35 research outputs found

    Extracellular Tuning of Mitochondrial Respiration Leads to Aortic Aneurysm

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    Marfan syndrome (MFS) is an autosomal dominant disorder of the connective tissue caused by mutations in the FBN1 (fibrillin-1) gene encoding a large glycoprotein in the extracellular matrix called fibrillin-1. The major complication of this connective disorder is the risk to develop thoracic aortic aneurysm. To date, no effective pharmacologic therapies have been identified for the management of thoracic aortic disease and the only options capable of preventing aneurysm rupture are endovascular repair or open surgery. Here, we have studied the role of mitochondrial dysfunction in the progression of thoracic aortic aneurysm and mitochondrial boosting strategies as a potential treatment to managing aortic aneurysms.Fondo de Investigacion Sanitaria del Instituto de Salud Carlos III (PI16/188, PI19/855), the European Regional D evelopment Fund, and the European Commission through H2020-EU.1.1, European Research Council grant ERC-2016-StG 715322-EndoMitTalk, and Gobierno de Espana SAF2016-80305P. This work was partially supported by Comunidad de Madrid (S2017/BMD 3867 RENIM-CM) and cofinanced by the European Structural and Investment Fund. M.M. is supported by the Miguel Servet Program (CP 19/014, Fundacion de Investigacion del Hospital 12 de Octubr

    Integrative single-cell meta-analysis reveals disease-relevant vascular cell states and markers in human atherosclerosis

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    Coronary artery disease (CAD) is characterized by atherosclerotic plaque formation in the arterial wall. CAD progression involves complex interactions and phenotypic plasticity among vascular and immune cell lineages. Single-cell RNA-seq (scRNA-seq) studies have highlighted lineage-specific transcriptomic signatures, but human cell phenotypes remain controversial. Here, we perform an integrated meta-analysis of 22 scRNA-seq libraries to generate a comprehensive map of human atherosclerosis with 118,578 cells. Besides characterizing granular cell-type diversity and communication, we leverage this atlas to provide insights into smooth muscle cell (SMC) modulation. We integrate genome-wide association study data and uncover a critical role for modulated SMC phenotypes in CAD, myocardial infarction, and coronary calcification. Finally, we identify fibromyocyte/fibrochondrogenic SMC markers (LTBP1 and CRTAC1) as proxies of atherosclerosis progression and validate these through omics and spatial imaging analyses. Altogether, we create a unified atlas of human atherosclerosis informing cell state-specific mechanistic and translational studies of cardiovascular diseases.</p

    miR-199a-5p Is Upregulated during Fibrogenic Response to Tissue Injury and Mediates TGFbeta-Induced Lung Fibroblast Activation by Targeting Caveolin-1

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    As miRNAs are associated with normal cellular processes, deregulation of miRNAs is thought to play a causative role in many complex diseases. Nevertheless, the precise contribution of miRNAs in fibrotic lung diseases, especially the idiopathic form (IPF), remains poorly understood. Given the poor response rate of IPF patients to current therapy, new insights into the pathogenic mechanisms controlling lung fibroblasts activation, the key cell type driving the fibrogenic process, are essential to develop new therapeutic strategies for this devastating disease. To identify miRNAs with potential roles in lung fibrogenesis, we performed a genome-wide assessment of miRNA expression in lungs from two different mouse strains known for their distinct susceptibility to develop lung fibrosis after bleomycin exposure. This led to the identification of miR-199a-5p as the best miRNA candidate associated with bleomycin response. Importantly, miR-199a-5p pulmonary expression was also significantly increased in IPF patients (94 IPF versus 83 controls). In particular, levels of miR-199a-5p were selectively increased in myofibroblasts from injured mouse lungs and fibroblastic foci, a histologic feature associated with IPF. Therefore, miR-199a-5p profibrotic effects were further investigated in cultured lung fibroblasts: miR-199a-5p expression was induced upon TGFβ exposure, and ectopic expression of miR-199a-5p was sufficient to promote the pathogenic activation of pulmonary fibroblasts including proliferation, migration, invasion, and differentiation into myofibroblasts. In addition, we demonstrated that miR-199a-5p is a key effector of TGFβ signaling in lung fibroblasts by regulating CAV1, a critical mediator of pulmonary fibrosis. Remarkably, aberrant expression of miR-199a-5p was also found in unilateral ureteral obstruction mouse model of kidney fibrosis, as well as in both bile duct ligation and CCl4-induced mouse models of liver fibrosis, suggesting that dysregulation of miR-199a-5p represents a general mechanism contributing to the fibrotic process. MiR-199a-5p thus behaves as a major regulator of tissue fibrosis with therapeutic potency to treat fibroproliferative diseases. © 2013 Lino Cardenas et al

