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Ischemic Stroke Increases Heart Vulnerability to Ischemia-Reperfusion and Alters Myocardial Cardioprotective Pathways
Alexandre Meloux1,2, Eve Rigal1, Luc Rochette1
1From the Equipe d'Accueil (EA 7460), Physiopathologie et Epidémiologie Cérébro-Cardiovasculaires (PEC2), Université de Bourgogne-Franche-Comté, UFR des Sciences de Santé, 7 Bd Jeanne d'Arc, 21000 Dijon, France (A.M., E.R., L.R., Y.C., Y.B., C.V.).
Insights
Stroke impairs heart function and increases cardiac vulnerability to ischemia. This study investigated how prior cerebrovascular lesions affect myocardial function and signaling, revealing potential links to the sympathetic nervous system and oxidative stress.
Area of Science:
- Cardiovascular Research
- Neurology
- Ischemic Events
Background:
- The link between cardiac and neurological ischemic events was previously attributed to shared risk factors and mechanisms.
- Acute stroke is now recognized to induce significant cardiovascular changes.
Purpose of the Study:
- To determine how prior cerebrovascular lesions impact myocardial function and signaling.
- To assess the influence of stroke on cardiac vulnerability to ischemia-reperfusion injury.
Main Methods:
- Adult Wistar rats underwent cerebral embolization via microsphere injection.
- Cardiac function was assessed using in vivo echocardiography and ex vivo isolated perfused hearts.
- Myocardial vulnerability to ischemia-reperfusion injury was evaluated, with molecular analysis of left ventricles.
Main Results:
- Stroke induced significant neurological deficits and cardiac contractile dysfunction (reduced LV fractional shortening and developed pressure).
- Hearts from stroke-affected rats showed poorer recovery after ischemia-reperfusion.
- Elevated catecholamines and GDF15 were observed, alongside altered nitro-oxidative stress and impaired ADRB1/SAFE signaling.
Conclusions:
- Stroke impairs cardiac contractility and exacerbates myocardial ischemia vulnerability.
- Mechanisms may involve the sympathetic nervous system and nitro-oxidative stress pathways.
Abstract:
Background and Purpose- For years, the relationship between cardiac and neurological ischemic events has been limited to overlapping pathophysiological mechanisms and common risk factors. However, acute stroke may induce dramatic changes in cardiovascular function. The aim of this study was to evaluate how prior cerebrovascular lesions affect myocardial function and signaling in vivo and ex vivo and how they influence cardiac vulnerability to ischemia-reperfusion injury. Methods- Cerebral embolization was performed in adult Wistar male rats through the injection of microspheres into the left or right internal carotid artery. Stroke lesions were evaluated by microsphere counting, tissue staining, and assessment of neurological deficit 2 hours, 24 hours, and 7 days after surgery. Cardiac function was evaluated in vivo by echocardiography and ex vivo in isolated perfused hearts. Heart vulnerability to ischemia-reperfusion injury was investigated ex vivo at different times post-embolization and with varying degrees of myocardial ischemia. Left ventricles (LVs) were analyzed with Western blotting and quantitatve real-time polymerase chain reaction. Results- Our stroke model produced large cerebral infarcts with severe neurological deficit. Cardiac contractile dysfunction was observed with an early but persistent reduction of LV fractional shortening in vivo and of LV developed pressure ex vivo. Moreover, after 20 or 30 minutes of global cardiac ischemia, recovery of contractile function was poorer with impaired LV developed pressure and relaxation during reperfusion in both stroke groups. Following stroke, circulating levels of catecholamines and GDF15 (growth differentiation factor 15) increased. Cerebral embolization altered nitro-oxidative stress signaling and impaired the myocardial expression of ADRB1 (adrenoceptor β1) and cardioprotective Survivor Activating Factor Enhancement signaling pathways. Conclusions- Our findings indicate that stroke not only impairs cardiac contractility but also worsens myocardial vulnerability to ischemia. The underlying molecular mechanisms of stroke-induced myocardial alterations after cerebral embolization remain to be established, insofar as they may involve the sympathetic nervous system and nitro-oxidative stress.
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