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Ohradanova-Repic, A.

Publications and source records attributed to Ohradanova-Repic, A..

4 recordsLinked to original sources

24-Nor-ursodeoxycholic acid counteracts TH17/Treg imbalance and ameliorates intestinal inflammation by restricting glutaminolysis in differentiating TH17 cells

Objective24-Nor-ursodeoxycholic acid (NorUDCA) is a novel therapeutic bile acid for treating primary sclerosing cholangitis (PSC), an immune-mediated cholestatic liver disease. Since PSC strongly associates with inflammatory bowel diseases (IBD) driven by TH17/Treg imbalance, we aimed to explore NorUDCAs immunomodulatory potential on intestinal TH17/Treg balance. DesignNorUDCAs impact on TH17/Treg tissue distribution was first assessed in Mdr2-/- mouse model of PSC. We specifically investigated NorUDCAs effect on modulating TH17/Treg balance in a CD4+ T cell driven colitis model induced by adoptive transfer of CD25-CD44lowCD45RBhighCD4+ TNaive cells into Rag2-/- mice, mimicking human IBD. Mechanistic studies were performed using molecular approaches, flow cytometry and metabolic assays in murine TH17 cells in vitro. NorUDCAs signaling effects observed in murine system were further validated in circulating CD4+ T cells from PSC patients with co-existing IBD. ResultsNorUDCA promoted Treg generation in both liver and intestine in the Mdr2-/- model. In the experimental IBD model, NorUDCA attenuated intestinal immunopathology. Mechanistically, NorUDCA demonstrated strong immunomodulatory efficacy in counteracting TH17/Treg imbalance by restricting glutaminolysis in differentiating TH17 cells, thus suppressed -Ketoglutarate-dependent mTORC1 activation, glycolysis and enhanced FOXP3 expression. NorUDCAs impact on mTORC1 signaling was further confirmed in circulating CD4+ T-cells from PSC patients with IBD. ConclusionNorUDCA possesses direct immunometabolic modulatory potency to counteract TH17/Treg imbalance and ameliorate excessive TH17 cell driven intestinal immunopathology. These findings extend future clinical applications of NorUDCA for treatment of TH17 cell-mediated disorders along the gut-liver axis and beyond. Significance of this studyO_ST_ABSWhat is already known on this subject?C_ST_ABSO_LIPSC is an immune-mediated cholestatic liver disease highly associated with IBD where TH17/Treg imbalance drives immunopathogenesis; seeking effective therapeutics covering both liver and intestinal disease in PSC is of high clinical relevance. C_LIO_LIIndependent of anti-cholestatic effects, NorUDCA has recently been shown to possess direct immunomodulatory properties on CD8+ T cell metabolism, lymphoblastogenesis and clonal expansion through targeting mTORC1 signaling. C_LIO_LISince mTORC1 serves as critical metabolic checkpoint orchestrating TH17/Treg axis, inhibiting mTORC1 activity represents a potential treatment avenue counteracting TH17/Treg imbalance under intestinal inflammatory conditions. C_LI What are the new findings?O_LINorUDCA enriches FOXP3+ Treg population in both liver and intestinal tissue in the cholestatic Mdr2-/- mouse model of PSC. C_LIO_LINorUDCA exhibits direct immunomodulatory efficacies in suppressing excess TH17 cell-mediated intestinal immunopathology and promotes FOXP3+ Treg generation in an experimental IBD model. C_LIO_LIMechanistically, NorUDCA counteracts TH17/Treg imbalance by restricting glutaminolysis in differentiating TH17 cells, thus suppresses -Ketoglutarate-dependent mTORC1 activation, glycolysis and enhances FOXP3 expression. C_LIO_LINorUDCAs impact on mTORC1 signaling was further confirmed in circulating CD4+ T cells from patients with PSC and IBD. C_LI How might it impact on clinical practice in the foreseeable future?These findings advance our current understanding of therapeutic potentials of NorUDCA, which might represent a novel therapeutic strategy in the treatment of PSC and concomitant IBD and other TH17-mediated intestinal diseases.

molecular biology↗

Blockade of TMPRSS2-mediated priming of SARS-CoV-2 by the N-terminal peptide of lactoferrin

