Metabolically Glycoengineered Neural Stem Cells Boost Neural Repair After Cardiac Arrest

ADVANCED FUNCTIONAL MATERIALS(2023)

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摘要
Cardiac arrest (CA)-induced cerebral ischemia remains challenging with high mortality and disability. Neural stem cell (NSC) engrafting is an emerging therapeutic strategy with considerable promise that, unfortunately, is severely compromised by limited cell functionality after in vivo transplantation. This groundbreaking report demonstrates that metabolic glycoengineering (MGE) using the "Ac5ManNTProp (TProp)" monosaccharide analog stimulates the Wnt/beta-catenin pathway, improves cell adhesion, and enhances neuronal differentiation in human NSCs in vitro thereby substantially increasing the therapeutic potential of these cells. For the first time, MGE significantly enhances NSC efficacy for treating ischemic brain injury after asphyxia CA in rats. In particular, neurological deficit scores and neurobehavioral tests experience greater improvements when the therapeutic cells are pretreated with TProp than with "stand-alone" NSC therapy. Notably, the TProp-NSC group exhibits significantly stronger neuroprotective functions including enhanced differentiation, synaptic plasticity, and reduced microglia recruitment; furthermore, Wnt pathway agonists and inhibitors demonstrate a pivotal role for Wnt signaling in the process. These findings help establish MGE as a promising avenue for addressing current limitations associated with NSC transplantation via beneficially influencing neural regeneration and synaptic plasticity, thereby offering enhanced therapeutic options to boost brain recovery following global ischemia. This study pioneers metabolic glycoengineering to modify neural stem cells to treat a challenging neurological disease; specifically, ischemic brain injury after cardiac arrest. In a two-step process, in vitro pretreatment with thiol-modified sugar analogs improves neuronal differentiation of NSCs and then, upon transplantation, further enhances the in vivo therapeutic efficacy of stem cell therapy in a rodent model of brain injury.image
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cardiac arrest,ischemic brain injury,metabolic glycoengineering,neuroprotection,stem cell therapy
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