    Identification of Keratinocyte Growth Factor as a Target of microRNA-155 in Lung Fibroblasts: Implication in Epithelial-Mesenchymal Interactions

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    International audienceBACKGROUND: Epithelial-mesenchymal interactions are critical in regulating many aspects of vertebrate embryo development, and for the maintenance of homeostatic equilibrium in adult tissues. The interactions between epithelium and mesenchyme are believed to be mediated by paracrine signals such as cytokines and extracellular matrix components secreted from fibroblasts that affect adjacent epithelia. In this study, we sought to identify the repertoire of microRNAs (miRNAs) in normal lung human fibroblasts and their potential regulation by the cytokines TNF-alpha, IL-1beta and TGF-beta. METHODOLOGY/PRINCIPAL FINDINGS: MiR-155 was significantly induced by inflammatory cytokines TNF-alpha and IL-1beta while it was down-regulated by TGF-beta. Ectopic expression of miR-155 in human fibroblasts induced modulation of a large set of genes related to "cell to cell signalling", "cell morphology" and "cellular movement". This was consistent with an induction of caspase-3 activity and with an increase in cell migration in fibroblasts tranfected with miR-155. Using different miRNA bioinformatic target prediction tools, we found a specific enrichment for miR-155 predicted targets among the population of down-regulated transcripts. Among fibroblast-selective targets, one interesting hit was keratinocyte growth factor (KGF, FGF-7), a member of the fibroblast growth factor (FGF) family, which owns two potential binding sites for miR-155 in its 3'-UTR. Luciferase assays experimentally validated that miR-155 can efficiently target KGF 3'-UTR. Site-directed mutagenesis revealed that only one out of the 2 potential sites was truly functional. Functional in vitro assays experimentally validated that miR-155 can efficiently target KGF 3'-UTR. Furthermore, in vivo experiments using a mouse model of lung fibrosis showed that miR-155 expression level was correlated with the degree of lung fibrosis. CONCLUSIONS/SIGNIFICANCE: Our results strongly suggest a physiological function of miR-155 in lung fibroblasts. Altogether, this study implicates this miRNA in the regulation by mesenchymal cells of surrounding lung epithelium, making it a potential key player during tissue injury

    Mortality from gastrointestinal congenital anomalies at 264 hospitals in 74 low-income, middle-income, and high-income countries: a multicentre, international, prospective cohort study

