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Ahmed, M. E.

Publications and source records attributed to Ahmed, M. E..

5 recordsLinked to original sources

Loss of AMPK potentiates inflammation by activating the inflammasome after traumatic brain injury in mice.

Traumatic brain injury (TBI) is a significant public health concern characterized by a complex cascade of cellular events. TBI induces adenosine monophosphate-activated protein kinase (AMPK) dysfunction impairs energy balance activates inflammatory cytokines and leads to neuronal damage. AMPK is a key regulator of cellular energy homeostasis during inflammatory responses. Recent research has revealed its key role in modulating the inflammatory process in TBI. Following TBI the activation of AMPK can influence various important pathways and mechanisms including metabolic pathways and inflammatory signaling. Our study investigated the effects of post-TBI loss of AMPK function on functional outcomes inflammasome activation, and inflammatory cytokine production. Male C57BL/6 adult wild-type (WT) and AMPK knockout (AMPK-KO) mice were subjected to a controlled cortical impact (CCI) model of TBI or sham surgery. The mice were tested for behavioral impairment at 24 h post-TBI thereafter, mice were anesthetized, and their brains were quickly removed for histological and biochemical evaluation. In vitro we investigated inflammasome activation in mixed glial cells stimulated with lipopolysaccharides+ Interferon-gamma (LI) (0.1 {micro}g/20 ng/ml LPS/IFNg) for 6 h to induce an inflammatory response. Estimating the nucleotide-binding domain, leucine-rich-containing family pyrin domain containing western blotting ELISA and qRT-PCR performed 3 (NLRP3) inflammasome activation and cytokine production. Our findings suggest that TBI leads to reduced AMPK phosphorylation in WT mice and that the loss of AMPK correlates with worsened behavioral deficits at 24 h post-TBI in AMPK-KO mice as compared to WT mice. Moreover compared with the WT mice AMPK-KO mice exhibit exacerbated NLRP3 inflammasome activation and increased expression of proinflammatory mediators such as IL-1b IL-6 TNF-a iNOS and Cox 2. These results align with the in vitro studies using brain glial cells under inflammatory conditions, demonstrating greater activation of inflammasome components in AMPK-KO mice than in WT mice. Our results highlighted the critical role of AMPK in TBI outcomes. We found that the absence of AMPK worsens behavioral deficits and heightens inflammasome-mediated inflammation thereby exacerbating brain injury after TBI. Restoring AMPK activity after TBI could be a promising therapeutic approach for alleviating TBI-related damage.

neuroscience↗

Immuno-Responsive Gene-1: A mitochondrial gene regulates pathogenic Th17 in CNS autoimmunity mouse model

Pathogenic Th17 cells play crucial roles in CNS autoimmune diseases such as multiple sclerosis (MS), but their regulation by endogenous mechanisms remains unknown. Through RNA-seq analysis of primary brain glial cells, we identified immuno-responsive gene 1 (Irg1) as one of the highly upregulated gene under inflammatory conditions. Validation in the spinal cord of animals with experimental autoimmune encephalomyelitis (EAE), an MS model, confirmed elevated Irg1 levels in myeloid, CD4, and B cells in the EAE group raising the concern if Irg1 is detrimental or protective. Irg1 knockout (KO) mice exhibited severe EAE disease, increased mononuclear cell infiltration, and increased levels of triple-positive CD4+ T cells expressing IL17a, GM-CSF, and IFN{gamma}. A lack of Irg1 in macrophages elevates Class II expression, promoting the polarization of myelin-primed CD4+ T cells into pathogenic Th17 cells via the NLRP3/IL-1{beta} axis. Adoptive transfer in Rag-1 KO and single-cell RNA sequencing highlighted the crucial role of Irg1 in shaping pathogenic Th17 cells. Moreover, bone marrow chimeras revealed that immune cells lacking Irg1 maintained pathogenic and inflammatory phenotypes, suggesting its protective role in autoimmune diseases, including MS. SignificanceImmunoresponsive gene 1 (Irg1) was identified as a significantly elevated gene under inflammatory conditions through in vitro and in vivo models. Using global knockout mice, we identified Irg1 as a protective endogenous gene that negatively regulates pathogenic Th17 cells. Single-cell RNA sequencing of infiltrating cells during EAE revealed that Irg1 knockout enhanced the expression of pathogenic Th signatures in CD4+ T cells, indicating a robust proinflammatory environment. Irg1 negatively regulates IL-1{beta} in macrophages, which is essential for the differentiation of pTh17 CD4+ T cells, potentially clarifying the exacerbation of EAE in knockout animals. Our study identified Irg1 as a negative regulator of both innate and adaptive immune responses in a CNS autoimmunity model.

immunology↗

Pro-resolution lipid mediator maresin-1 ameliorates inflammation, promotes neuroprotection, and prevents disease progression in experimental models of multiple sclerosis

