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Calderon-Gonzalez, R.

Publications and source records attributed to Calderon-Gonzalez, R..

4 recordsLinked to original sources

In vivo single-cell high-dimensional mass cytometry analysis to track the interaction between Klebsiella pneumoniae and myeloid cells.

In vivo single-cell approaches have transformed our understanding of the immune populations in tissues. Mass cytometry (CyTOF), that combines the resolution of mass spectrometry with the ability to conduct multiplexed measurements of cell molecules at the single cell resolution, has enabled to resolve the diversity of immune cell subsets, and their heterogeneous functionality. Here we assess the feasibility of taking CyTOF one step further to immuno profile cells while tracking their interaction with bacteria, a method we term Bac-CyTOF. We focus on the pathogen Klebsiella pneumoniae interrogating the pneumonia mouse model. Using Bac-CyTOF, we unveil the atlas of immune cells of mice infected with a K. pneumoniae virulent strain. The atlas is characterized by a decrease in the populations of alveolar macrophages and monocyte-derived macrophages, whereas neutrophils, and inflammatory monocytes are characterized by an increase in the subpopulations expressing markers characteristic of less active cells such as the immune checkpoint PD-L1. These cells are those with associated bacteria. We show that the type VI secretion system (T6SS) contributes to shape the lung immune landscape. The T6SS governs the interaction with monocytes/macrophages by shifting Klebsiella from alveolar macrophages to interstitial macrophages and limiting the infection of inflammatory monocytes. Lack of T6SS results in cells expressing markers of active cells, and a decrease in the subpopulations expressing PD-L1. By infecting with Klebsiella, and Acinetobacter baumannii strains cleared by mice, we uncover that a heightened recruitment of neutrophils, and relative high levels of alveolar macrophages and eosinophils and the recruitment of a characteristic subpopulation of neutrophils are features of infected mice clearing infections. Lastly, we leverage Bac-CyTOF-generated knowledge platform to investigate the role of the DNA sensor STING in Klebsiella infections. sting-/- infected mice present features of mice clearing the infection including the reduced levels of PD-L1. STING absence facilitates Klebsiella clearance. AUTHOR SUMMARYHost-pathogen interactions are vital to our understanding of infectious disease, as well as its treatment and prevention. Mass cytometry and high-dimensional single-cell data analysis have enabled to resolve the tremendous diversity of immune cell subsets, and their heterogeneous functionality. Here we take this technology one step further to immuno profile cells in vivo while tracking their interaction with bacteria, a method we term Bac-CyTOF. Using this technology, we unveil the atlas of lung immune cells following infection with the human pathogen Klebsiella pneumoniae. The atlas is characterized by an increase in the populations expressing markers characteristic of less active cells such as the immune checkpoint PD-L1. The pathogen interacts with these cells. We uncover the contribution of the antimicrobial nanoweapon T6SS to shape the immune landscape, highlighting its potential in host defence. By probing two pathogens effectively cleared by mice, we reveal features of infections successfully cleared by mice. Lastly, we leverage this knowledge platform to investigate the role of the DNA sensor STING in Klebsiella infections. There was no prior knowledge on the role of STING in Klebsiella infection biology. Our findings suggest Klebsiella may utilize STING signalling for its own benefit because absence of STING facilitates Klebsiella clearance.

microbiology↗

Modelling the gastrointestinal carriage of Klebsiella pneumoniae infections.

