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Outcomes of hypothalamic oxytocin neuron-driven cardioprotection after acute myocardial infarction
Kathryn J Schunke1,2, Jeannette Rodriguez3, Jhansi Dyavanapalli4
1Department of Biomedical Engineering, George Washington University, Suite 5000 Science and Engineering Hall, 800 22nd Street NW, Washington, DC, 20052, USA. kschunke@hawaii.edu.
Insights
Chemogenetic activation of oxytocin neurons in the paraventricular nucleus protects the heart after myocardial infarction (MI). This approach enhances survival and reduces arrhythmias by stimulating the parasympathetic nervous system.
Area of Science:
- Neuroscience
- Cardiology
- Molecular Biology
Background:
- Autonomic imbalance is common in cardiovascular diseases like myocardial infarction (MI).
- Current device-based vagal stimulation is effective for chronic conditions, but a rapid, non-invasive method for acute MI is lacking.
- The paraventricular nucleus (PVN) of the hypothalamus contains oxytocin (OXT) and glutamate co-releasing neurons that excite cardiac vagal neurons (CVNs).
Purpose of the Study:
- To investigate if chemogenetic activation of PVN-OXT neurons can provide cardioprotection immediately following MI.
- To explore the therapeutic potential of targeting the PVN-OXT network for early-stage infarction treatment.
Main Methods:
- Neonatal rats were transfected to express DREADDs (Designer Receptors Exclusively Activated by Designer Drugs) in PVN-OXT neurons.
- Myocardial infarction (MI) was induced in 6-week-old rats, followed by DREADD activation with clozapine-N-oxide.
- Patch-clamp electrophysiology, survival analysis, trichrome blue staining, Seahorse assays, and myocardial transcriptomic analysis were performed.
Main Results:
- Chemogenetic activation significantly augmented excitatory neurotransmission from PVN-OXT neurons to CVN-controlling nuclei.
- Treatment improved survival rates, reduced inflammation and fibrosis, enhanced mitochondrial function, and markedly decreased ventricular fibrillation incidence.
- Transcriptomic analysis revealed preserved beneficial signaling pathways, such as muscarinic receptor activation, in treated animals.
Conclusions:
- Chemogenetic activation of the PVN-OXT network offers significant cardioprotection following MI in a rat model.
- This strategy effectively stimulates parasympathetic pathways, improving cardiac function and survival.
- The PVN-OXT network represents a promising therapeutic target for acute infarction management.
Abstract:
Altered autonomic balance is a hallmark of numerous cardiovascular diseases, including myocardial infarction (MI). Although device-based vagal stimulation is cardioprotective during chronic disease, a non-invasive approach to selectively stimulate the cardiac parasympathetic system immediately after an infarction does not exist and is desperately needed. Cardiac vagal neurons (CVNs) in the brainstem receive powerful excitation from a population of neurons in the paraventricular nucleus (PVN) of the hypothalamus that co-release oxytocin (OXT) and glutamate to excite CVNs. We tested if chemogenetic activation of PVN-OXT neurons following MI would be cardioprotective. The PVN of neonatal rats was transfected with vectors to selectively express DREADDs within OXT neurons. At 6 weeks of age, an MI was induced and DREADDs were activated with clozapine-N-oxide. Seven days following MI, patch-clamp electrophysiology confirmed the augmented excitatory neurotransmission from PVN-OXT neurons to downstream nuclei critical for parasympathetic activity with treatment (43.7 ± 10 vs 86.9 ± 9 pA; MI vs. treatment), resulting in stark improvements in survival (85% vs. 95%; MI vs. treatment), inflammation, fibrosis assessed by trichrome blue staining, mitochondrial function assessed by Seahorse assays, and reduced incidence of arrhythmias (50% vs. 10% cumulative incidence of ventricular fibrillation; MI vs. treatment). Myocardial transcriptomic analysis provided molecular insight into potential cardioprotective mechanisms, which revealed the preservation of beneficial signaling pathways, including muscarinic receptor activation, in treated animals. These comprehensive results demonstrate that the PVN-OXT network could be a promising therapeutic target to quickly activate beneficial parasympathetic-mediated cellular pathways within the heart during the early stages of infarction.
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