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    Summary Background Congenital anomalies are the fifth leading cause of mortality in children younger than 5 years globally. Many gastrointestinal congenital anomalies are fatal without timely access to neonatal surgical care, but few studies have been done on these conditions in low-income and middle-income countries (LMICs). We compared outcomes of the seven most common gastrointestinal congenital anomalies in low-income, middle-income, and high-income countries globally, and identified factors associated with mortality. Methods We did a multicentre, international prospective cohort study of patients younger than 16 years, presenting to hospital for the first time with oesophageal atresia, congenital diaphragmatic hernia, intestinal atresia, gastroschisis, exomphalos, anorectal malformation, and Hirschsprung’s disease. Recruitment was of consecutive patients for a minimum of 1 month between October, 2018, and April, 2019. We collected data on patient demographics, clinical status, interventions, and outcomes using the REDCap platform. Patients were followed up for 30 days after primary intervention, or 30 days after admission if they did not receive an intervention. The primary outcome was all-cause, in-hospital mortality for all conditions combined and each condition individually, stratified by country income status. We did a complete case analysis. Findings We included 3849 patients with 3975 study conditions (560 with oesophageal atresia, 448 with congenital diaphragmatic hernia, 681 with intestinal atresia, 453 with gastroschisis, 325 with exomphalos, 991 with anorectal malformation, and 517 with Hirschsprung’s disease) from 264 hospitals (89 in high-income countries, 166 in middleincome countries, and nine in low-income countries) in 74 countries. Of the 3849 patients, 2231 (58·0%) were male. Median gestational age at birth was 38 weeks (IQR 36–39) and median bodyweight at presentation was 2·8 kg (2·3–3·3). Mortality among all patients was 37 (39·8%) of 93 in low-income countries, 583 (20·4%) of 2860 in middle-income countries, and 50 (5·6%) of 896 in high-income countries (p<0·0001 between all country income groups). Gastroschisis had the greatest difference in mortality between country income strata (nine [90·0%] of ten in lowincome countries, 97 [31·9%] of 304 in middle-income countries, and two [1·4%] of 139 in high-income countries; p≤0·0001 between all country income groups). Factors significantly associated with higher mortality for all patients combined included country income status (low-income vs high-income countries, risk ratio 2·78 [95% CI 1·88–4·11], p<0·0001; middle-income vs high-income countries, 2·11 [1·59–2·79], p<0·0001), sepsis at presentation (1·20 [1·04–1·40], p=0·016), higher American Society of Anesthesiologists (ASA) score at primary intervention (ASA 4–5 vs ASA 1–2, 1·82 [1·40–2·35], p<0·0001; ASA 3 vs ASA 1–2, 1·58, [1·30–1·92], p<0·0001]), surgical safety checklist not used (1·39 [1·02–1·90], p=0·035), and ventilation or parenteral nutrition unavailable when needed (ventilation 1·96, [1·41–2·71], p=0·0001; parenteral nutrition 1·35, [1·05–1·74], p=0·018). Administration of parenteral nutrition (0·61, [0·47–0·79], p=0·0002) and use of a peripherally inserted central catheter (0·65 [0·50–0·86], p=0·0024) or percutaneous central line (0·69 [0·48–1·00], p=0·049) were associated with lower mortality. Interpretation Unacceptable differences in mortality exist for gastrointestinal congenital anomalies between lowincome, middle-income, and high-income countries. Improving access to quality neonatal surgical care in LMICs will be vital to achieve Sustainable Development Goal 3.2 of ending preventable deaths in neonates and children younger than 5 years by 2030

    Identification et caractérisation du polymorphisme génétique des cytochromes P450 4A11 et 4A22 (CYP4A11 et CYP4A22) et de la glycine N-acyltransférase (GLYAT)

