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Solomon, S. L.

Publications and source records attributed to Solomon, S. L..

2 recordsLinked to original sources

Single-cell analysis reveals the subthreshold TLR response to Mycobacterium tuberculosis infection

Mycobacterium tuberculosis (Mtb) infection remains one of society's greatest human health challenges. Recognition of pathogens such as Mtb by phagocytes via pattern recognition receptors (PRRs) is critical for immune defense. Phagocytes and other innate immune cells must successfully discriminate between pathogen infection or noisy signals derived from transient non-pathogenic exposures to pattern recognition receptor ligands. Previous studies have underscored the importance of toll-like receptor 2 (TLR2) in the recognition of Mtb, and other studies have demonstrated that toll-like receptor 4 (TLR4) exhibits sigmoidal dynamics in inflammatory protein production in response to soluble ligands. How these dynamics extend to TLR2 in response to Mtb or soluble TLR2 ligands is not known. Here, we address a challenging question essential to the pathogenesis of tuberculosis (TB) disease: What is the quality of the early innate response to Mtb infection at low multiplicity of infection and how does the response to soluble TLR2 ligand stimulation reflect the intact pathogen response? Using soluble TLR2 ligands, we demonstrate that inflammatory protein production in response to TLR2 stimulation similarly follows sigmoidal activation. We further show that inflammatory protein production following Mtb infection operates in this subthreshold regime and cannot be attributed to irreversible disruption of inflammatory signaling pathways in Mtb-infected cells. Using highly sensitive assays to interrogate signaling in Mtb-infected primary human macrophages, we further show that Mtb infection results in limited phosphorylation of p38, a key regulator of inflammatory pathways. We further demonstrate that this poor activation is not driven by irreversible inhibition of p38 signaling by Mtb. Lastly, we demonstrate that the quality of canonical inflammatory signal input is decoupled from the ability to control Mtb growth. Together, these data demonstrate that pathways downstream of TLR signaling are differentially activated following Mtb infection and that barriers to activation of these pathways may contribute to functional partitioning of the inflammatory state of Mtb infected cells. Importantly, these studies provide a roadmap to dissect heterogeneous innate responses to Mtb infection as well as provide a tractable experimental system to simulate the early innate immune response to paucibacillary infection in humans.

immunology

GM-CSF differentiation of human monocytes stabilizes macrophage state via oxidative signaling

Macrophages are central mediators of immunity that integrate diverse signals derived from differentiation cues, tissue location, and disease. Controlling macrophage state and function is an appealing therapeutic objective across many diseases including cancer, atherosclerosis, and tuberculosis. Despite the growing appreciation for the in vivo complexity of macrophage state, existing in vitro models of human monocyte-derived macrophages have used a limited number of individual perturbations to explore the complex phenotypic space that macrophages can occupy. Here, we leverage a tiered differentiation, activation, and stimulation strategy to generate libraries of in vitro monocyte-derived macrophages and examine the in vitro state space of macrophage function using high-dimensional technologies. Our tiered experimental approach further revealed a striking relationship between GM-CSF differentiation and IL-10 production. Cells that were differentiated with GM-CSF produced very low or undetectable levels of IL-10 independent of activation or stimulation condition. To nominate candidate regulators of this IL-10 response, we leverage unbiased single-cell mRNA sequencing to identify transcriptional networks associated with GM-CSF-derived cells. Using these data, we identify oxidative signaling pathways as upregulated in GM-CSF derived cells and demonstrate that scavenging of oxidative radicals can enhance IL-10 production in these cells. Collectively, these data underscore the complexity of monocyte-derived macrophage state over time and highlight a dominant role for GM-CSF in tuning macrophage inflammatory phenotype, metabolic state, and plasticity.

immunology