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AAV Systems and Mouse Models for Investigating Ectopic Expression of Neurod1 in Transduced Cells at Subacute and Chronic Times Post-Ischemic Stroke
Published on: November 29, 2024
PKM2 de neuronas hiperactivas agrava la lesión pulmonar post-accidente cerebrovascular al promover la translocación
Yahong Cheng1, Dexiang Liu2, Yijing Zhao1
1Department of Physiology, School of Basic Medical Sciences, Cheeloo College of Medicine, Shandong University, Jinan, Shandong, 250012, PR China.
Abstract:
Ischemic stroke patients frequently develop acute lung injury (ALI), but the pathogenesis of stroke-induced ALI remains elusive. While reperfusion therapy improves stroke survival, it fails to mitigate systemic complications. Therefore, clarifying mechanisms, identifying predictors, and developing distal-targeted therapies for stroke-associated lung injury are unmet medical need. Here, we identified the serum pyruvate kinase M2 (PKM2), a modulator of systemic inflammation, exhibit predictive value for assessing severity and outcomes of stroke patients. Using a mouse model of ischemic stroke, circulating PKM2 derived from neural hyperactivity in the ipsilesional primary motor cortex (M1) was found to be related to stroke-induced ALI. Mechanistically, PKM2 loaded in extracellular vesicles (EVs) from activated neurons target alveolar epithelial cells (AEC) via blood circulating and bind to Forkhead Box O3 (FOXO3A), induce its S252 phosphorylation, and promote PKM2/FOXO3A/thioredoxin-interacting protein (TXNIP) mitochondria translocation and reactive oxygen species production in mouse AEC. Finally, a pulmonary surfactant liposome loaded with interfering peptide are designed to target and disrupt PKM2-FOXO3A interaction exerting lung protective effects in a mouse model of ischemic stroke. Summarily, PKM2 from activated neurons mediates intercellular crosstalk between brain-lung via host target proteins FOXO3A/TXNIP, contributing to AEC mitochondrial dysfunction and stroke-induced ALI.

