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Betz, D.

Publications and source records attributed to Betz, D..

3 recordsLinked to original sources

CNS-resident B cells develop locally into a pro-inflammatory age-associated phenotype during aging and after stroke

Aging and age-related diseases like ischemic stroke induce chronic lymphocyte recruitment into the central nervous system (CNS). Conflicting effects on post-stroke functional recovery, however, are secondary to the differences in responding lymphocyte populations that shift immunophenotype with both ischemic injury and age. To better define CNS-localized B cell subsets, we used flow cytometry, single-cell RNA sequencing, and B cell receptor sequencing on B cells isolated from uninjured and post-stroke brains of aged male and female mice. We identified a novel B1b cell progenitor pool distinct from canonical pleural and peritoneal B1 niches. Trajectory analysis showed B1b progenitors transition into age-associated B cell (ABC) subsets, and clonal expansion of IgM+ ABCs (ABC/B1b) and plasma cells following ischemic stroke. We also confirmed analogous ABCs and developing B cell populations in post-mortem human parenchymal tissue isolated from aged brain donors. These studies reveal unique B cell populations that proliferate within the aging CNS and are associated with impaired post-stroke functional recovery in mice. Identification of inflammatory, CNS-resident ABC/B1b cells that are conserved across species is critical as they have the potential to be sequestered from peripheral immunotherapies and/or contribute to age-related neurodegenerative diseases.

neuroscience↗

Shared Transcriptomic Signatures in Perilesional and Contralesional Cortex

Stroke induces a transient period of heightened plasticity during which functional recovery is most pronounced. Work in rodent models of stroke has identified key mechanisms in both the ipsilesional and contralesional cortex that contribute to functional and structural post-stroke plasticity. To date, most gene expression studies have focused on the infarct core and the immediately surrounding tissue, peri-lesional cortex (PLC). We sought to understand whether the contralesional cortex (CLC), a region that shows robust structural and molecular remodeling despite its distance from the lesion, mounts a distinct transcriptional response to stroke. Direct comparisons of molecular pathways governing these regions, particularly across sexes, are limited. To address this gap, we performed bulk RNA sequencing of the PLC and CLC at 7 days post-stroke, a critical time point for initiating repair, in male and female mice. Our results indicate that despite distinct positions from the lesion, both regions share a robust upregulation of inflammatory signaling, with Gene Ontology enrichment indicating activation of cytokine signaling, leukocyte activation, and gliogenesis pathways. Further analysis of this shared gene expression signature revealed reactive microglia signaling as the dominant pathway. Surprisingly, the CLC did not show a distinct transcriptional response. These findings were consistent across males and females, which also showed similar CLC-derived corticospinal tract axonal sprouting at 6 weeks post-stroke. Together, these findings support a shared microglia-centered neuroinflammatory transcriptional response in the PLC and CLC and suggest that microglial reactivity is a key early process for post-stroke cortical plasticity in both male and female mice.

neuroscience↗

SpinalTRAQ: A novel volumetric cervical spinal cord atlas identifies the corticospinal tract synaptic projectome in healthy and post-stroke mice

Abstract/SummaryDescending corticospinal tract (CST) connections to the neurons of the cervical spinal cord are vital for performance of forelimb-specific fine motor skills. In rodents, CST axons are almost entirely crossed at the level of the medullary decussation. While specific contralateral axon projections have been well-characterized using anatomic and molecular approaches, the field currently lacks a cohesive imaging modality allowing rapid quantitative assessment of the entire, bilateral cervical cord projectome at the level of individual laminae and cervical levels. This is potentially important as the CST is known to undergo marked structural remodeling in development, injury, and disease. We developed SpinalTRAQ (Spinal cord Tomographic Registration and Automated Quantification), a novel volumetric cervical spinal cord atlas and machine learning-driven microscopy acquisition and analysis pipeline that uses serial two-photon tomography-images to generate unbiased, region-specific quantification of the fluorescent pixels of anterograde AAV-labeled CST pre-synaptic terminals. In adult mice, the CST synaptic projectome densely innervates the contralateral hemicord, particularly in laminae 5 and 7, with sparse, monosynaptic input to motoneurons in lamina 9. Motor pools supplying axial musculature in the upper cervical cord are bilaterally innervated. The remainder of the ipsilateral cord has sparse labeling in a distinct distribution compared to the contralateral side. Following a focal stroke of the motor cortex, there is a complete loss of descending corticospinal axons from the injured side. Consistent with prior reports of axon collateralization, the CST spinal projectome increases at four weeks post-stroke and continues to elevate by six weeks post stroke. At six weeks post-stroke, we observed striking synapse formation in the denervated hemicord from the uninjured CST in a homotopic distribution. Additionally, CST synaptic reinnervation increases in the denervated lamina 9 in nearly all motoneuron pools, exhibiting novel patterns of connectivity. Detailed level- and lamina-specific quantification of the bilateral cervical spinal cord synaptic projectome reveals previously undescribed patterns of CST connectivity in health and injury-related plasticity.

neuroscience↗