Multiple sclerosis (MS) is one of the most common inflammatory neurodegenerative diseases in young adults and causes neurological abnormalities and disability. We studied the effect of maresin 1 (MaR1) on the progression of disease in a relapsing-remitting form of experimental allergic encephalomyelitis (RR-EAE). Treatment with MaR1 in RR-EAE accelerated inflammation resolution, protected against neurological deficits, and delayed disease progression by decreasing immune cell infiltration (CD4+IL17+ and CD4+IFN{gamma}+) into the CNS. Furthermore, the administration of MaR1 increased the production of IL-10, predominantly in macrophages and CD4+ cells. However, neutralizing IL-10 with an anti-IL-10 antibody abolished the protective effect of MaR1 on RR-EAE, suggesting that IL-10 plays a role in mediating the protective effect of MaR1 on EAE. Metabolism is rapidly becoming recognized as an important factor influencing the effector function of many immune cells. Using cutting-edge metabolic assays, our study revealed that compared with vehicle treatment, MaR1 treatment effectively restored the metabolic dysregulation observed in CD4+ cells, macrophages, and microglia in the treated group. Furthermore, MaR1 treatment reversed defective efferocytosis in EAE mice, which was potentially facilitated by the induction of metabolic alterations in macrophages and microglia. MaR1 treatment also protected myelin in the EAE group and regulated the metabolism of O4+ oligodendrocytes by restoring metabolic dysregulation through improved mitochondrial function and decreased glycolysis. Overall, in a preclinical MS animal model, MaR1 treatment produced anti-inflammatory and neuroprotective effects. It also triggered metabolic reprogramming in disease-associated cell types, accelerated efferocytosis, and preserved myelination. These data support that MaR1 has potential as a novel treatment agent for MS and other autoimmune diseases. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=153 SRC="FIGDIR/small/559216v2_ufig1.gif" ALT="Figure 1"> View larger version (30K): org.highwire.dtl.DTLVardef@10b8a0aorg.highwire.dtl.DTLVardef@93bbfdorg.highwire.dtl.DTLVardef@11ae998org.highwire.dtl.DTLVardef@1de3324_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIMaR1 expedited inflammation resolution and prevented neurological impairments in RR-EAE. C_LIO_LIIL-10 plays a role in mediating the protective effect of MaR1 on EAE. C_LIO_LIMaR1 repaired CD4, macrophage, and microglia metabolic abnormalities. C_LIO_LIMaR1 therapy restored efferocytosis in EAE. C_LIO_LIMaR1 preserved myelin and improved O4+ oligodendrocyte metabolism. C_LI

neuroscience↗

Blood-based untargeted metabolomics in Relapsing-Remitting Multiple Sclerosis revealed the testable therapeutic target

Metabolic aberrations impact the pathogenesis of multiple sclerosis (MS) and possibly can provide clues for new treatment strategies. Using untargeted metabolomics, we measured serum metabolites from 35 relapsing-remitting patients and 14 healthy age-matched controls. Out of 632 known metabolites detected, 60 were significantly altered in relapsing-remitting MS (RRMS). Bioinformatics analysis identified an altered "metabotype" in RRMS patients, represented by 4 changed metabolic pathways of glycerophospholipid, citrate cycle, sphingolipid, and pyruvate metabolism. Interestingly, the common upstream metabolic pathway feeding these 4 pathways is the glycolysis pathway. Real-time bioenergetic analysis of the patient derived peripheral blood mononuclear cells, showed enhanced glycolysis, supporting the altered metabolic state of immune cells. Experimental autoimmune encephalomyelitis mice treated with the glycolytic inhibitor, 2-deoxy-D-glucose ameliorated the disease progression and inhibited the disease pathology significantly by promoting the anti-inflammatory phenotype of monocytes/macrophage in the central nervous system. Our study suggests that targeting glycolysis offers a potential target for MS.

neuroscience↗

Determinants of Nutritional Status among Children Under five age in Ethiopia: A Further Analysis of the Ethiopian Demographic and Health Survey (EDHS) 2016 Data

Child malnutrition is an underlying cause for almost half (45%) of child deaths, particularly in low socioeconomic communities of developing countries like Ethiopia. Globally, in 2018, 149 million children under five were stunted and over 49 million children were wasted. In Ethiopia, from the year 2005 to 2016, there is a decrease in stunting from 47% to 39%, but the prevalence of wasting changed little over the same time period (11% to 10%). Despite efforts made by the Ethiopian government and improvements in reducing malnutrition, the current rate of progress is not fast enough to have reached the global target by 2025.The aim of this study was to examine the determinants of nutritional status among children under five in Ethiopia. This study used data from 2016 Ethiopia Demographic and Heath Survey (EDHS) to examine determinants of nutritional status among children under five (0-59 months). This study used stunting and wasting as dependent variables for the analysis. Childrens, mothers, households, and environmental characteristics were used as determinant variables. Children not alive, and other missing values were considered as missing and was not included in the analyses. Sample weights were applied in all analysis due to the two stage cluster sampling design in the EDHS datasets. Multicollinearity among independent variables were checked. Logistic regression was used to analyse the determinants of nutritional status among under five age children. Bivariate analysis was also used to analyse the association between the dependent and independent variables. The chi-square test used to see the significance of association. The level of significance for the analysis was p<0.05. Age, and sex of child, educational status and body mass index, and short stature of mothers, residence, region, wealth quintile, toilet facilities and fuel types of households have significant association with stunting and wasting. However, mothers short stature has significant association with only stunting. The study found child, maternal, household and environmental characteristics were significantly associated with stunting and wasting among of children under five. This implies a multi-sectorial and multidimensional approach is important to address malnutrition in Ethiopia.

scientific communication and education↗