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Khedr, M.

Publications and source records attributed to Khedr, M..

2 recordsLinked to original sources

Medical Grade Manuka Honey Inhibits A23187 Induced Mast Cell Degranulation and Cytokine Release via Downregulation of the ERK Signalling Pathways

RationaleMast degranulation is a driver of several pathologies. Several endogenous peptides have been established as stimulators of mast cell degranulation. Compounds that stabilise mast cells have in part demonstrated inhibitory effect on the inflammatory cascade. Manuka honey has been widely used for the treatments of various inflammatory diseases. However, its effect on A23187 (Calcium ionophore) stimulated mast cell degranulation, cytokine release and cellular signalling pathways has not yet been investigated. Aim of the studyWe aim to investigate the effect of Medical Grade Manuka Honey (MGMH) on A23187 induced mast cell degranulation, cytokine release and downstream signalling pathways in a human mast cell lines LAD2 model. Materials and methodsThe cytotoxic effect of MGMH on LAD2 cells was assessed using LDH assay. LAD2 cells were pre-incubated with MGMH and challenged with A23187.Mast cell degranulation was measured by {beta}-hexosaminidase release whilst histamine and cytokines released were measured by ELISA. The effect of MGMH on downstream signalling of Mitogen Activated Protein Kinase (MAPK) pathways was determined and quantified by SDS-PAGE western blotting. ResultsMGMH at 2% and 4% was well tolerated by LAD2 cells. MGMH at all concentrations tested significantly inhibited the A23187 triggered release of {beta}-hexosaminidase but failed to inhibit the release of histamine. MGMH 4% significantly inhibited the release of GM-CSF and IL-8. MGMH (2% and 4%) significantly down regulated the expression of both ERK I and ERK II. However, MGMH at all the doses tested had no effect on the expressions of JNK and p38. On the contrary, an increase expression of these p38 and JNK were noted with MGMH pre-incubation. ConclusionOur present study provides evidence that MGMH inhibition of A23187 stimulated degranulation of mast cells and cytokine release through down regulation of ERK I and II signalling. The results suggest potential use as a mast cell stabiliser and effective treatments of mast cell mediated inflammatory diseases. ImpactThis study provides the first evidence that Medical Grade Manuka Honey (MGMH) can attenuate A23187-induced mast cell activation and pro-inflammatory cytokine release in human LAD2 mast cells through modulation of ERK1/2 signalling pathways. The findings advance our understanding of the cellular and molecular mechanisms underlying the anti-inflammatory properties of Manuka honey. The demonstration that MGMH inhibits {beta}-hexosaminidase release suggests a mast cell-stabilising effect, highlighting its potential as a novel natural therapeutic agent for mast cell-mediated disorders, including allergic diseases, interstitial cystitis, asthma, chronic inflammatory skin conditions, and mast cell activation syndromes. The observed reduction in GM-CSF and IL-8 production further indicates that MGMH may help limit the amplification and persistence of inflammatory responses. Mechanistically, the selective downregulation of ERK1/2 signalling provides new insight into how MGMH exerts its biological effects and identifies a potential molecular target through which its anti-inflammatory activity is mediated. These findings contribute to the growing evidence base supporting the therapeutic value of Manuka honey beyond its established antimicrobial and wound-healing properties. Overall, this work lays the foundation for future preclinical and clinical studies investigating MGMH as a safe, naturally derived mast cell stabiliser and anti-inflammatory intervention, with potential applications across a broad spectrum of allergic and inflammatory diseases.

immunology↗

Bile is a route of excretion for homogentisic acid in alkaptonuria

Altered activity of specific enzymes in phenylalanine-tyrosine (phe-tyr) metabolism results in incomplete breakdown of various metabolite substrates in this pathway. Increased biofluid concentration and tissue accumulation of the phe-tyr pathway metabolite homogentisic acid (HGA) is central to pathophysiology in the inherited disorder alkaptonuria (AKU). Accumulation of the metabolites upstream of HGA, including tyrosine, occurs in patients on nitisinone, a licenced drug for AKU and hereditary tyrosinaemia type-1, which inhibits the enzyme responsible for HGA production. The aim of this study was to investigate the phe-tyr metabolite content of key biofluids and tissues in AKU mice on and off nitisinone to gain new insights into the biodistribution of metabolites in these altered metabolic states. The data show for the first time that HGA is present in the bile in AKU (mean [{+/-}SD] = 1003[{+/-}410] mol/L; nitisinone-treated AKU mean [{+/-}SD] = 45[{+/-}23] mol/L). Biliary tyrosine, HPPA and HPLA are also increased on nitisinone. Urine was confirmed as the dominant elimination route of HGA in untreated AKU, but with indication of biliary excretion and possible metabolism of HGA by the gut microbiome. These data provide new insights into the pathways of phe-tyr metabolite biodistribution and metabolism, showing for the first time that hepatobiliary excretion contributes to the total pool of metabolites in this pathway. Our data suggest that biliary elimination of organic acids and other metabolites may play an underappreciated role in disorders of metabolism. Take-home messageThis paper presents the first observation of elevated hepatobiliary circulation of metabolites associated with disease in alkaptonuria, including homogentisic acid in addition to tyrosine and the tyrosine metabolites 4-hydroxyphenylpyruvic acid and 4-hydroxyphenyllactic acid on nitisinone treatment.

biochemistry↗