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1.
Med ; 4(11): 761-777.e8, 2023 11 10.
Article in English | MEDLINE | ID: mdl-37863058

ABSTRACT

BACKGROUND: Shiga toxin (Stx)-producing Escherichia coli hemolytic uremic syndrome (STEC-HUS) is the leading cause of acute kidney injury in children, with an associated mortality of up to 5%. The mechanisms underlying STEC-HUS and why the glomerular microvasculature is so susceptible to injury following systemic Stx infection are unclear. METHODS: Transgenic mice were engineered to express the Stx receptor (Gb3) exclusively in their kidney podocytes (Pod-Gb3) and challenged with systemic Stx. Human glomerular cell models and kidney biopsies from patients with STEC-HUS were also studied. FINDINGS: Stx-challenged Pod-Gb3 mice developed STEC-HUS. This was mediated by a reduction in podocyte vascular endothelial growth factor A (VEGF-A), which led to loss of glomerular endothelial cell (GEnC) glycocalyx, a reduction in GEnC inhibitory complement factor H binding, and local activation of the complement pathway. Early therapeutic inhibition of the terminal complement pathway with a C5 inhibitor rescued this podocyte-driven, Stx-induced HUS phenotype. CONCLUSIONS: This study potentially explains why systemic Stx exposure targets the glomerulus and supports the early use of terminal complement pathway inhibition in this devastating disease. FUNDING: This work was supported by the UK Medical Research Council (MRC) (grant nos. G0901987 and MR/K010492/1) and Kidney Research UK (grant nos. TF_007_20151127, RP42/2012, and SP/FSGS1/2013). The Mary Lyon Center is part of the MRC Harwell Institute and is funded by the MRC (A410).


Subject(s)
Escherichia coli Infections , Hemolytic-Uremic Syndrome , Kidney Diseases , Podocytes , Shiga-Toxigenic Escherichia coli , Child , Humans , Mice , Animals , Podocytes/metabolism , Podocytes/pathology , Shiga Toxin/genetics , Shiga Toxin/metabolism , Shiga Toxin/therapeutic use , Vascular Endothelial Growth Factor A/metabolism , Vascular Endothelial Growth Factor A/therapeutic use , Escherichia coli Infections/complications , Escherichia coli Infections/drug therapy , Escherichia coli Infections/metabolism , Hemolytic-Uremic Syndrome/drug therapy , Hemolytic-Uremic Syndrome/metabolism , Hemolytic-Uremic Syndrome/pathology , Shiga-Toxigenic Escherichia coli/metabolism , Complement Activation , Kidney Diseases/pathology
2.
Front Med (Lausanne) ; 10: 891513, 2023.
Article in English | MEDLINE | ID: mdl-36860338

ABSTRACT

Background: Calcineurin inhibitors (CNIs) are associated with nephrotoxicity, endothelial cell dysfunction, and thrombotic microangiopathy (TMA). Evolving evidence suggests an important role for complement dysregulation in the pathogenesis of CNI-induced TMA. However, the exact mechanism(s) of CNI-induced TMA remain(s) unknown. Methods: Using blood outgrowth endothelial cells (BOECs) from healthy donors, we evaluated the effects of cyclosporine on endothelial cell integrity. Specifically, we determined complement activation (C3c and C9) and regulation (CD46, CD55, CD59, and complement factor H [CFH] deposition) as these occurred on the endothelial cell surface membrane and glycocalyx. Results: We found that exposing the endothelium to cyclosporine resulted in a dose- and time-dependent enhancement of complement deposition and cytotoxicity. We, therefore, employed flow cytometry, Western blotting/CFH cofactor assays, and immunofluorescence imaging to determine the expression of complement regulators and the functional activity and localization of CFH. Notably, while cyclosporine led to the upregulation of complement regulators CD46, CD55, and CD59 on the endothelial cell surface, it also diminished the endothelial cell glycocalyx through the shedding of heparan sulfate side chains. The weakened endothelial cell glycocalyx resulted in decreased CFH surface binding and surface cofactor activity. Conclusion: Our findings confirm a role for complement in cyclosporine-induced endothelial injury and suggest that decreased glycocalyx density, induced by cyclosporine, is a mechanism that leads to complement alternative pathway dysregulation via decreased CFH surface binding and cofactor activity. This mechanism may apply to other secondary TMAs-in which a role for complement has so far not been recognized-and provide a potential therapeutic target and an important marker for patients on calcineurin inhibitors.

3.
Commun Biol ; 2: 88, 2019.
Article in English | MEDLINE | ID: mdl-30854480

ABSTRACT

Store-operated calcium entry (SOCE) is an essential calcium influx mechanism in animal cells. One of the most important auto regulatory control systems involves calcium-dependent inactivation (CDI) of the Orai channel, which prevents excessive calcium influx. In the present study we analyze the role of two channels in the induction of CDI on Orai1. Here we show that calcium entering through freely diffusing TRPV1 channels induce strong CDI on Orai1 while calcium entering through P2X4 channel does not. TRPV1 can induce CDI on Orai1 because both channels were found in close proximity in the cell membrane. This was not observed with P2X4 channels. To our knowledge, this is the first study demonstrating that calcium arising from different channels may contribute to the modulation of Orai1 through CDI in freely diffusing single channels of living cells. Our results highlight the role of TRPV1-mediated CDI on Orai1 in cell migration and wound healing.


Subject(s)
Calcium/metabolism , ORAI1 Protein/metabolism , TRPV Cation Channels/metabolism , Wound Healing , Calcium Signaling , Cell Movement/genetics , Cells, Cultured , Electrophysiological Phenomena , Gene Expression , Genes, Reporter , Humans , Recombinant Fusion Proteins/metabolism
4.
Microbiologyopen ; 8(4): e00675, 2019 04.
Article in English | MEDLINE | ID: mdl-29897678

ABSTRACT

Wolbachia sp. has colonized over 70% of insect species, successfully manipulating host fertility, protein expression, lifespan, and metabolism. Understanding and engineering the biochemistry and physiology of Wolbachia holds great promise for insect vector-borne disease eradication. Wolbachia is cultured in cell lines, which have long duplication times and are difficult to manipulate and study. The yeast strain Saccharomyces cerevisiae W303 was used successfully as an artificial host for Wolbachia wAlbB. As compared to controls, infected yeast lost viability early, probably as a result of an abnormally high mitochondrial oxidative phosphorylation activity observed at late stages of growth. No respiratory chain proteins from Wolbachia were detected, while several Wolbachia F1 F0 -ATPase subunits were revealed. After 5 days outside the cell, Wolbachia remained fully infective against insect cells.


Subject(s)
Insecta/microbiology , Mitochondria/metabolism , Saccharomyces cerevisiae/metabolism , Wolbachia/growth & development , Animals , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Host-Pathogen Interactions , Insecta/physiology , Oxidative Phosphorylation , Saccharomyces cerevisiae/chemistry
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