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Hollenhorst, M. I.

Publications and source records attributed to Hollenhorst, M. I..

2 recordsLinked to original sources

Tracheal tuft cell-released leukotrienes promote antibacterial immune responses

Tuft cells act as crucial sentinels in the airways that detect bacterial metabolites. In response, tuft cells release signaling molecules that trigger immune responses essential for clearing the infection. The molecular mechanisms driving immune cell activation following tuft cell stimulation in pneumonia are still not fully understood. Here, we identify tuft cells as the primary source of proinflammatory leukotrienes (LTs), which are released in the presence of pathogenic bacteria in the airways. We show that tracheal tuft cells discriminate pathogenic from non-pathogenic bacteria by sensing adenosine triphosphate (ATP) released from pathogens such as Pseudomonas aeruginosa and Rodentibacter pneumotropicus within the first 4 h of invasion, and recruit neutrophils and macrophages to the trachea and alveolar spaces. Taste signaling through the chemosensory transient receptor potential cation channel subfamily M member 5 (Trpm5) channel was essential for tuft cell activation and LT release. Mice lacking Trpm5 were not capable of detecting bacteria-released ATP and became colonized upon R. pneumotropicus infection. In contrast, Trpm5+/+ mice cleared the pathogen. We uncover a critical tuft cell-dependent sensing mechanism in pneumonia and establish tracheal tuft cells as both detectors of bacterial extracellular ATP and triggers of acute innate immune responses.

immunology↗

Spatiotemporal transcriptomic niches of complement pathway and serine protease inhibitor activation in aging and infection

Aging is a multifactorial and complex physiological process, affecting every organ with characteristic manifestations. Understanding the molecular mechanisms that drive aging processes is crucial to targeting age-related disorders. Recent reports suggest that severe post-infection syndromes can partially accelerate aging. However, the underlying gene-encoded regulatory interplay, whether being shared or distinct between aging and infection biology are poorly understood. Here, we employed spatial transcriptomics to establish a multi-organ atlas (brain, heart, kidney, liver, lung, and spleen) across the mouse lifespan (4, 17, and 26 months). Dissecting high-quality fresh-frozen tissue samples at unbiased molecular resolution, we found both organ-specific and cross-organ gene dysregulation upon aging. We identified age-related trajectories in gene expression and cell state, some only detectable within their spatial context, and provide validation at subcellular resolution. The most prominent effect was organ-wide immune system activation with spatially variable severity. We therefore evaluated how aging mimics the expression signatures observed in systemic infection, using spatial transcriptomics slices from young mice infected with Plasmodium berghei ANKA. While on the gene level the effect sizes caused by the infection outweighed those of aging, we reveal a shared activation of the early complement pathway (C4b) and serine protease inhibitors (Serpin gene family) within by phenotype distinct spatial niches. We show that this common RNA signature is driven by tissue-specific cell types and eventually affects protein levels in the aged brain, rendering them a target for future mechanistic and drug discovery studies. Taken together, our study provides a coherent in-depth and cross-organ transcriptomics atlas to systematically study aging and infection in the mouse at spatiotemporal resolution. Key highlightsO_LILarge-scale and high-resolution atlas of spatial transcriptomics from six organs to study aging and systemic infection across two mouse cohorts. C_LIO_LIStrong transcriptional alterations found in distinct organ-specific niches for aging and acute malaria, with organ- and cell type-associated immune responses. C_LIO_LIDysregulation of early complement proteases (C4b) and serine protease inhibitors (Serpina3n) as common theme across central nervous system and peripheral organs. C_LI

molecular biology↗