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    Through evolution, in order to adapt to its chemical environment, the human organism has developed enzymatic systems that can transform exogenous molecules or xenobiotic (drugs, toxins, carcinogens…), generally of hydrophobic nature, in metabolites more easily excretable via urinary or biliary tract. Some of these enzymes are also involved in catabolic processes or in the biosynthesis of endogenous compounds (fatty acids, retinoids, steroids, prostaglandins…). These enzymes thus play a major role in the protective response of the body toward chemicals and in essential physiological processes. The existence of anomalies in the sequence or structure of the genes encoding these enzymes can expose carriers of these anomalies to particular susceptibility toward xenobiotics or to impairment of essential biological reactions. In a first step, we investigated the nature and extent of the sequence variability of three genes coding for the enzymes CYP4A11, CYP4A22 and Glycine N-acyltransferase (GLYAT). In a second step, functional analyses of sequence variations were carried out, by in silico and in vitro experiments. The CYP4A11 and CYP4A22 genes are the only members of the human CYP4A subfamily. The activity of the recently identified CYP4A22 isoform is still unknown, but the CYP4A11 isoform is know as a &#969;-hydroxylase of the arachidonic acid, which converted into 20-hydroxyeicosatetraenoic acid (20-HETE). Several studies have shown that genetic anomalies of CYP4A are likely to contribute for susceptibility to hypertension in humans. We analyzed the sequence variations of the CYP4A11 and CYP4A22 genes in genomic DNA samples of healthy volunteers. A total of 26 polymorphisms were identified and 5 novel CYP4A* alleles were characterized for each CYP4A gene. The CYP4A 3D models were built and validated to analyse the potential impact of sequence variations identified. This work represents the first description and characterisation of genetic polymorphism of the human CYP4A genes in a French population. The glycine N-acyltranferase or GLYAT plays an important role in the detoxification of xenobiotics containing a carboxylic group via conjugation with a glycine residue. Seven sequence variations of the GLYAT gene were identified and four novel GLYAT* alleles were characterized. Localisation of missense mutations in predicted secondary structures suggest that these variants might have a potential role on the GLYAT protein activity. These results could be helpful in investigating the potential association of GLYAT variants with an incidence of reduced efficiency in xenobiotic carboxylic acids detoxification in humans, such as acetylsalicylic acid, pesticides, and solvents (Toluene).Afin de s'adapter à son environnement chimique, l'organisme a développé au cours de l'évolution des systèmes enzymatiques capables de transformer de nombreuses molécules étrangères ou xénobiotiques (médicaments, composés toxiques, carcinogènes...), le plus souvent de nature hydrophobe, en métabolites suffisamment hydrophiles pour être plus facilement excrétés par voie urinaire et/ou biliaire. Certaines de ces enzymes sont également impliquées dans des processus cataboliques ou de biosynthèses de composés endogènes (acides gras, rétinoïdes, stéroïdes, prostaglandines…). Ces enzymes jouent ainsi un rôle fondamental à la fois dans la défense de l'organisme face à son environnement chimique et dans des processus physiologiques essentiels. On comprend dès lors que s'il existe, chez certains individus, des anomalies de séquence ou de structure des gènes codant pour ces enzymes, une partie de la population présentera une susceptibilité particulière à certaines molécules de l'environnement, voire des dysfonctionnements de certaines réactions biologiques indispensables. Les travaux de cette thèse s'inscrivent dans cette démarche. Dans un premier temps, ils ont consisté à évaluer la nature et l'étendue de la variabilité de la séquence nucléotidique de trois gènes codants pour les enzymes CYP4A11, CYP4A22 et la Glycine N-acyltransférase (GLYAT). Dans un deuxième temps, les analyses fonctionnelles des variations de séquence identifiées ont été abordées par des approches in silico et in vitro. Les cytochromes P450 CYP4A11 et CYP4A22, participent à la biotransformation de composés endogènes et sont impliqués plus particulièrement dans la voie d’activation de l’acide arachidonique. Des travaux récents suggèrent que des anomalies génétiques de ces enzymes constituent des facteurs de susceptibilité à l’hypertension artérielle chez l’homme. Nous avons ainsi analysé les variations de séquence du gène CYP4A11 et CYP4A22 dans des échantillons d'ADN provenant de volontaires sains. Au total, 26 polymorphismes ont été identifiés et 5 nouveaux CYP4A* allèles ont été caractérisés pour chaque isoforme CYP4A. Les structures 3D des protéines CYP4A ont été construites et validées pour l’analyse de l’impact des mutations identifiées. Bien que des travaux supplémentaires soient nécessaires pour confirmer le lien entre le polymorphisme génétique du CYP4A11 et du CYP4A22 et l’hypertension artérielle, ce travail représente la première description et caractérisation du polymorphisme génétique des isoformes CYP4A dans une population Française. De plus, nous avons mise en évidence une variabilité interethnique de ce polymorphisme génétique dans différentes populations testées. La glycine N-acyltransférase ou GLYAT est une enzyme impliquée dans la détoxication de xénobiotiques contenant un groupement carboxylique par conjugaison d’un résidu de glycine. Sept variations de séquence de la GLYAT ont été identifiées et quatre nouveaux GLYAT* allèles ont été caractérisés. La localisation des certaines mutations dans des structures secondaires très conservées de la protéine suggère un impact sur l’activité catalytique de cette enzyme. Bien que les conséquences cliniques potentielles de ces variations restent encore à étudier, ces résultats seront utiles pour de futures études d’association de ce polymorphisme génétique de la GLYAT avec les altérations de détoxications de xénobiotiques contenant un groupement carboxylique comme l’aspirine, certains pesticides ou le toluène

