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De Simoni, M.-G.

Publications and source records attributed to De Simoni, M.-G..

2 recordsLinked to original sources

Glycan-coated nanoparticles mimicking the ischemic glycocalyx scavenge the complement system conferring protection after experimental ischemic stroke

Glycoproteins lining the luminal endothelial surface form the glycocalyx, composing the tripartite blood brain barrier. We explored the glycocalyx as a source of danger signals for complement lectin pathway after ischemic stroke. Our data indicate that hypoxic microvascular cells increased -D-mannosyl and N-acetylglucosaminyl exposure after re-oxygenation, favoring mannose binding lectin (MBL) pathogenic deposition, and overexpression of inflammatory genes (ICAM-1 and MMP-2). The hypoxia-conditioned medium induced neuronal damage (reduced MAP-2), microglia and astrocytic reactivity (increased/thickened ramifications) when applied to induced pluripotent stem cell-derived neurons, astrocytes and microglia co-cultures. All these effects were counteracted by mannose-capped gold nanoparticles (Man-GNPs), shown to bind and sequester MBL from the medium. We then tested the Man-GNPs in vivo, in an ischemic stroke model using humanized mice, knocked-in for human MBL. The ischemic mice (males:females 1:1) treated with Man-GNPs (3h after the ischemic onset) exhibited less anxiety at the elevated plus maze and reduced neuronal loss at 8d after ischemia compared to vehicle-treated. Thus, multivalent Man-GNPs represent a promising approach to take MBL away from its glycoproteic targets on the ischemic endothelium, hence preventing downstream pathogenesis. Moreover, these data support circulating MBL as a druggable pharmacological target to prevent the thrombo-inflammatory events following acute brain injury.

neuroscience↗

Multi-center Translational Trial of Remote Ischemic Conditioning in Acute Ischemic Stroke (TRICS BASIC)

BackgroundBasic science studies have reported remote ischemic conditioning (RIC) as neuroprotective in acute ischemic stroke, while clinical evidence remains conflicting. The TRICS BASIC study investigated the efficacy and safety of RIC in experimental ischemic stroke using a rigorous clinical trial methodology. MethodsMulti-center, multi-species, parallel group, randomized, controlled, preclinical trial of transient femoral artery clipping to induce RIC in female and male rats and mice subjected to transient endovascular occlusion of the middle cerebral artery. Animals were randomized to receive RIC, or sham surgery, after reperfusion. The primary endpoint was good functional outcome at 48 hours, assessed using a composite functional neuroscore. Secondary endpoints was infarct volume at 48 hours and safety, assessed using a standardized health report at 24 and 48 hours. Pre-enrollment harmonization, centralized monitoring, allocation concealment, blinded outcome assessment and intention-to-treat analysis were applied. ResultsThe trial enrolled 164 rodents (82 mice and 82 rats) of both sexes (53% females), across seven laboratories. A greater proportion of RIC-treated rodents achieved a favorable functional outcome compared to controls, at 48 hours post-ischemia (55% versus 36%; OR 2.2, 95% CI [1.23-4.4], p=0.009). RIC was associated with a small reduction in infarct volume (standardized mean difference -0.38, 95% CI [-0.70, -0.05], p=0.024). Health monitoring indicated no major safety concerns, and post-operative analgesia requirements were lower in RIC-treated mice. ConclusionsSurgically-induced RIC provided a modest but evident neuroprotective effect in experimental ischemic stroke, underscoring the potential of this strategy as an adjunctive treatment in stroke care. The findings of the TRICS BASIC study highlighted the importance of multicenter preclinical trials in addressing variability and enhancing translational validity. Registrationregistered at preclinicaltrials.eu, identifier PCTE0000177.

neuroscience↗