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McGinn, R.

Publications and source records attributed to McGinn, R..

2 recordsLinked to original sources

Control of antigen presentation on MHC-I by a bacterial secretion system

Mycobacterium tuberculosis (Mtb) remains one of the worlds leading infectious killers. Although CD8{square} T cells contribute to immune control of tuberculosis, the pathways through which bacterial antigens access major histocompatibility complex class I (MHC-I) antigen presentation remain incompletely defined. Here, we show that the activity of an Mtb secretion system actively promotes antigen presentation on MHC-I. Using quantitative immunopeptidomics, host and bacterial genetic perturbations, and T cell activation assays, we demonstrate that presentation of Mtb-derived peptides on MHC-I requires the ESX-1 type VII secretion system. Presentation of these peptides proceeds in a manner dependent on the transporter associated with antigen processing (TAP) but independent of host cell mechanisms such as autophagy or MPEG1-mediated pore formation. Chemical induction of phagosomal membrane damage fails to restore antigen presentation in the absence of ESX-1 activity, suggesting that pathogen-encoded secretion, not nonspecific membrane rupture, governs access to MHC-I antigen processing pathways. These findings reveal a secretion system-driven mechanism of antigen presentation, redefining how mycobacteria interface with host MHC-I pathways, potentially informing tuberculosis vaccine design strategies, and highlighting a potential route for synthetic antigen delivery to the cytosol in therapeutics and vaccination. One-sentence summaryPresentation of Mycobacterium tuberculosis antigens on MHC class I through a cytosolic pathway depends on a bacterial secretion system rather than host response and cross-presentation pathways.

immunology↗

Systems analysis reveals alternate metabolic states adopted by Mycobacterium tuberculosis across species

Mycobacterium tuberculosis (Mtb) persists within macrophages, yet how different host species shape bacterial state remains poorly understood. Here, we directly compared the intracellular transcriptome of Mtb during infection of human and mouse macrophages, revealing distinct host-imposed microenvironments that drive the pathogen into separable metabolic states. Lipid metabolism and regulatory circuits were prominently remodeled, with mouse macrophages inducing iron- and oxidative-stress responses while human macrophages promoted fatty acid import programs. Using fluorescent fatty acid tracing, we uncovered a striking species-specific phenotype: Mtb forms intracellular lipid inclusions (ILIs) in murine macrophages but not in human macrophages. This phenotype was independent of culture media, macrophage ontogeny, or host antimicrobial factors such as nitric oxide and itaconate. Access of Mtb to host-derived lipids required the ESX-1 secretion system and was inversely correlated with host triacylglycerol (TAG) synthesis. Inhibition of TAG formation in human macrophages partially restored Mtb ILI formation, revealing a metabolic gate that governs lipid flow between host lipid droplets and intracellular Mtb. Together, these findings establish a cross-species framework for decoding host-driven bacterial metabolic states and identify a key barrier limiting Mtbs access to host lipid stores in human macrophages.

microbiology↗