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Tashi, Z.

Publications and source records attributed to Tashi, Z..

4 recordsLinked to original sources

Systemic endotoxemia induces integrated sickness physiology in female BALB/c mice

Sickness is an organismal response to inflammation, yet its immune, metabolic, neural, and behavioral components are often studied separately and predominantly in male C57BL/6 mice. In this study, we characterized these responses to systemic lipopolysaccharide (LPS) in female BALB/c mice. Mice received intraperitoneal LPS at moderate concentrations and outcomes were assessed during the acute and resolving phases of endotoxemia. LPS caused rapid disappearance of resident peritoneal macrophages, followed by neutrophil accumulation and increased circulating TNF- and IL-6. In the liver, LPS induced inflammatory, acute-phase, and anti-inflammatory transcripts while suppressing genes involved in lipid, cholesterol, and xenobiotic metabolism. Hepatic glutathione was reduced, whereas total superoxide dismutase activity was unchanged. These peripheral responses were followed by transient hypothermia, reduced food intake, and body weight loss. Regional brain mapping showed increased c-Fos labeling in the area postrema, nucleus of the solitary tract, external lateral parabrachial nucleus, paraventricular nucleus of the hypothalamus, and arcuate nucleus. In parallel, LPS selectively promoted IBA1-positive area in the median eminence and arcuate nucleus, whereas several other regions showed no changes, indicating that neuronal and microglial responses are regionally distinct. Behaviorally, LPS reduced locomotion and exploration, increased freezing, and increased forced-swim immobility. Changes in spatial exploration were most pronounced during the acute phase, whereas locomotor suppression and passive stress-coping persisted longer and varied in magnitude with the timing of inflammatory challenge. Together, these findings show that systemic LPS produces a coordinated sickness state in female BALB/c mice that links peripheral inflammation and hepatic metabolic and redox changes with region-specific neuronal and microglial responses, altered thermoregulation and feeding, and behavioral suppression.

immunology↗

The Microglia Forebrain Assembloid Model Recapitulates Human Brain Development and Neuroimmune Biology.

Microglia are innate immune cells of the CNS whose dysfunction contributes to inflammation and metabolic changes across neurodegenerative and CNS disorders. Across all stages of life, microglia are essential for immune surveillance, neural homeostasis, and synaptic pruning; however, their role in neurodevelopment is less understood. Microglia invade the brain during early neurogenesis, prior to neuronal/glial differentiation, but their potential role at this stage remains undescribed. To model neuroimmune interactions during human cortical development, we created an "assembloid" of human ESC-derived forebrain organoids combined with developmentally matched microglia during cortex formation. Functional contributions of microglia were compared to control organoids using histology and metabolomics.

neuroscience↗

Representation Methods of Transcriptomics with Applications in Neuroimmune Biology

Interpretable representations of gene expression are used to define cellular identities and the molecular programs active within cells, two related, but distinct phenomena. In the case of microglia, a cell type with high transcriptomic, functional, and morphological heterogeneity, the predominant representation of transcriptomic data presumes the adoption of distinct molecular identities, despite a lack of easily separable transcriptional states. Here, we explore alternative transcriptomic representations by comparing two single-cell analysis methods: differential expression analysis for identities and co-expression network analysis for molecular programs. For microglia, co-expression network analysis identifies highly significant functional ontologies not resolved by differential expression analysis. The identified co-expression modules are preserved across transcriptomic datasets and suggest reducible functional programs that activate and modulate depending on context. We conclude that co-expression analysis constitutes a best practice for single cell analysis of an individual cell type and describing microglia function as concurrent molecular programs offers a more parsimonious model of microglia function.

bioinformatics↗

Ts-Biotag, a multimodal reporter of Tie2 expression, labels microglia in a model of neuro injury.

The Ts-Biotag transgenic mouse reports the expression of receptor tyrosine kinase Tie2, a known marker of angiogenic states for both vascular endothelial cells and macrophages. We demonstrate Ts-Biotag labeling and Tie2 expression in a neural injury model to find the majority of labeling occurs in the myeloid derived and brain resident cell type, microglia. Additionally the ligand of Tie2, Ang1, is dynamically expressed, first in astrocytes then neural progenitor during wound signaling and healing. These results offer a Tie2 specific, in vivo view of a neuroimmune response to injury, suggesting a microglia/neural progenitor intercellular interaction guides recovery from a brain lesion. Graphical AbstractThe Ts-Biotag mouse reports expression of Tie2 for any imaging modality compatible with avidinated agents. Mice were given a transcranial cryo-injury and Ts-Biotag activity was followed for 7 days with MRI and histology, showing local and systemic Ts-Biotag labeling. Histology of WT and labeled bone marrow chimeras showed the protein Tie2 expressed in microglia, which assembled at the border of the lesion 1-2d post injury before invading by day 7. The main ligand of Tie2, Ang1, was first expressed systemically by astrocytes, then by neural progenitor cells proximal to and within the lesion. These results elucidate an axis of intercellular signaling involved in the resolution of inflammation and partial healing of a CNS injury. O_FIG O_LINKSMALLFIG WIDTH=180 HEIGHT=200 SRC="FIGDIR/small/527655v1_ufig1.gif" ALT="Figure 1"> View larger version (59K): org.highwire.dtl.DTLVardef@c11887org.highwire.dtl.DTLVardef@1316a54org.highwire.dtl.DTLVardef@13be2a5org.highwire.dtl.DTLVardef@9cf9bd_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