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Biology subjects

Preuss, H.

Publications and source records attributed to Preuss, H..

2 recordsLinked to original sources

Brain pericytes exhibit spatially organized and dynamically regulated molecular heterogeneity

Brain capillary pericytes are essential components of the neurovascular unit, yet the extent of their molecular heterogeneity within intact vascular networks remains poorly understood. Here, we combined spatial imaging with reanalysis of independent single-cell transcriptomic datasets to investigate the molecular organization of adult mouse brain pericytes. We identified spatial organization of pericyte molecular heterogeneity associated with anatomical region and position within the vascular network, including recurrent differences in ACE2, CASQ2, Igf2, and OPN expression. Moreover, pericyte molecular phenotypes varied with aging, acute ischemia, and circadian phase. Notably, light-dark phase emerged as a major axis of transcriptional variation, with pericytes exhibiting distinct circadian phase-associated molecular states. Together, these data demonstrate that adult brain pericytes exhibit spatially organized and dynamically regulated molecular heterogeneity associated with vascular and physiological context.

neuroscience↗

Reprogrammed neutrophils with impaired transit mechanics drive multi-organ capillary stalling after stroke

Beyond the focal brain lesion, stroke causes systemic complications including cardiac failure, pneumonia, renal injury, and sustained immune dysfunction. The source of this multiorgan vulnerability remains unresolved. By imaging over 16,000 vessels of healthy, inflamed and ischemic brains, we identify a circulating neutrophil subpopulation reprogrammed by stroke into a pathological stalling phenotype, occluding capillaries in the brain, heart, kidneys, retina and lungs. Combining transcriptomics, genetic models, integrated microfluidics, cell mechanics assays, and in vivo imaging, we show that this subpopulation exhibits an atypical morphology, increased actin polymerization, and heightened adhesion that impair transit through capillary networks. This phenotype is present in patients with stroke, transmissible by adoptive transfer, and selectively sensitive to inhibition of the Src-family kinase Fgr. Both pharmacological and genetic inactivation of Fgr normalize neutrophil adhesion, reduce capillary stalls, and improve neurological recovery after stroke. These findings identify immune cell transit failure as a systemic driver of post-stroke pathology and a therapeutic target to improve both cerebral and multiorgan outcomes.

neuroscience↗