41 research outputs found

    Analysis of the Genome and Transcriptome of Cryptococcus neoformans var. grubii Reveals Complex RNA Expression and Microevolution Leading to Virulence Attenuation

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    Cryptococcus neoformans is a pathogenic basidiomycetous yeast responsible for more than 600,000 deaths each year. It occurs as two serotypes (A and D) representing two varieties (i.e. grubii and neoformans, respectively). Here, we sequenced the genome and performed an RNA-Seq-based analysis of the C. neoformans var. grubii transcriptome structure. We determined the chromosomal locations, analyzed the sequence/structural features of the centromeres, and identified origins of replication. The genome was annotated based on automated and manual curation. More than 40,000 introns populating more than 99% of the expressed genes were identified. Although most of these introns are located in the coding DNA sequences (CDS), over 2,000 introns in the untranslated regions (UTRs) were also identified. Poly(A)-containing reads were employed to locate the polyadenylation sites of more than 80% of the genes. Examination of the sequences around these sites revealed a new poly(A)-site-associated motif (AUGHAH). In addition, 1,197 miscRNAs were identified. These miscRNAs can be spliced and/or polyadenylated, but do not appear to have obvious coding capacities. Finally, this genome sequence enabled a comparative analysis of strain H99 variants obtained after laboratory passage. The spectrum of mutations identified provides insights into the genetics underlying the micro-evolution of a laboratory strain, and identifies mutations involved in stress responses, mating efficiency, and virulence

    Socializing One Health: an innovative strategy to investigate social and behavioral risks of emerging viral threats

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    In an effort to strengthen global capacity to prevent, detect, and control infectious diseases in animals and people, the United States Agency for International Development’s (USAID) Emerging Pandemic Threats (EPT) PREDICT project funded development of regional, national, and local One Health capacities for early disease detection, rapid response, disease control, and risk reduction. From the outset, the EPT approach was inclusive of social science research methods designed to understand the contexts and behaviors of communities living and working at human-animal-environment interfaces considered high-risk for virus emergence. Using qualitative and quantitative approaches, PREDICT behavioral research aimed to identify and assess a range of socio-cultural behaviors that could be influential in zoonotic disease emergence, amplification, and transmission. This broad approach to behavioral risk characterization enabled us to identify and characterize human activities that could be linked to the transmission dynamics of new and emerging viruses. This paper provides a discussion of implementation of a social science approach within a zoonotic surveillance framework. We conducted in-depth ethnographic interviews and focus groups to better understand the individual- and community-level knowledge, attitudes, and practices that potentially put participants at risk for zoonotic disease transmission from the animals they live and work with, across 6 interface domains. When we asked highly-exposed individuals (ie. bushmeat hunters, wildlife or guano farmers) about the risk they perceived in their occupational activities, most did not perceive it to be risky, whether because it was normalized by years (or generations) of doing such an activity, or due to lack of information about potential risks. Integrating the social sciences allows investigations of the specific human activities that are hypothesized to drive disease emergence, amplification, and transmission, in order to better substantiate behavioral disease drivers, along with the social dimensions of infection and transmission dynamics. Understanding these dynamics is critical to achieving health security--the protection from threats to health-- which requires investments in both collective and individual health security. Involving behavioral sciences into zoonotic disease surveillance allowed us to push toward fuller community integration and engagement and toward dialogue and implementation of recommendations for disease prevention and improved health security

    Identification of inhibitors of nonsense-mediated mRNA decay (NMD) and use as a therapeutic approach for some genetic diseases