In addition to vaccines, there is an urgent need for supplemental antiviral therapeutics to dampen the persistent COVID-19 pandemic caused by the severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2). The transmembrane protease serine 2 (TMPRSS2), which is responsible for the proteolytic processing of the SARS-CoV-2 spike protein as virus priming for cell entry, appears as a rational therapeutic target for the clearance of SARS-CoV-2 infection. Accordingly, selective inhibitors of TMPRSS2 represent potential tools for prevention and treatment of COVID-19. Here, we tested the inhibitory capacities of the human milk glycoprotein lactoferrin and its N-terminal peptide pLF1, which we identified as inhibitors of plasminogen, a serine protease homologous to TMPRSS2. In vitro proteolysis assays revealed that, unlike full-length lactoferrin, pLF1 significantly inhibited the proteolytic activity of TMPRSS2. pLF1 inhibited both the proteolytic processing of the SARS-CoV-2 spike protein and the SARS-CoV-2 infection of simian Vero cells. Because lactoferrin is a natural product and several biologically active peptides, such as the N-terminally derived lactoferricins, are produced naturally by pepsin-mediated digestion, natural or synthetic peptides from lactoferrin represent well-achievable candidates for supporting prevention and treatment of COVID-19.

immunology↗

ACE2 is the critical in vivo receptor for SARS-CoV-2 in a novel COVID-19 mouse model with TNF- and IFNγ-driven immunopathology

Despite tremendous progress in the understanding of COVID-19, mechanistic insight into immunological, disease-driving factors remains limited. We generated maVie16, a mouse-adapted SARS-CoV-2, by serial passaging of a human isolate. In silico modelling revealed how Spike mutations of maVie16 enhanced interaction with murine ACE2. MaVie16 induced profound pathology in BALB/c and C57BL/6 mice and the resulting mouse COVID-19 (mCOVID-19) replicated critical aspects of human disease, including early lymphopenia, pulmonary immune cell infiltration, pneumonia and specific adaptive immunity. Inhibition of the proinflammatory cytokines IFN{gamma} and TNF substantially reduced immunopathology. Importantly, genetic ACE2-deficiency completely prevented mCOVID-19 development. Finally, inhalation therapy with recombinant ACE2 fully protected mice from mCOVID-19, revealing a novel and efficient treatment. Thus, we here present maVie16 as a new tool to model COVID-19 for the discovery of new therapies and show that disease severity is determined by cytokine-driven immunopathology and critically dependent on ACE2 in vivo. Key pointsO_LIThe mouse-adapted SARS-CoV-2 strain maVie16 causes fatal disease in BALB/c mice and substantial inflammation, pneumonia and immunity in C57BL/6 mice C_LIO_LITNF/IFN{gamma} blockade ameliorates maVie16-induced immunopathology C_LIO_LIMaVie16 infection depends on ACE2 and soluble ACE2 inhalation can prevent disease C_LI

immunology↗

24-Nor-Ursodeoxycholic acid reshapes immunometabolism in CD8+ T cells and alleviates hepatic inflammation

Background & Aims24-NorUrsodeoxycholic acid (NorUDCA) is novel therapy for immune-mediated liver diseases such as primary sclerosing cholangitis (PSC) where dysregulated T cells including CD8+ T cells cause liver immunopathology. We hypothesized that NorUDCA may directly modulate CD8+ T cell effector function thus contributing to its therapeutic efficacy independent of anti-cholestatic effects. MethodsNorUDCA effects on CD8+ T cell function in vivo were investigated in a hepatic injury model system induced by excessive CD8+ T cell immune response upon non-cytolytic lymphocytic choriomeningitis virus (LCMV) infection. Mechanistic studies included molecular and biochemical approaches, flow cytometry and metabolic assays in mouse CD8+ T cells in vitro. Mass spectrometry (MS) was used to identify potential targets modulated by NorUDCA in CD8+ T cells. NorUDCA signaling effects observed in murine systems were validated in peripheral T cells from healthy volunteers and PSC patients. ResultsIn vivo NorUDCA ameliorated hepatic injury and systemic inflammation upon LCMV infection. Mechanistically, NorUDCA demonstrated a strong immunomodulatory efficacy in CD8+ T cells affecting lymphoblastogenesis, mTORC1 signaling and glycolysis of CD8+ T cells. With MS, we identified that NorUDCA regulates CD8+ T cells via targeting mTORC1. NorUDCAs impact on mTORC1 signaling was further confirmed in circulating human CD8+ T cells. ConclusionsNorUDCA possesses a yet-unrecognized direct modulatory potency on CD8+ T cells and attenuates excessive CD8+ T cell hepatic immunopathology. These findings may be relevant for treatment of immune-mediated liver diseases such as PSC and beyond.

molecular biology↗