    Identification and characterisation of genetic polymorphism of the cytochrome P450s 4A11 and 4A22 (CYP4A11 and CYP4A22) and Glycine N-acyltransferase (GLYAT) genes

    No full text
    Afin de s'adapter à son environnement chimique, l'organisme a développé au cours de l'évolution des systèmes enzymatiques capables de transformer de nombreuses molécules étrangères ou xénobiotiques (médicaments, composés toxiques, carcinogènes...), le plus souvent de nature hydrophobe, en métabolites suffisamment hydrophiles pour être plus facilement excrétés par voie urinaire et/ou biliaire. Certaines de ces enzymes sont également impliquées dans des processus cataboliques ou de biosynthèses de composés endogènes (acides gras, rétinoïdes, stéroïdes, prostaglandines…). Ces enzymes jouent ainsi un rôle fondamental à la fois dans la défense de l'organisme face à son environnement chimique et dans des processus physiologiques essentiels. On comprend dès lors que s'il existe, chez certains individus, des anomalies de séquence ou de structure des gènes codant pour ces enzymes, une partie de la population présentera une susceptibilité particulière à certaines molécules de l'environnement, voire des dysfonctionnements de certaines réactions biologiques indispensables. Les travaux de cette thèse s'inscrivent dans cette démarche. Dans un premier temps, ils ont consisté à évaluer la nature et l'étendue de la variabilité de la séquence nucléotidique de trois gènes codants pour les enzymes CYP4A11, CYP4A22 et la Glycine N-acyltransférase (GLYAT). Dans un deuxième temps, les analyses fonctionnelles des variations de séquence identifiées ont été abordées par des approches in silico et in vitro. Les cytochromes P450 CYP4A11 et CYP4A22, participent à la biotransformation de composés endogènes et sont impliqués plus particulièrement dans la voie d’activation de l’acide arachidonique. Des travaux récents suggèrent que des anomalies génétiques de ces enzymes constituent des facteurs de susceptibilité à l’hypertension artérielle chez l’homme. Nous avons ainsi analysé les variations de séquence du gène CYP4A11 et CYP4A22 dans des échantillons d'ADN provenant de volontaires sains. Au total, 26 polymorphismes ont été identifiés et 5 nouveaux CYP4A* allèles ont été caractérisés pour chaque isoforme CYP4A. Les structures 3D des protéines CYP4A ont été construites et validées pour l’analyse de l’impact des mutations identifiées. Bien que des travaux supplémentaires soient nécessaires pour confirmer le lien entre le polymorphisme génétique du CYP4A11 et du CYP4A22 et l’hypertension artérielle, ce travail représente la première description et caractérisation du polymorphisme génétique des isoformes CYP4A dans une population Française. De plus, nous avons mise en évidence une variabilité interethnique de ce polymorphisme génétique dans différentes populations testées. La glycine N-acyltransférase ou GLYAT est une enzyme impliquée dans la détoxication de xénobiotiques contenant un groupement carboxylique par conjugaison d’un résidu de glycine. Sept variations de séquence de la GLYAT ont été identifiées et quatre nouveaux GLYAT* allèles ont été caractérisés. La localisation des certaines mutations dans des structures secondaires très conservées de la protéine suggère un impact sur l’activité catalytique de cette enzyme. Bien que les conséquences cliniques potentielles de ces variations restent encore à étudier, ces résultats seront utiles pour de futures études d’association de ce polymorphisme génétique de la GLYAT avec les altérations de détoxications de xénobiotiques contenant un groupement carboxylique comme l’aspirine, certains pesticides ou le toluène.Through evolution, in order to adapt to its chemical environment, the human organism has developed enzymatic systems that can transform exogenous molecules or xenobiotic (drugs, toxins, carcinogens…), generally of hydrophobic nature, in metabolites more easily excretable via urinary or biliary tract. Some of these enzymes are also involved in catabolic processes or in the biosynthesis of endogenous compounds (fatty acids, retinoids, steroids, prostaglandins…). These enzymes thus play a major role in the protective response of the body toward chemicals and in essential physiological processes. The existence of anomalies in the sequence or structure of the genes encoding these enzymes can expose carriers of these anomalies to particular susceptibility toward xenobiotics or to impairment of essential biological reactions. In a first step, we investigated the nature and extent of the sequence variability of three genes coding for the enzymes CYP4A11, CYP4A22 and Glycine N-acyltransferase (GLYAT). In a second step, functional analyses of sequence variations were carried out, by in silico and in vitro experiments. The CYP4A11 and CYP4A22 genes are the only members of the human CYP4A subfamily. The activity of the recently identified CYP4A22 isoform is still unknown, but the CYP4A11 isoform is know as a &#969;-hydroxylase of the arachidonic acid, which converted into 20-hydroxyeicosatetraenoic acid (20-HETE). Several studies have shown that genetic anomalies of CYP4A are likely to contribute for susceptibility to hypertension in humans. We analyzed the sequence variations of the CYP4A11 and CYP4A22 genes in genomic DNA samples of healthy volunteers. A total of 26 polymorphisms were identified and 5 novel CYP4A* alleles were characterized for each CYP4A gene. The CYP4A 3D models were built and validated to analyse the potential impact of sequence variations identified. This work represents the first description and characterisation of genetic polymorphism of the human CYP4A genes in a French population. The glycine N-acyltranferase or GLYAT plays an important role in the detoxification of xenobiotics containing a carboxylic group via conjugation with a glycine residue. Seven sequence variations of the GLYAT gene were identified and four novel GLYAT* alleles were characterized. Localisation of missense mutations in predicted secondary structures suggest that these variants might have a potential role on the GLYAT protein activity. These results could be helpful in investigating the potential association of GLYAT variants with an incidence of reduced efficiency in xenobiotic carboxylic acids detoxification in humans, such as acetylsalicylic acid, pesticides, and solvents (Toluene)