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    Le NMD (nonsense-mediated mRNA decay) est un mécanisme qui reconnaît et dégrade les ARNm portant un codon stop prématuré afin d’empêcher la synthèse de protéines tronquées qui pourraient avoir des effets néfastes pour la cellule ou tout simplement être non fonctionnelles. Cependant, dans un certain nombre de cas, selon la position du codon stop prématuré, la protéine tronquée qui serait synthétisée si le NMD n’existait pas, pourrait remplir complètement ou partiellement la fonction de la protéine sauvage. Il faut noter qu’un codon stop prématuré est retrouvé dans le gène responsable d’une pathologie dans un tiers des maladies génétiques et de nombreuses formes de cancer. Dans la plus grande majorité des cas, la maladie se développe non pas parce qu’une protéine tronquée non fonctionnelle ou instable est synthétisée, mais plutôt parce que le gène muté n’est pas exprimé du fait de l’intervention du NMD sur l’ARNm qui en dérive. Une nouvelle approche thérapeutique de ces maladies serait d’inhiber le NMD afin de permettre la synthèse de protéines tronquées fonctionnelles et sauver le phénotype clinique. Nous avons donc décidé de rechercher des inhibiteurs du mécanisme du NMD parmi des petites molécules chimiques. Pour cela, nous avons mis au point un système de criblage en culture cellulaire reliant l’efficacité du NMD dans une cellule avec une activité luciférase mesurable directement sur les cultures cellulaires, au moyen d’un luminomètre. A partir d’un premier criblage d’environ 1500 composés chimiques, nous avons identifié une nouvelle molécule capable d’inhiber efficacement le NMD. De façon intéressante, cette nouvelle molécule est capable également d’induire la synthèse de protéines entières à partir d’un ARNm portant un codon stop prématuré. Nous avons utilisé cet inhibiteur dans des expériences pour déterminer son potentiel thérapeutique sur des modèles cellulaires de maladies génétiques tels que la dystrophie musculaire de Duchenne, la mucoviscidose et le cancer. Nos résultats démontrent que l’inhibition du NMD peut être en effet envisagée comme une nouvelle approche thérapeutique pour des maladies causées par l’apparition d’une mutation non sens. Nous avons aussi identifié une autre molécule chimique capable d’inhiber le NMD et permettant de faire un lien entre efficacité du NMD et intégrité du cytosquelette.MRNAs harboring a premature termination codon are rapidly degraded by a mechanism called nonsense-mediated mRNA decay (NMD). NMD is a surveillance pathway that prevents the synthesis of truncated proteins that could be harmful for the cell or simply be non-functional. However in some cases, depending on the position of the premature stop codon, the truncated protein that would be synthesized if there were no NMD would be partially or fully as functional as the wild-type protein. It is noteworthy that premature termination codons are found in approximately one-third of inherited genetic disorders and several forms of cancer. In most of cases the disease arises not because a non-functional or unstable truncated protein is synthesized, but instead because the degradation of the transcript by NMD leads to complete loss of protein production. Therefore, NMD inhibition could be an interesting therapeutic approach in some cases of nonsense-related genetic diseases in which functional truncated proteins can restore the clinical phenotype. We decided to search for NMD inhibitors among thousands of small molecules. We developed a cell-based screening method which couples NMD efficiency into the cell to a luciferase activity that can be measured directly into cells by a luminometer. From a screening of approximately 1500 compounds, we have identified one molecule capable of efficiently inhibit NMD. Interestingly, this compound is also able to induce the synthesis of full-length proteins from an mRNA bearing a premature termination codon. We evaluated the therapeutic potential of this compound in different cellular models of genetic disorders such as Duchenne’s muscular dystrophy, cystic fibrosis and cancer. Our results demonstrate that NMD inhibition in general can be considered as an useful therapeutic approach to rescue PTC consequences in genetic diseases provoked by the apparition of a nonsense mutation. We have also identified another compound that inhibits NMD and uncovers a relationship between the NMD efficiency and the integrity of the cytoskeleton

    Identification d’inhibiteurs du nonsense-mediated mRNA decay (NMD) et utilisation comme approche thérapeutique dans certaines maladies génétiques

