deficient mice. Taken together, these results provide evidence for a functional interplay between regulatory T cell subsets critical in controlling the onset of autoimmune disease.
Year:
2023
Bacterial Quorum-Sensing Peptides as Immune Modulators Present in Systemic Circulation
Quorum-sensing peptides (QSPs) are bacterial peptides traditionally considered only as inter-bacterial communication molecules. Recently, their involvement in microbiome–host interactions influencing host diseases such as cancer and sarcopenia were explored. However, it is still unknown to what extent these peptides have the potential to modulate the immune system. In this proof-of-concept study, we screened 89 QSPs for their potential to induce IL-6 and TNFα in murine splenocytes and J774 macrophages. Confirmatory experiments on the positive screening-hits were conducted using murine splenocytes and human PBMCs of different ages. Finally, to investigate the biological relevance of immunomodulatory QSPs, we analysed plasma in a human cohort for the presence of the immunomodulatory QSP Q010. To do this, we used a newly developed UHPLC-MS/MS method. Our findings indicated that specific QSPs activate immune cells in vitro, with Q007, Q010, Q017 and Q212 being the top four screening hits. Q007 and Q010 were affirmed in subsequent confirmatory experiments using murine splenocytes and human PBMCs. Finally, Q010 was detected in human plasma, demonstrating for the first time the presence of an immunomodulatory QSP in human circulation. In conclusion, our data are the first evidence indicating the potential of biologically relevant quorum-sensing peptides to modulate the immune system.
Year:
2023
Collaborators (12)
Atul Deodhar
Professor of Medicine
Oregon Health & Science University
Tim Sparwasser
Director/ Professor
University Medical Center of the Johannes Gutenberg University Mainz
Ann Massie
Vrije Universiteit Brussel
Denis Poddubnyy
-
Nele Van Den Noortgate
Ghent University Hospital
Pauline Janssen
Vrije Universiteit Brussel
Mikkel Østergaard
Professor
Rigshospitalet
Evelien Wynendaele
Ghent University
Peter Irving
King’s College London
Oscar Palomares
-
Karl Gaffney
University of East Anglia
Vladimir Shvartsman
senior lecturer
Universität Duisburg-Essen

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