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Myocardial infarction augments sleep to limit cardiac inflammation and damage
Pacific Huynh1,2,3,4,5, Jan D Hoffmann1,2,3,4,5,6, Teresa Gerhardt1,2,3,4,5,7
1Cardiovascular Research Institute, Icahn School of Medicine at Mount Sinai, New York, NY, USA.
Insights
After heart injury, monocytes travel to the brain to increase sleep. This enhanced sleep limits cardiac inflammation and promotes healing, revealing a crucial link between cardiovascular health and sleep regulation.
Area of Science:
- Neuroscience
- Cardiology
- Immunology
Background:
- Sleep is vital for cardiovascular health, but the brain circuits linking cardiac injury and sleep remain unclear.
- It is unknown if heart damage affects sleep or if sleep influences heart healing and inflammation.
Purpose of the Study:
- To investigate the relationship between myocardial infarction (MI) and sleep regulation.
- To identify the neural mechanisms by which cardiac injury influences sleep and subsequent cardiac outcomes.
Main Methods:
- Studied monocytes recruited to the brain after myocardial infarction (MI) in humans and mice.
- Investigated the role of microglia, circulating monocytes, and tumor necrosis factor (TNF) in the thalamic lateral posterior nucleus (LPN).
- Examined the impact of sleep disruption on cardiac function and sympathetic outflow.
Main Results:
- Monocytes are recruited to the brain post-MI, increasing sleep by generating TNF in the thalamic LPN.
- TNF engages specific neurons to boost slow-wave sleep, suppressing sympathetic cardiac input.
- Sleep disruption post-MI exacerbates cardiac dysfunction and inflammation, while poor sleep increases secondary cardiovascular event risk.
Conclusions:
- Cardiac injury actively regulates sleep through monocyte-brain pathways.
- Sleep promotes heart healing by limiting sympathetic activity and inflammation.
- Targeting sleep pathways may offer therapeutic strategies for cardiovascular recovery.
Abstract:
Sleep is integral to cardiovascular health1,2. Yet, the circuits that connect cardiovascular pathology and sleep are incompletely understood. It remains unclear whether cardiac injury influences sleep and whether sleep-mediated neural outputs contribute to heart healing and inflammation. Here we report that in humans and mice, monocytes are actively recruited to the brain after myocardial infarction (MI) to augment sleep, which suppresses sympathetic outflow to the heart, limiting inflammation and promoting healing. After MI, microglia rapidly recruit circulating monocytes to the brain's thalamic lateral posterior nucleus (LPN) via the choroid plexus, where they are reprogrammed to generate tumour necrosis factor (TNF). In the thalamic LPN, monocytic TNF engages Tnfrsf1a-expressing glutamatergic neurons to increase slow wave sleep pressure and abundance. Disrupting sleep after MI worsens cardiac function, decreases heart rate variability and causes spontaneous ventricular tachycardia. After MI, disrupting or curtailing sleep by manipulating glutamatergic TNF signalling in the thalamic LPN increases cardiac sympathetic input which signals through the β2-adrenergic receptor of macrophages to promote a chemotactic signature that increases monocyte influx. Poor sleep in the weeks following acute coronary syndrome increases susceptibility to secondary cardiovascular events and reduces the heart's functional recovery. In parallel, insufficient sleep in humans reprogrammes β2-adrenergic receptor-expressing monocytes towards a chemotactic phenotype, enhancing their migratory capacity. Collectively, our data uncover cardiogenic regulation of sleep after heart injury, which restricts cardiac sympathetic input, limiting inflammation and damage.
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