Ckip-1 3'UTR alleviates prolonged sleep deprivation induced cardiac dysfunction by activating CaMKK2/AMPK/cTNI
Beilei Dong1,2,3, Rui Xue4, Jianwei Li2
1Nanjing University of Chinese Medicine, Nanjing, 210023, China.
Abstract:
Sleep deprivation (SD) has emerged as a critical concern impacting human health, leading to significant damage to the cardiovascular system. However, the underlying mechanisms are still unclear, and the development of targeted drugs is lagging. Here, we used mice to explore the effects of prolonged SD on cardiac structure and function. Echocardiography analysis revealed that cardiac function was significantly decreased in mice after five weeks of SD. Real-time quantitative PCR (RT-q-PCR) and Masson staining analysis showed that cardiac remodeling marker gene Anp (atrial natriuretic peptide) and fibrosis were increased, Elisa assay of serum showed that the levels of creatine kinase (CK), creatine kinase-MB (CK-MB), ANP, brain natriuretic peptide (BNP) and cardiac troponin T (cTn-T) were increased after SD, suggesting that cardiac remodeling and injury occurred. Transcript sequencing analysis indicated that genes involved in the regulation of calcium signaling pathway, dilated cardiomyopathy, and cardiac muscle contraction were changed after SD. Accordingly, Western blotting analysis demonstrated that the cardiac-contraction associated CaMKK2/AMPK/cTNI pathway was inhibited. Since our preliminary research has confirmed the vital role of Casein Kinase-2 -Interacting Protein-1 (CKIP-1, also known as PLEKHO1) in cardiac remodeling regulation. Here, we found the levels of the 3' untranslated region of Ckip-1 (Ckip-1 3'UTR) decreased, while the coding sequence of Ckip-1 (Ckip-1 CDS) remained unchanged after SD. Significantly, adenovirus-mediated overexpression of Ckip-1 3'UTR alleviated SD-induced cardiac dysfunction and remodeling by activating CaMKK2/AMPK/cTNI pathway, which proposed the therapeutic potential of Ckip-1 3'UTR in treating SD-induced heart disease.
Insights
Prolonged sleep deprivation (SD) damages heart function and structure in mice. Restoring Casein Kinase-2 -Interacting Protein-1 3' untranslated region (CKIP-1 3'UTR) protects against SD-induced heart disease.
Area of Science:
- Cardiovascular Biology
- Sleep Medicine
- Molecular Cardiology
Background:
- Sleep deprivation (SD) poses a significant threat to cardiovascular health, yet its underlying mechanisms remain poorly understood.
- Current therapeutic strategies for SD-induced heart conditions are limited, highlighting the need for novel drug targets.
Purpose of the Study:
- To investigate the impact of prolonged SD on cardiac structure and function in a mouse model.
- To elucidate the molecular mechanisms underlying SD-induced cardiac damage, focusing on the role of Casein Kinase-2 -Interacting Protein-1 (CKIP-1).
Main Methods:
- Echocardiography, RT-q-PCR, Masson staining, ELISA, transcript sequencing, and Western blotting were employed to assess cardiac function and molecular changes.
- Mice were subjected to five weeks of SD to induce cardiac remodeling and injury.
- Adenovirus-mediated overexpression of CKIP-1 3' untranslated region (3'UTR) was used to evaluate its therapeutic potential.
Main Results:
- SD significantly impaired cardiac function, increased cardiac remodeling markers (ANP), and induced fibrosis.
- Biomarkers for cardiac injury (CK, CK-MB, ANP, BNP, cTn-T) were elevated post-SD.
- SD altered genes in calcium signaling and cardiac contraction pathways, inhibiting the CaMKK2/AMPK/cTNI pathway, while CKIP-1 3'UTR levels decreased.
Conclusions:
- Prolonged SD leads to cardiac dysfunction and remodeling through mechanisms involving the CaMKK2/AMPK/cTNI pathway.
- CKIP-1 3'UTR plays a crucial role in regulating cardiac response to SD.
- Overexpression of CKIP-1 3'UTR shows therapeutic promise for treating sleep deprivation-induced heart disease by reactivating the CaMKK2/AMPK/cTNI pathway.
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