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Varet, H.

Publications and source records attributed to Varet, H..

4 recordsLinked to original sources

Leishmania targets the macrophage epigenome and dampens the NF-κB/NLRP3- mediated inflammatory response

Aberrant macrophage activation during intracellular infection generates important immunopathologies that can cause severe human morbidity. A better understanding of microbial immune subversion strategies and macrophage phenotypic and functional responses is a prerequisite for the design of novel, host-directed intervention strategies. Here, we uncover a fine-tuned transcriptional response induced in primary macrophages infected by the human parasite Leishmania amazonensis that prevents NF-{kappa}B and NLRP3 inflammasome activation. This unusual subversion is characterized by respectively suppression and induction of activating and de-activating components of the NF-{kappa}B and NLRP3 pathways. This dichotomic modulation was associated with histone H3 hypoacetylation at promoters of NF-{kappa}B-related, pro-inflammatory genes. Our results reveal a novel Leishmania immune subversion strategy targeting host cell epigenetic regulation to modulate the macrophage phenotype. Modulation of the macrophage epigenetic landscape establishes conditions beneficial for intracellular parasite survival, and opens interesting new venues for host-directed, anti-microbial drug discovery.

cell biology

Macromolecular crowding links ribosomal protein gene dosage to growth rate in Vibrio cholerae.

Ribosomal protein (RP) genes locate near the replication origin (oriC) in fast-growing bacteria, which is thought to have been selected as a translation optimization strategy. Relocation of S10-spc- locus (S10), which codes for most of the RP, to ectopic genomic positions shows that its relative distance to the oriC correlates to a reduction on its dosage, its expression, and bacterial growth rate. Deep-sequencing revealed that S10 relocation altered chromosomal replication dynamics and genome-wide transcription. Such changes increased as a function of oriC-S10 distance. Strikingly, in this work we observed that protein production capacity was independent of S10 position. Since RP constitute a large proportion of cell mass, lower S10 dosage could lead to changes in macromolecular crowding, impacting cell physiology. Accordingly, cytoplasm fluidity was higher in mutants where S10 is most distant from oriC. In hyperosmotic conditions, when crowding differences are minimized, the growth rate and replication dynamics were highly alleviated in these strains. Therefore, on top of its essential function in translation, RP genomic location contributes to sustain optimal macromolecular crowding. This is a novel mechanism coordinating DNA replication with bacterial growth.

microbiology

Cryptococcus neoformans resist to drastic conditions by switching to viable but non-culturable cell phenotype

Metabolically quiescent pathogens can persist in a viable non-replicating state for months or even years. For certain infectious diseases, such as tuberculosis, cryptococcosis, histoplasmosis, latent infection is a corollary of this dormant state, which has the risk for reactivation and clinical disease. During murine cryptococcosis and macrophage uptake, stress and host immunity induce C. neoformans heterogeneity with the generation of a sub-population of yeasts that manifests a phenotype compatible with dormancy (low stress response, latency of growth). In this subpopulation, mitochondrial transcriptional activity is regulated and this phenotype has been considered as a hallmark of quiescence in stem cells. Based on these findings, we worked to reproduce this phenotype in vitro and then standardize the experimental conditions to consistently generate this dormancy in Cryptococcus neoformans. We found that incubation of stationary phase yeasts (STAT) in nutriment limited conditions and hypoxia for 8 days (8D-HYPOx) was able to produced cells that mimic the phenotype obtained in vivo. In these conditions, mortality and/or apoptosis occurred in less than 5% of the yeasts compared to 30-40% of apoptotic or dead yeasts upon incubation in normoxia (8D-NORMOx). Yeasts in 8D-HYPOx harbored a lower stress response, delayed growth and less that 1% of culturability on agar plates, suggesting that these yeasts are viable but non culturable cells (VBNC). These VBNC were able to reactivate in the presence of pantothenic acid, a vitamin that is known to be involved in quorum sensing and a precursor of acetyl-CoA. Global metabolism of 8D-HYPOx cells showed some specific requirements and was globally shut down compared to 8D-NORMOx and STAT conditions. Mitochondrial analyses showed that the mitochondrial masse increased with mitochondria mostly depolarized in 8D-HYPOx compared to 8D-NORMox, with increased expression of mitochondrial genes. Proteomic and transcriptomic analyses of 8D-HYPOx revealed that the number of secreted proteins and transcripts detected also decreased compared to 8D-NORMOx and STAT, and the proteome, secretome and transcriptome harbored specific profiles that are engaged as soon as four days of incubation. Importantly, acetyl-CoA and the fatty acid pathway involving mitochondria are required for the generation and viability maintenance of VBNC. All together, these data show that we were able to generate for the first time VBNC phenotype in Cryptococcocus neoformans. This VBNC state is associated with a specific metabolism that should be further studied to understand dormancy/quiescence in this yeast.

microbiology

Mycobacterium abscessus virulence traits unraveled by transcriptomic profiling in amoeba and macrophages

Free-living amoebae might represent an evolutionary niche. In order to get more insights into the potential amoebal training ground for Mycobacterium abscessus, we characterized its full transcriptome in amoeba (Ac) and macrophages (M{varphi}), as well as the Mycobacterium chelonae intra-Ac transcriptome for comparison. Up-regulated genes in Ac allowed M. abscessus to resist environmental stress and induce defense mechanisms, as well as showing switch from carbohydrate carbon sources to fatty acid metabolism. Eleven genes implicated in the adaptation to intracellular stress, were mutated, with all but one confirmed to be involved in M. abscessus intra-M{varphi} survival. Cloning two of these genes in M. chelonae increased its intra-M{varphi} survival. One mutant was particularly attenuated in M{varphi} that corresponded to the deletion of an Eis N-acetyl transferase protein (MAB_4532c). Taken together, M. abscessus transcriptomes revealed the intracellular lifestyle of the mycobacteria, with Ac largely contributing to the enhancement of M. abscessus intra-M{varphi} survival.

microbiology