52 research outputs found

    DOMAIN SIZE DISTRIBUTION OF Y-TZP NANO-PARTICLES USING XRD AND HRTEM

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    Tumor stiffening reversion through collagen crosslinking inhibition improves T cell migration and anti-PD-1 treatment

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    Only a fraction of cancer patients benefits from immune checkpoint inhibitors. This may be partly due to the dense extracellular matrix (ECM) that forms a barrier for T cells. Comparing five preclinical mouse tumor models with heterogeneous tumor microenvironments, we aimed to relate the rate of tumor stiffening with the remodeling of ECM architecture and to determine how these features affect intratumoral T cell migration. An ECM-targeted strategy, based on the inhibition of lysyl oxidase, was used. In vivo stiffness measurements were found to be strongly correlated with tumor growth and ECM crosslinking but negatively correlated with T cell migration. Interfering with collagen stabilization reduces ECM content and tumor stiffness leading to improved T cell migration and increased efficacy of anti-PD-1 blockade. This study highlights the rationale of mechanical characterizations in solid tumors to understand resistance to immunotherapy and of combining treatment strategies targeting the ECM with anti-PD-1 therapy

    Pyroséquençage pour le développement d'EST et de SNP aviaires

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    Le but du programme est de combler les dĂ©ficits en marqueurs observĂ©s pour trois espĂšces aviaires : la caille, le canard et la poule. La stratĂ©gie choisie est l'obtention, Ă  partir de plusieurs individus de lignĂ©es d'intĂ©rĂȘt, de SNP (Single Nucleotide Polymorphism, polymorphisme d'un nuclĂ©otide) par une nouvelle technologie de sĂ©quençage Ă  haut dĂ©bit (sĂ©quenceur 454 GS-FLX, Roche). Nous sĂ©quençons des reprĂ©sentations rĂ©duites du gĂ©nome, en sĂ©lectionnant d'une part des fragments de restriction d'ADN gĂ©nomique - les mĂȘmes chez tous les individus - et d'autre part les transcrits qui reprĂ©sentent globalement la partie du gĂ©nome correspondant aux gĂšnes exprimĂ©s. Ces expĂ©rimentations sont rĂ©alisĂ©es Ă  partir d'Ă©chantillons d'ADN ou d'ARN issus d'individus de lignĂ©es Ă  l'origine de croisements existants, pour chacune des trois espĂšces. Les donnĂ©es gĂ©nĂ©rĂ©es par plusieurs "runs" de sĂ©quence seront traitĂ©es in silico : contigage Ă  haut dĂ©bit, recherche de SNP, comparaison avec les banques de sĂ©quences connues...En plus de l'intĂ©rĂȘt que reprĂ©sente la production d'un trĂšs grand nombre de SNP nouveaux, cette technologie devrait permettre de mieux sĂ©quencer les rĂ©gions riches en (G+C) correspondant aux plus petits des microchromosomes pour lesquels il n'y a pas de sĂ©quence chez la poule. La comparaison des sĂ©quences des transcrits obtenues chez la caille et le canard avec la sĂ©quence du gĂ©nome de la poule permettra d'Ă©tablir une "cartographie virtuelle" des SNP obtenus, grĂące Ă  la grande conservation de syntĂ©nie existant entre ces trois espĂšces

    Influence of streambed substratum composition on stream microbial communities exposed to the fungicide tebuconazole

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    International audienceFungicides reaching stream ecosystems have different capacities to adsorb to benthic substrata and thus cause varying effects on benthic microbial communities. We evaluated the potential of a triazole fungicide, tebuconazole (TBZ), to adsorb to submerged leaves and sand and assessed TBZ effects on sand- and leaf-associated microbial communities. An indoor stream channel experiment was designed to test TBZ effects slightly above concentrations measured in agricultural streams (10.7 ± 0.3 ÎŒg L−1) on the microbial communities associated with either submerged leaves alone, sand alone or a mixed substratum of leaves + sand over 5 weeks. Weekly samples were taken to determine TBZ effects on the biomass and activity (litter breakdown rate, fungal sporulation rate and extracellular enzyme activities) of fungi and bacteria as well as the dissipation of TBZ in stream channels. TBZ significantly reduced fungal biomass (17–20% relative to controls) but increased bacterial biomass (34–50%) on leaves and sand incubated separately. TBZ also significantly inhibited phenol oxidase activity (36%) in sand but not in leaves. Differences in TBZ effects between leaves and sand communities were not explained by differences between substrata in TBZ adsorption but more likely were related to differences in biomass accrual and structure of the microbial communities. Mixing leaves+sand tended to attenuate TBZ effects on microbial communities, which was probably explained by a greater surface area available for TBZ adsorption to the substrata. This hypothesis is supported by the greater TBZ dissipation in stream channels receiving both leaves and sand. However, leaf and sand mixtures not only diluted but also modified TBZ effects on sand communities (14% increase in fungal biomass and 82% increase in the sporulation of aquatic hyphomycetes). This result suggests that sand could serve as a refuge for fungi during TBZ-contamination episodes. Our study points to the importance of substratum heterogeneity for the ecotoxicological effects of TBZ on agricultural streams and highlights the contrasting responses of fungi and bacteria to contamination by a widespread fungicide

