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Biology subjects

Lin, Y.-c.

Publications and source records attributed to Lin, Y.-c..

2 recordsLinked to original sources

S1PR1 signaling biases neutrophils toward long-lived low-inflammatory functional states

Sphingosine 1-phosphate (S1P), a lipid mediator that signals through five G protein-coupled S1P receptors (S1PRs), regulates T cell trafficking, tissue residency, and inflammatory processes. In contrast to the established roles of S1P signaling in T cell trafficking, its role in neutrophil biology remains poorly understood. Here, we demonstrate that S1PR1, one of the two S1PRs expressed in neutrophils, promotes mitochondrial fitness, enhances survival, and reduces inflammatory output. Using myeloid- and neutrophil-selective S1PR1 overexpression (S1PR1hi) mouse models, we show that elevated S1PR1 signaling promotes redistribution of neutrophils from the bone marrow to peripheral tissues under steady-state conditions, without inducing overt inflammation or tissue injury. S1PR1hi neutrophils display altered surface marker profiles consistent with a less mature state. These cells also exhibit reduced in vivo turnover, increased mitochondrial membrane potential and oxidative phosphorylation, and transcriptional programs linked to survival and dampened inflammatory signaling. Functionally, S1PR1hi neutrophils exhibit a reduced oxidative burst while preserving phagocytic capacity. However, in vivo bacterial challenge revealed impaired bacterial clearance in the lung. In contrast, in a model of influenza A virus infection of the lung, enhanced neutrophil-intrinsic S1PR1 signaling conferred reduced lung injury, decreased inflammatory output, and improved survival. Together, these findings support a model in which S1PR1 reprograms neutrophils, enabling their survival and dampening inflammatory potential in a context-dependent manner, thereby differentially shaping host defense and tissue protection during microbial infections.

immunology↗

An RNA binding module of SWI/SNF is required for activation of cell-type specific enhancers and super-enhancers in early development

The mammalian SWI/SNF complex is an ATP-dependent chromatin remodeler and master regulator in development that when mutated is the cause for several human diseases including cancer. Although SWI/SNF is highly enriched at enhancers and its basic chromatin remodeling activities have been studied for over 30 years, there is little known about how it regulates enhancer activity or enhancer-promoter interactions. We find a putative RNA binding module located near the C-terminus of the catalytic subunit of SWI/SNF required for SWI/SNF recruitment to cell-type specific enhancers and super-enhancers in naive and cell lineage primed pluripotent cells. The AT-hook is required for acquisition of the active histone marks H3K27ac and H3K4me1 and recruitment of the MLL3/4 co-activator to these enhancers and super-enhancers. Consistent with changes in enhancer architecture, loss of the AT-hook interferes with activation of genes involved in cell lineage priming as well as genes normally activated in naive pluripotent cells.

genomics↗