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    MRNAs harboring a premature termination codon are rapidly degraded by a mechanism called nonsense-mediated mRNA decay (NMD). NMD is a surveillance pathway that prevents the synthesis of truncated proteins that could be harmful for the cell or simply be non-functional. However in some cases, depending on the position of the premature stop codon, the truncated protein that would be synthesized if there were no NMD would be partially or fully as functional as the wild-type protein. It is noteworthy that premature termination codons are found in approximately one-third of inherited genetic disorders and several forms of cancer. In most of cases the disease arises not because a non-functional or unstable truncated protein is synthesized, but instead because the degradation of the transcript by NMD leads to complete loss of protein production. Therefore, NMD inhibition could be an interesting therapeutic approach in some cases of nonsense-related genetic diseases in which functional truncated proteins can restore the clinical phenotype. We decided to search for NMD inhibitors among thousands of small molecules. We developed a cell-based screening method which couples NMD efficiency into the cell to a luciferase activity that can be measured directly into cells by a luminometer. From a screening of approximately 1500 compounds, we have identified one molecule capable of efficiently inhibit NMD. Interestingly, this compound is also able to induce the synthesis of full-length proteins from an mRNA bearing a premature termination codon. We evaluated the therapeutic potential of this compound in different cellular models of genetic disorders such as Duchenne’s muscular dystrophy, cystic fibrosis and cancer. Our results demonstrate that NMD inhibition in general can be considered as an useful therapeutic approach to rescue PTC consequences in genetic diseases provoked by the apparition of a nonsense mutation. We have also identified another compound that inhibits NMD and uncovers a relationship between the NMD efficiency and the integrity of the cytoskeleton.Le NMD (nonsense-mediated mRNA decay) est un mécanisme qui reconnaît et dégrade les ARNm portant un codon stop prématuré afin d’empêcher la synthèse de protéines tronquées qui pourraient avoir des effets néfastes pour la cellule ou tout simplement être non fonctionnelles. Cependant, dans un certain nombre de cas, selon la position du codon stop prématuré, la protéine tronquée qui serait synthétisée si le NMD n’existait pas, pourrait remplir complètement ou partiellement la fonction de la protéine sauvage. Il faut noter qu’un codon stop prématuré est retrouvé dans le gène responsable d’une pathologie dans un tiers des maladies génétiques et de nombreuses formes de cancer. Dans la plus grande majorité des cas, la maladie se développe non pas parce qu’une protéine tronquée non fonctionnelle ou instable est synthétisée, mais plutôt parce que le gène muté n’est pas exprimé du fait de l’intervention du NMD sur l’ARNm qui en dérive. Une nouvelle approche thérapeutique de ces maladies serait d’inhiber le NMD afin de permettre la synthèse de protéines tronquées fonctionnelles et sauver le phénotype clinique. Nous avons donc décidé de rechercher des inhibiteurs du mécanisme du NMD parmi des petites molécules chimiques. Pour cela, nous avons mis au point un système de criblage en culture cellulaire reliant l’efficacité du NMD dans une cellule avec une activité luciférase mesurable directement sur les cultures cellulaires, au moyen d’un luminomètre. A partir d’un premier criblage d’environ 1500 composés chimiques, nous avons identifié une nouvelle molécule capable d’inhiber efficacement le NMD. De façon intéressante, cette nouvelle molécule est capable également d’induire la synthèse de protéines entières à partir d’un ARNm portant un codon stop prématuré. Nous avons utilisé cet inhibiteur dans des expériences pour déterminer son potentiel thérapeutique sur des modèles cellulaires de maladies génétiques tels que la dystrophie musculaire de Duchenne, la mucoviscidose et le cancer. Nos résultats démontrent que l’inhibition du NMD peut être en effet envisagée comme une nouvelle approche thérapeutique pour des maladies causées par l’apparition d’une mutation non sens. Nous avons aussi identifié une autre molécule chimique capable d’inhiber le NMD et permettant de faire un lien entre efficacité du NMD et intégrité du cytosquelette

    The second bovine β-galactoside-α2,6-sialyltransferase (ST6Gal II): genomic organization and stimulation of its in vitro expression by IL-6 in bovine mammary epithelial cells

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    Chantier qualité GAWe have cloned a cDNA sequence encoding the second bovine β-galactoside-α2,6-sialyltransferase whose sequence shares more than 75% of identity with hST6Gal II cDNA coding sequence. The bovine gene, located on BTA 11, spans over 50 kbp with five exons (E1–E5) containing the 1488 bp open reading frame and a 5′-untranslated exon (E0). The gene expression pattern reveals a specific tissue distribution (brain, lungs, spleen, salivary, and mammary glands) compared to ST6Gal I which is ubiquitously expressed. We identified for bovine ST6Gal II three kinds of transcripts which differ by their 5′-untranslated regions. Among them, two transcripts are brain specific whereas the third one is found in all of the tissues expressing the gene. Two pFlag-bST6Gal II vector constructions were separately transfected in COS-1 cells in order to express either membrane-bound or soluble active forms of ST6Gal II. Enzymatic assays with these two forms indicated that the enzyme used the LacdiNAc structure (GalNAcβ1,4GlcNAc) as a better acceptor substrate than the Type II (Galβ1-4GlcNAc) disaccharide. Moreover, the enzyme's efficiency is improved when the acceptor substrate is provided as a free oligosaccharide rather than as a protein-bound oligosaccharide. In order to investigate the potential role of ST6Gal II during the acute phase of inflammation, we used primary cultures of bovine mammary epithelial cells which were stimulated with pro-inflammatory cytokines. It appears that the ST6Gal II gene was upregulated in cells stimulated by IL-6. This result suggested that α2,6-sialylation mediated by this gene could contribute to organism's response to infections