Klebsiella pneumoniae is a leading cause of nosocomial and community acquired infections, making K. pneumoniae the second pathogen associated with the most deaths attributed to any antibiotic resistant infection. K. pneumoniae colonises the nasopharynx and the gastrointestinal tract in an asymptomatic manner without dissemination to other tissues; importantly gastrointestinal colonisation is a requisite for infection. Our understanding of K. pneumoniae colonisation is still based on interrogating mouse models in which animals are pre-treated with antibiotics to disturb the colonisation resistance imposed by the gut microbiome. In these models, infection disseminates to other tissues. Here, we report a murine model to allow for the study of the gastrointestinal colonisation of K. pneumoniae without tissue dissemination. Hypervirulent and antibiotic resistant strains stably colonise the gastrointestinal tract of in an inbred mouse population without antibiotic treatment. The small intestine is the primary site of colonisation followed by a transition to the colon over time without dissemination to other tissues. Our model also mimics the disease dynamics of metastatic K. pneumoniae strains able to disseminate from the gastrointestinal tract to other sterile sites. Colonisation is associated with mild to moderate histopathology, no significant inflammation, and no effect on the richness of the microbiome. Our model recapitulates the clinical scenario in which antibiotic treatment disturbs the colonisation of K. pneumoniae resulting in dissemination to other tissues. Finally, we establish that the capsule polysaccharide is necessary for the colonisation of the large intestine whereas the type VI secretion system contributes to colonisation across the gastrointestinal tract. IMPORTANCEKlebsiella pneumoniae is one of the pathogens sweeping the World in the antibiotic resistance pandemic. Klebsiella colonises the nasopharynx and the gut of healthy subjects in an asymptomatic manner, being gut colonisation a requisite for infection. This makes essential to understand the gastrointestinal carriage to prevent Klebsiella infections. Current research models rely on the perturbation of the gut microbiome by antibiotics, resulting in an invasive infection. Here, we report a new model of K. pneumoniae gut colonisation that recapitulates key features of the asymptomatic human gastrointestinal tract colonisation. In our model, there is no need to disturb the microbiota to achieve stable colonization without dissemination to other tissues. Our model recapitulates the clinical scenario in which antibiotic treatment triggers invasive infection. We envision our model will be an excellent platform to test therapeutics to eliminate Klebsiella asymptomatic colonisation, and to investigate factors enhancing colonisation and invasive infections.

microbiology↗

In vivo single cell transcriptomics reveals Klebsiella pneumoniae rewiring of lung macrophages to promote infection

The strategies deployed by antibiotic resistant bacteria to counteract host defences are poorly understood. Here, we elucidate a novel host-pathogen interaction that results in the control of lung macrophage polarisation by the human pathogen Klebsiella pneumoniae. We identify interstitial macrophages (IMs) as the main population of lung macrophages associated with Klebsiella. Single cell transcriptomics and trajectory analysis of cells uncover that type I IFN and IL10 signalling, and macrophage polarization are characteristic of infected IMs, whereas Toll-like receptor (TLR) and Nod-like receptor signalling are features of infected alveolar macrophages. Klebsiella-induced macrophage polarization is a singular M2-type we termed M(Kp). To rewire macrophages towards M(Kp), K. pneumoniae hijacks a hitherto unknown TLR-type I IFN-IL10-STAT6 innate axis. Absence of STAT6 limits the intracellular survival of Klebsiella whereas the inhibition of STAT6 facilitates the clearance of the pathogen in vivo. Glycolysis characterises M(Kp) metabolism, and inhibition of glycolysis results in clearance of intracellular Klebsiella. We demonstrate the capsule polysaccharide is the Klebsiella factor governing M(Kp). Klebsiella also skews human macrophage polarization towards M(Kp) in a type I IFN-IL10-STAT6-dependent manner. Altogether, our work demonstrates that Klebsiella induction of M(Kp) represents a hitherto unknown strategy to overcome host restriction during pneumonia.

microbiology↗

Klebsiella pneumoniae hijacks the Toll-IL-1R protein SARM1 in a type I IFN-dependent manner to antagonize host immunity.

Many bacterial pathogens antagonize host defence responses by translocating effector proteins into cells. It remains an open question how those pathogens not encoding effectors counteract anti-bacterial immunity. Here, we show that Klebsiella pneumoniae hijacks the evolutionary conserved innate immune protein SARM1 to control cell intrinsic immunity. Klebsiella exploits SARM1 to regulate negatively MyD88 and TRIF-governed inflammation, and the activation of the MAP kinases ERK and JNK. SARM1 is required for Klebsiella induction of IL10 by fine-tuning the p38-type I IFN axis. SARM1 inhibits the activation of Klebsiella-induced absent in melanoma 2 inflammasome to limit IL1{beta} production, suppressing further inflammation. Klebsiella exploits type I IFNs to induce SARM1 in a capsule and LPS O-polysaccharide-dependent manner via TLR4-TRAM-TRIF-IRF3-IFNAR1 pathway. Absence of SARM1 reduces the intracellular survival of K. pneumonaie in macrophages whereas sarm1 deficient mice control the infection. Altogether, our results illustrate a hitherto unknown anti-immunology strategy deployed by a human pathogen.

microbiology↗