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Nordbeck, M.

Publications and source records attributed to Nordbeck, M..

3 recordsLinked to original sources

Crosstalk of noradrenergic Ca2+ and cAMP signaling in astrocytes of the murine olfactory bulb

Cyclic adenosine monophosphate (cAMP) and Ca2+ are ubiquitous second messengers that regulate gene expression, metabolism, and synaptic plasticity. Here, we identified a complex interplay between Ca2+ and cAMP signaling pathways in mouse olfactory bulb astrocytes. Norepinephrine (NE) elevated both Ca2+ and cAMP levels via 1 and 2 adrenergic receptors, whereas {beta} receptors triggered only cAMP responses. The 1 receptor agonist phenylephrine increased cAMP, but this effect was suppressed when Ca2+ elevations were blocked by Ca2+ depletion and removal of external Ca2+. We found that 1A and 1D receptors are key targets for phenylephrine, acting through Ca2+/calmodulin-dependent adenylyl cyclases AC1 and AC3 downstream of 1 receptor activation. Moreover, 2 receptor stimulation raised Ca2+ levels, thereby stimulating cAMP production, yet also reduced forskolin-induced cAMP elevations, indicating that 2 receptors can both inhibit adenylyl cyclase via Gi and stimulate AC1/AC3 via Ca2+ signaling. Together, these findings reveal intricate crosstalk between noradrenergic Ca2+ and cAMP signaling in olfactory bulb astrocytes mediated by all three adrenergic receptor subtypes.

neuroscience↗

Patient-derived lymphocytes drive smoldering lesion pathology in a chimeric multiple sclerosis mouse model

Multiple sclerosis (MS) is a chronic inflammatory disease of the central nervous system characterized by demyelination, axonal injury, and neurodegeneration. Smoldering lesions-- defined by an inactive core, poor remyelination, and a rim of chronically activated microglia-- are hallmarks of a progressive disease course and correlate with irreversible disability. The mechanisms driving their formation remain poorly understood. Using a chimeric mouse model, we investigated the long-term impact of healthy donors (HD) and MS patient-derived lymphocytes (LY) graft on the evolution of spinal cord demyelinated lesion. Three months post-grafting, only MS-derived LY persisted as perivascular cuffs interacting with vascular and murine immune cells, mirroring MS smoldering lesion pathology. MS LY-grafted mice exhibited impaired functional recovery and slower somatosensory evoked potential (SSEP) conduction compared to controls. Electron microscopy confirmed glial scar formation, persistent demyelination and a lesion architecture with an inflammatory inactive center but active rim. Single-nucleus RNA sequencing revealed an imbalance in CNS cell populations, with MS LY-grafted mice showing reduced neuronal abundance, enriched activated microglia, and immature oligodendroglial profiles, correlating with slower SSEP conduction speeds. Immune cell subclustering identified an enrichment of disease-associated microglia and interferon-responsive microglia in MS LY-grafted mice, marked by elevated pro-inflammatory markers and active myelin phagocytosis. Oligodendroglial cells displayed downregulated myelination and stress-response genes, with disrupted myelin ultrastructure confirmed by electron microscopy. Multiblock analysis revealed donor-specific variability, with some MS LY inducing outcomes akin to HD, while others drove severe pathology. Our model enables mechanistic dissection of the transition from focal to diffuse CNS pathology in MS and captures patient-specific pathophysiological signatures, providing a platform for personalized mechanistic studies and targeted therapeutic strategies. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=72 SRC="FIGDIR/small/676229v1_ufig1.gif" ALT="Figure 1"> View larger version (27K): org.highwire.dtl.DTLVardef@1168b07org.highwire.dtl.DTLVardef@1018361org.highwire.dtl.DTLVardef@58945eorg.highwire.dtl.DTLVardef@174b7e9_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Spatial omics of acute myocardial infarction reveals a novel mode of immune cell infiltration

Myocardial infarction (MI) continues to be a leading cause of death worldwide. Even though it is well-established that the complex interplay between different cell types determines the overall healing response after MI, the precise changes in the tissue architecture are still poorly understood. Here we generated an integrative cellular map of the acute phase after murine MI using a combination of imaging-based transcriptomics (Molecular Cartography) and antibody-based highly multiplexed imaging (Sequential Immunofluorescence), which enabled us to evaluate cell-type compositions and changes at subcellular resolution over time. One striking finding of these analyses was the identification of a novel mode of leukocyte accumulation to the infarcted heart via the endocardium - the inner layer of the heart. To investigate the underlying mechanisms driving this previously unknown infiltration route, we performed unbiased spatial proteomic analysis using Deep Visual Proteomics (DVP). When comparing endocardial cells of homeostatic hearts and infarcted hearts, DVP identified von Willebrand Factor (vWF) as an upregulated mediator of inflammation 24 hours post-MI. To further explore the immune mediating capabilities of vWF and its effect on tissue repair, we performed functional blocking of vWF during acute murine MI. This resulted in a reduced amount of infiltration by CCR2+ monocytes and worse cardiac function post-MI. Our study provides the first spatial map of acute murine MI with subcellular resolution and subsequently discovers a novel route of immune infiltration. Furthermore, we identified vWF as a critical immune mediating agent for endocardial immune cell infiltration.

systems biology↗