Javascript must be enabled to continue!
Oxalate Alters Cellular Bioenergetics, Redox Homeostasis, Antibacterial Response, and Immune Response in Macrophages
View through CrossRef
Individuals with calcium oxalate (CaOx) kidney stones can have secondarily infected calculi which may play a role in the development of recurrent urinary tract infection (UTI). Uropathogenic Escherichia coli (UPEC) is the most common causative pathogen of UTIs. Macrophages play a critical role in host immune defense against bacterial infections. Our previous study demonstrated that oxalate, an important component of the most common type of kidney stone, impairs monocyte cellular bioenergetics and redox homeostasis. The objective of this study was to investigate whether oxalate compromises macrophage metabolism, redox status, anti-bacterial response, and immune response. Monocytes (THP-1, a human monocytic cell line) were exposed to sodium oxalate (soluble oxalate; 50 µM) for 48 hours prior to being differentiated into macrophages. Macrophages were subsequently exposed to calcium oxalate crystals (50 µM) for 48 hours followed by UPEC (MOI 1:2 or 1:5) for 2 hours. Peritoneal macrophages and bone marrow-derived macrophages (BMDM) from C57BL/6 mice were also exposed to oxalate. THP-1 macrophages treated with oxalate had decreased cellular bioenergetics, mitochondrial complex I and IV activity, and ATP levels compared to control cells. In addition, these cells had a significant increase in mitochondrial and total reactive oxygen species levels, mitochondrial gene expression, and pro-inflammatory cytokine (i.e. Interleukin-1β, IL-1β and Interleukin-6, IL-6) mRNA levels and secretion. In contrast, oxalate significantly decreased the mRNA levels and secretion of the anti-inflammatory cytokine, Interleukin-10 (IL-10). Further, oxalate increased the bacterial burden of primary macrophages. Our findings demonstrate that oxalate compromises macrophage metabolism, redox homeostasis, and cytokine signaling leading to a reduction in anti-bacterial response and increased infection. These data highlight a novel role of oxalate on macrophage function.
Frontiers Media SA
Title: Oxalate Alters Cellular Bioenergetics, Redox Homeostasis, Antibacterial Response, and Immune Response in Macrophages
Description:
Individuals with calcium oxalate (CaOx) kidney stones can have secondarily infected calculi which may play a role in the development of recurrent urinary tract infection (UTI).
Uropathogenic Escherichia coli (UPEC) is the most common causative pathogen of UTIs.
Macrophages play a critical role in host immune defense against bacterial infections.
Our previous study demonstrated that oxalate, an important component of the most common type of kidney stone, impairs monocyte cellular bioenergetics and redox homeostasis.
The objective of this study was to investigate whether oxalate compromises macrophage metabolism, redox status, anti-bacterial response, and immune response.
Monocytes (THP-1, a human monocytic cell line) were exposed to sodium oxalate (soluble oxalate; 50 µM) for 48 hours prior to being differentiated into macrophages.
Macrophages were subsequently exposed to calcium oxalate crystals (50 µM) for 48 hours followed by UPEC (MOI 1:2 or 1:5) for 2 hours.
Peritoneal macrophages and bone marrow-derived macrophages (BMDM) from C57BL/6 mice were also exposed to oxalate.
THP-1 macrophages treated with oxalate had decreased cellular bioenergetics, mitochondrial complex I and IV activity, and ATP levels compared to control cells.
In addition, these cells had a significant increase in mitochondrial and total reactive oxygen species levels, mitochondrial gene expression, and pro-inflammatory cytokine (i.
e.
Interleukin-1β, IL-1β and Interleukin-6, IL-6) mRNA levels and secretion.
In contrast, oxalate significantly decreased the mRNA levels and secretion of the anti-inflammatory cytokine, Interleukin-10 (IL-10).
Further, oxalate increased the bacterial burden of primary macrophages.
Our findings demonstrate that oxalate compromises macrophage metabolism, redox homeostasis, and cytokine signaling leading to a reduction in anti-bacterial response and increased infection.
These data highlight a novel role of oxalate on macrophage function.
Related Results
Synbiotic Supplementation And Oxalate Homeostasis In Rats: Focus On Microbiota Oxalate-Degrading Activity
Synbiotic Supplementation And Oxalate Homeostasis In Rats: Focus On Microbiota Oxalate-Degrading Activity
Abstract
Background The present study aimed (i) to evaluate whether ceftriaxone treatment could affect not only intestinal oxalate-degrading bacteria number but their total...
Reduction of Oxalate Content of Foods by the Oxalate Degrading Bacterium, Eubacterium Lentum WYH‐1
Reduction of Oxalate Content of Foods by the Oxalate Degrading Bacterium, Eubacterium Lentum WYH‐1
Background: Urinary oxalate may contribute far more than urinary calcium to the pathogenesis of urinary calculi. Urinary oxalate may be reduced by restricting the intake of foods h...
Impact de l'IL-13 dans l'acquisition des fonctions tumoricides des macrophages : rôle des récepteurs lectine de type-C et implication dans la progression d'un lymphome T
Impact de l'IL-13 dans l'acquisition des fonctions tumoricides des macrophages : rôle des récepteurs lectine de type-C et implication dans la progression d'un lymphome T
Les macrophages associés aux tumeurs (TAMs) proviennent des monocytes circulants attirés par l'inflammation chronique due à la tumeur. Ces monocytes vont se différencier en une var...
EPD Electronic Pathogen Detection v1
EPD Electronic Pathogen Detection v1
Electronic pathogen detection (EPD) is a non - invasive, rapid, affordable, point- of- care test, for Covid 19 resulting from infection with SARS-CoV-2 virus. EPD scanning techno...
Stiripentol identifies a therapeutic target to reduce oxaluria
Stiripentol identifies a therapeutic target to reduce oxaluria
Purpose of review
Oxalate is a metabolic end-product promoting the formation of calcium oxalate crystals in urine. Massive urine oxalate excretion occurs in gen...
Rôle des facteurs de transcription NOR1 et TLE1 dans les macrophages alternatifs humains
Rôle des facteurs de transcription NOR1 et TLE1 dans les macrophages alternatifs humains
L’athérosclérose est une maladie inflammatoire chronique de la paroi vasculaire à évolution lente et silencieuse dont les principaux facteurs de risque sont les dyslipidémies, l’ob...
Oxalate as a potent promoter of kidney stone formation
Oxalate as a potent promoter of kidney stone formation
Kidney stones are among the most prevalent urological diseases, with a high incidence and recurrence rate. Treating kidney stones has been greatly improved by the development of va...
Oxalate- and Glyoxylate-Dependent Growth and Acetogenesis by
Clostridium thermoaceticum
Oxalate- and Glyoxylate-Dependent Growth and Acetogenesis by
Clostridium thermoaceticum
The acetogenic bacterium
Clostridium thermoaceticum
ATCC 39073 grew at the expense of the two-carbon substrates oxalate and glyoxylate. Other two-carbon sub...