    High Concentrations of Rosiglitazone Reduce mRNA and Protein Levels of LRP1 in HepG2 Cells

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    Low-density lipoprotein receptor-related protein 1 (LRP1) is an endocytic receptor involved in the uptake of a variety of molecules, such as apoE, α2-macroglobulin, and the amyloid β peptide (Aβ), for either transcellular transport, protein trafficking or lysosomal degradation. The LRP1 gene can be transcribed upon activation of peroxisome proliferator receptor activated-γ (PPARγ) by the potent PPARγ agonist, rosiglitazone (RGZ). In previous studies, RGZ was shown to upregulate LRP1 levels in concentrations between 0.1 and 5 μM in HepG2 cells. In this study, we sought to replicate previous studies and to investigate the molecular mechanism by which high concentrations of RGZ reduce LRP1 levels in HepG2 cells. Our data confirmed that transcriptional activation of LRP1 occurred in response to RGZ at 3 and 10 μM, in agreement with the study reported by Moon et al. (2012a). On the other hand, we found that high concentrations of RGZ decreased both mRNA and protein levels of LRP1. Mechanistically, transcriptional dysregulation of LRP1 was affected by the downregulation of PPARγ in a time- and concentration-dependent manner. However, downregulation of PPARγ was responsible for only 40% of the LRP1 reduction and thereby the remaining loss of LRP1 (60%) was found to be through degradation in the lysosomal system. In conclusion, our findings demonstrate the mechanisms by which high concentrations of RGZ caused LRP1 levels to be reduced in HepG2 cells. Taken together, this data will be helpful to better explain the pharmacological modulation of this pivotal membrane receptor by PPARγ agonists
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