    Annales : histoire, sciences sociales

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    Most Cryptococccus neoformans genes are interrupted by introns, and alternative splicing occurs very often. In this study, we examined the influence of introns on C. neoformans gene expression. For most tested genes, elimination of introns greatly reduces mRNA accumulation. Strikingly, the number and the position of introns modulate the gene expression level in a cumulative manner. A screen for mutant strains able to express functionally an intronless allele revealed that the nuclear poly(A) binding protein Pab2 modulates intron-dependent regulation of gene expression in C. neoformans. PAB2 deletion partially restored accumulation of intronless mRNA. In addition, our results demonstrated that the essential nucleases Rrp44p and Xrn2p are implicated in the degradation of mRNA transcribed from an intronless allele in C. neoformans. Double mutant constructions and over-expression experiments suggested that Pab2p and Xrn2p could act in the same pathway whereas Rrp44p appears to act independently. Finally, deletion of the RRP6 or the CID14 gene, encoding the nuclear exosome nuclease and the TRAMP complex associated poly(A) polymerase, respectively, has no effect on intronless allele expression

    Rescue of nonsense mutations by amlexanox in human cells.

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    International audienceABSTRACT: BACKGROUND: Nonsense mutations are at the origin of many cancers and inherited genetic diseases. The consequence of nonsense mutations is often the absence of mutant gene expression due to the activation of an mRNA surveillance mechanism called nonsense-mediated mRNA decay (NMD). Strategies to rescue the expression of nonsense-containing mRNAs have been developed such as NMD inhibition or nonsense mutation readthrough. METHODS: Using a dedicated screening system, we sought molecules capable to block NMD. Additionally, 3 cell lines derived from patient cells and harboring a nonsense mutation were used to study the effect of the selected molecule on the level of nonsense-containing mRNAs and the synthesis of proteins from these mutant mRNAs. RESULTS: We demonstrate here that amlexanox, a drug used for decades, not only induces an increase in nonsense-containing mRNAs amount in treated cells, but also leads to the synthesis of the full-length protein in an efficient manner. We also demonstrated that these full length proteins are functional. CONCLUSIONS: As a result of this dual activity, amlexanox may be useful as a therapeutic approach for diseases caused by nonsense mutations

    Rescue of nonsense mutations by amlexanox in human cells

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    Abstract Background Nonsense mutations are at the origin of many cancers and inherited genetic diseases. The consequence of nonsense mutations is often the absence of mutant gene expression due to the activation of an mRNA surveillance mechanism called nonsense-mediated mRNA decay (NMD). Strategies to rescue the expression of nonsense-containing mRNAs have been developed such as NMD inhibition or nonsense mutation readthrough. Methods Using a dedicated screening system, we sought molecules capable to block NMD. Additionally, 3 cell lines derived from patient cells and harboring a nonsense mutation were used to study the effect of the selected molecule on the level of nonsense-containing mRNAs and the synthesis of proteins from these mutant mRNAs. Results We demonstrate here that amlexanox, a drug used for decades, not only induces an increase in nonsense-containing mRNAs amount in treated cells, but also leads to the synthesis of the full-length protein in an efficient manner. We also demonstrated that these full length proteins are functional. Conclusions As a result of this dual activity, amlexanox may be useful as a therapeutic approach for diseases caused by nonsense mutations.</p

    Optimized approach for the identification of highly efficient correctors of nonsense mutations in human diseases.

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    About 10% of patients with a genetic disease carry a nonsense mutation causing their pathology. A strategy for correcting nonsense mutations is premature termination codon (PTC) readthrough, i.e. incorporation of an amino acid at the PTC position during translation. PTC-readthrough-activating molecules appear as promising therapeutic tools for these patients. Unfortunately, the molecules shown to induce PTC readthrough show low efficacy, probably because the mRNAs carrying a nonsense mutation are scarce, as they are also substrates of the quality control mechanism called nonsense-mediated mRNA decay (NMD). The screening systems previously developed to identify readthrough-promoting molecules used cDNA constructs encoding mRNAs immune to NMD. As the molecules identified were not selected for the ability to correct nonsense mutations on NMD-prone PTC-mRNAs, they could be unsuitable for the context of nonsense-mutation-linked human pathologies. Here, a screening system based on an NMD-prone mRNA is described. It should be suitable for identifying molecules capable of efficiently rescuing the expression of human genes harboring a nonsense mutation. This system should favor the discovery of candidate drugs for treating genetic diseases caused by nonsense mutations. One hit selected with this screening system is presented and validated on cells from three cystic fibrosis patients
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