    Glyphosate-degrading behavior of five bacterial strains isolated from stream biofilms

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    International audienceThe present study investigates the individual degrading behavior of bacterial strains isolated from glyphosate-degrading stream biofilms. In this aim, biofilms were subjected to enrichment experiments using glyphosate or its metabolite AMPA (aminomethyl phosphonic acid) as the sole phosphorus source. Five bacterial strains were isolated and taxonomically affiliated to Ensifer sp. CNII15, Acidovorax sp. CNI26, Agrobacterium tumefaciens CNI28, Novosphingobium sp. CNI35 and Ochrobactrum pituitosum CNI52. All strains were capable of completely dissipating glyphosate after 125–400 h and AMPA after 30–120 h, except for Ensifer sp. CNII15 that was not able to dissipate glyphosate but entirely dissipated AMPA after 200 h. AMPA dissipation was overall faster than glyphosate dissipation. The five strains degraded AMPA completely since formaldehyde and/or glycine accumulation was observed. During glyphosate degradation, the strain CNI26 used the C-P lyase degradation pathway since sarcosine was quantitatively produced, and C-P lyase gene expression was enhanced 30× compared to the control treatment. However, strains CNI28, CNI35 and CNI52 accumulated both formaldehyde and glycine after glyphosate transformation suggesting that both C-P lyase and/or glyphosate oxidase degradation pathways took place. Our study shows different and complementary glyphosate degradation pathways for bacteria co-existing in stream biofilms

    Effects of sulfonamide antibiotics on aquatic microbial community composition and functions

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    International audienceKnowledge on interactions among microbial communities colonizing various streambed substrata (e.g. cobbles, sediment, leaf-litter etc.) is essential when investigating the functioning of stream ecosystems. However, these interactions are often forgotten when assessing the responses of aquatic microbial communities to chemical contamination. Using a stream microcosm approach, the respective impact of two sulfonamide antibiotics (sulfamethoxazole and sulfamethazine) on the ability of microbial heterotrophs to decompose alder leaves was investigated in the presence or absence of periphyton. Our hypothesis suggested that sulfonamides would negatively impair microbial litter decomposition and that periphyton could possibly alleviate this effect by stimulating microbial decomposer activity through a priming effect. Results showed that the presence of periphyton enriched water with oxygen and labile dissolved organic carbon forms. However, these labile organic carbon sources did not stimulate leaf-litter decomposition but mostly decoupled microbial decomposer activity from particulate organic matter to dissolved organic matter through negative priming. Also, the two sulfonamide molecules did not affect the leaf-litter decomposition process but significantly decreased bacterial biomass accrual on leaves. The reduction of bacteria was concomitant with an increase in biomass-specific ÎČ-glucosidase activity and this was attributed to a stress response from bacteria to sulfonamides. Further research looking at microbial interactions would provide for better assessment of chemical contamination effects in communities and processes in stream ecosystems

    Dose-dependent effects of the herbicide mesotrione on soil cyanobacterial communities.

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    International audienceThis study aimed to investigate the dose-response effects of an herbicide on soil photosynthetic microbial communities, particularly cyanobacteria, using a microcosm approach. Pure mesotrione (active ingredient), and Callisto (a commercial formulation of this triketone herbicide), were spread at different rates on soil microcosm surfaces. Soil Chlorophyll concentrations were quantified to assess the photosynthetic biomass, and the genetic structure and diversity of the cyanobacterial community were investigated by a group-specific polymerase chain reaction followed by denaturing gradient gel electrophoresis. Dose-dependent responses were evidenced for both functional and structural parameters. No effect was detected in soils treated with 1 × AR (1-fold recommended application rate) irrespective of the herbicide formulation. At 10 × AR (10-fold recommended application rate), only Callisto treatment induced significant decreases of photosynthetic biomass, whereas structural parameters were less affected. At the 100 × AR (100-fold recommended application rate), both pure mesotrione and Callisto had strong negative impacts on soil chlorophyll concentrations and cyanobacterial genetic structure and diversity. At both the 10 × AR and 100 × AR treatments, Callisto induced significant stronger effects than pure mesotrione. In addition, indicators of photosynthetic biomass, compared with structural parameters of cyanobacterial communities (within 14 days), responded (within 7 days) more quickly to herbicide stress. The results of this study underscore the relevance of soil photosynthetic microbial communities to develop indicators for herbicide risk assessment
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