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Biology subjects

Caouaille, M.

Publications and source records attributed to Caouaille, M..

2 recordsLinked to original sources

SP140 limits type I interferon-driven pathology, preserving T cell motility and promoting resistance in tuberculosis

CD8+ T cells are elicited during tuberculosis yet how susceptible lung environments shape their maintenance and behavior is unclear. We examined pulmonary T cell responses to Mycobacterium tuberculosis in resistant control and Sp140-/- mice, a model of type I interferon (IFN-I)-driven susceptibility. Resistant mice generated diverse CD8+ effector- and memory-like subsets producing TNF and IFN{gamma}, whereas Sp140-/- mice showed a broad loss of pulmonary CD8+ T cells. Single-cell RNA sequencing revealed altered states in CD8+ T cells from susceptible mice with exhaustion and IFN-I transcriptional programs. IFNAR blockade rescued CD8+ T cell numbers, diversity, cytokine production, reduced bacterial burden and lung pathology, with comparable benefits also valid for CD4+ T cells. Intravital microscopy of infected lungs further showed that T cell dynamics and motility within lesions were restricted under exuberant IFN-I signaling but fully restored by IFNAR blockade. Thus, IFN-I-driven tissue pathology restricts T cell accumulation and motility during tuberculosis. TeaserIn tuberculosis, excessive type I interferon signaling reshapes the lung environment, limiting T cell accumulation and motility within infected lesions.

immunology↗

Identification of a unique TUBB3+ cell population in the tuberculosis granuloma

Tuberculosis (TB), caused by Mycobacterium tuberculosis, remains a leading cause of mortality worldwide. Granulomas, hallmark structures of TB in the lungs and other infected tissues, are critical sites of host-pathogen interactions, yet their full cellular composition is not completely understood. Here, we identify a previously unrecognized {beta}3-tubulin (TUBB3)-positive cell population within TB granulomas in mice, guinea pigs, non-human primates, and TB patients. TUBB3 is a well-established pan-neuronal marker, yet these TUBB3+ cells are distinct from typical pulmonary resident cells and leukocytes. They exhibit a branched, elongated morphology, which is suggestive of neuron-like features. Intriguingly, their appearance is independent of adaptive immunity and is also observed in viral and fungal infections, but not in asthma. Our findings suggest the existence of a neuro-immune component within granulomas that may influence TB pathogenesis. Further investigation into the origin, function, and signaling pathways of these TUBB3+ cells is required to clarify their identity and potential role in host defense, which could reveal novel therapeutic targets for TB and other pulmonary infections.

immunology↗