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Updated: Apr 5, 2026

A Model for Encephalomyosynangiosis Treatment after Middle Cerebral Artery Occlusion-Induced Stroke in Mice
Published on: June 22, 2022
Oncostatin M Confers Neuroprotection against Ischemic Stroke
Sen Guo1, Zuo-Zhi Li2, Jun Gong3
1Department of Cardiology, Renmin Hospital of Wuhan University, Wuhan 430060, PR China.
Abstract:
Cell-surface receptors provide potential targets for the translation of bench-side findings into therapeutic strategies; however, this approach for the treatment of stroke is disappointing, at least partially due to an incomplete understanding of the targeted factors. Previous studies of oncostatin M (OSM), a member of the gp130 cytokine family, have been limited, as mouse models alone may not strongly resemble the human condition enough. In addition, the precise function of OSM in the CNS remains unclear. Here, we report that human OSM is neuroprotective in vivo and in vitro by recruiting OSMRβ in the setting of ischemic stroke. Using gain- and loss-of-function approaches, we demonstrated that decreased neuronal OSMRβ expression results in deteriorated stroke outcomes but that OSMRβ overexpression in neurons is cerebroprotective. Moreover, administering recombinant human OSM to mice before the onset of I/R showed that human OSM can be protective in rodent models of ischemic stroke. Mechanistically, OSM/OSMRβ activate the JAK2/STAT3 prosurvival signaling pathway. Collectively, these data support that human OSM may represent a promising drug candidate for stroke treatment.
Significance Statement:
OSM, a member of the gp130 cytokine family, regulates neuronal function and survival. OSM engages a second receptor, either LIFRα or OSMRβ, before recruiting gp130. However, it is not clear whether OSM/OSMRβ signaling is involved in neuroprotection in the setting of ischemic stroke. Recent studies show that, compared with mouse disease models, the OSM receptor system in rats more closely resembles that in humans. In the present study, we use genetic manipulations of OSMRβ in both mouse and rat stroke models to demonstrate that OSMRβ in neurons is critical for neuronal survival during cerebral ischemic/reperfusion. Interestingly, administration of human OSM also leads to improved stroke outcomes. Therefore, OSM may represent a promising drug candidate for stroke treatment.
Insights
Oncostatin M (OSM) protects brain cells after stroke by activating the OSMRβ receptor. This signaling pathway, JAK2/STAT3, enhances neuronal survival, suggesting human OSM as a potential stroke therapy.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Cell-surface receptors are potential therapeutic targets, but stroke treatments targeting them have yielded disappointing results due to incomplete understanding.
- Oncostatin M (OSM), a gp130 cytokine family member, has unclear functions in the central nervous system (CNS), and mouse models may not fully represent human stroke conditions.
Purpose of the Study:
- To investigate the neuroprotective role of human Oncostatin M (OSM) and its receptor, OSMRβ, in ischemic stroke models.
- To elucidate the signaling pathways involved in OSM-mediated neuroprotection.
Main Methods:
- Utilized gain- and loss-of-function genetic approaches to manipulate OSMRβ expression in neurons in mouse and rat stroke models.
- Administered recombinant human OSM to rodent models before ischemic/reperfusion (I/R) injury.
- Investigated the activation of the JAK2/STAT3 signaling pathway.
Main Results:
- Decreased neuronal OSMRβ expression worsened stroke outcomes, while OSMRβ overexpression in neurons was cerebroprotective.
- Administration of human OSM before I/R injury demonstrated protective effects in rodent stroke models.
- OSM/OSMRβ signaling was found to activate the JAK2/STAT3 prosurvival pathway.
Conclusions:
- Neuronal OSMRβ is critical for neuronal survival during cerebral ischemic/reperfusion.
- Human OSM exhibits neuroprotective effects in vivo and in vitro by engaging OSMRβ and activating the JAK2/STAT3 pathway.
- Human OSM shows promise as a potential therapeutic candidate for stroke treatment.
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