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Gronewold, J.

Publications and source records attributed to Gronewold, J..

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Monocytes shape the neuroprotective and immunomodulatory effects of mesenchymal stromal cell-derived extracellular vesicles

BACKGROUNDMesenchymal stromal cell-derived extracellular vesicles (MSC-EVs) exert neuroprotective effects in ischemic stroke largely through immunomodulatory mechanisms. Monocytes are first-line responders to MSC-EVs. Their contribution to MSC-EV-induced neuroprotection remains poorly understood. This study investigated the role of monocytes in shaping neuroprotective responses to MSC-EVs after ischemic stroke. METHODSMale C57BL/6J mice were exposed to transient middle cerebral artery occlusion (MCAO). Monocytes were depleted using pharmacological (clodronate liposomes), immunological (anti-CCR2), or genetic (Mrp8-Cre+/- Nr4a1fl/fl) approaches removing total, CCR2+, or Ly6Clow monocytes, respectively. In additional cohorts, neutrophils and T cells were simultaneously depleted by anti-Ly6G or anti-CD4/CD8 antibodies. Small EVs from clonally expanded immortalized MSCs were administered intravenously. Neurological deficits, ischemic injury, and immune responses were analyzed up to 72 hours post-MCAO. Complementary ex vivo studies were performed, in which MSC-EVs were administered to monocyte-depleted or non-depleted peripheral blood mononuclear cells (PBMCs) obtained from acute ischemic stroke patients. RESULTSIn ischemic mice with intact monocyte compartment, MSC-EVs reduced neurological deficits, infarct volume, neuronal injury, and brain leukocyte infiltrates. These protective effects were abolished in monocyte-depleted mice, particularly following CCR2+ monocyte depletion. Under these conditions, MSC-EV treatment exacerbated neurological deficits, ischemic injury, and leukocyte infiltration, accompanied by neutrophil and T cell expansion and overactivation. Depletion of neutrophils or T cells prevented the EV-induced worsening of stroke outcome in monocyte-deficient mice. Ly6Clow monocytes played a crucial role in orchestrating immune responses to MSC-EVs. Their depletion abolished EV-induced neuroprotection. In stroke patient PBMCs, MSC-EVs induced phenotypic reprogramming of monocytes, whereas they promoted CD4+ and CD8+ T cell activation in the absence of monocytes. CONCLUSIONSMonocytes shape the immunomodulatory actions of MSC-EVs. In their absence, MSC-EVs trigger neutrophil and T cell overactivation that worsens stroke outcome. These findings highlight the importance of monocyte- and T cell-related potency assays for the clinical translation of MSC-EV therapies.

neuroscience↗

Histone neutralization protects the ischemic brain against stroke-associated pneumonia

Bacterial pneumonia aggravates ischemic stroke via mechanisms that still remain to be determined. In ischemic stroke patients and mice exposed to middle cerebral artery occlusion, we show that stroke-associated pneumonia markedly worsens clinical stroke outcome. In mice, pneumonia induced 3 days after stroke impaired neurological recovery and increased brain neutrophil infiltrates, blood-brain barrier breakdown, cerebral microvascular thrombosis, and progressive brain atrophy. The antibiotic amoxicillin only partially ameliorated pneumonia-associated neurological deficits and neutrophil infiltrates. Neutrophils were critical mediators of pneumonia-induced blood-brain barrier breakdown and microvascular thrombosis. Notably, administration of a neutralizing anti-histone antibody during pneumonia--unlike degradation or blockade of neutrophil extracellular trap formation or myeloperoxidase inhibition--restored long-term neurological recovery and prevented brain atrophy in stroke-associated pneumonia mice. This study identifies extracellular histones as key drivers of secondary inflammatory brain injury and establishes histone neutralization as a therapeutic strategy with an extended treatment window in the post-acute stroke phase. One Sentence SummaryNeutralizing extracellular histones reverses pneumonia-driven secondary brain injury and restores long-term recovery after ischemic stroke.

neuroscience↗