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Published on: August 13, 2019
Oestrogen Receptor β Activation Protects Against Myocardial Infarction via Notch1 Signalling
Mingjun Du1, Jianggui Shan1, Anqi Feng2
1Department of Cardiovascular Surgery, Renji Hospital, School of Medicine, Shanghai Jiao Tong University, 160 Pu-Jian Road, Shanghai, 200127, People's Republic of China.
Purpose:
Oestrogen receptor β is believed to exert a cardioprotective effect against ischaemic injury. Nonetheless, the mechanism underlying its protective action remains to be fully elucidated. Recently, increased attention has been focused on Notch1 signalling for ameliorating cardiac ischaemic injury. Here, we hypothesised that oestrogen receptor β activation attenuates myocardial infarction (MI)-induced cardiac damage by modulating the Notch1 signalling pathway.
Methods:
Male C57BL/6 mice were used to establish an MI model through the ligation of the anterior descending branch of the left coronary artery. Two chemical drugs, 2,3-Bis(4-hydroxyphenyl)-propionitrile (DPN) and N-[N-(3,5-difluorophenacetyl)-l-alanyl]-s-phenylglycine t-butyl ester (DAPT), a specific inhibitor of Notch1 signalling) were administered via intraperitoneal injection to change oestrogen receptor β and Notch1 activities. Immunohistochemistry, western blot analysis, enzyme-linked immunosorbent assay (Elisa) assessment and echocardiography were used in this study to analyse cardiac oxidative stress, apoptosis, infraction volume, fibrosis and cardiac function.
Results:
DPN-mediated oestrogen receptor β activation effectively protected cardiomyocytes from MI-induced oxidative damage and apoptosis. Furthermore, oestrogen receptor β activation reduced the infarct size and lowered the levels of myocardial enzymes in the serum, thereby leading to greater overall cardiac function improvement. Ischaemic injury-induced myocardial fibrosis was attenuated by oestrogen receptor β activation. Nevertheless, all of these cardioprotective effects of oestrogen receptor β activation were almost abrogated by DAPT administration, i.e. DAPT attenuated the anti-oxidative and anti-apoptotic effects and the decrease in infarct and fibrotic areas and reversed cardiac functional recovery. The levels of phospho-phosphatidylinositol-3-kinase (PI3K) and phospho-protein kinase B (Akt) were increased after DPN administration, and this change was reversed after DAPT was administered.
Conclusions:
All of these new findings indicate that oestrogen receptor β activation is effective in ameliorating MI-induced cardiac dysfunction by enhancing Notch1 signalling and that PI3K/Akt signalling is the downstream mediator.
Insights
Oestrogen receptor β activation protects the heart from myocardial infarction by enhancing Notch1 signalling, improving cardiac function and reducing damage. This pathway involves PI3K/Akt signalling, offering a potential therapeutic target for heart disease.
Area of Science:
- Cardiovascular Biology
- Endocrinology
- Molecular Medicine
Background:
- Oestrogen receptor beta (ERβ) is implicated in cardioprotection against ischaemic injury, but its precise mechanism is unclear.
- Notch1 signalling is increasingly recognized for its role in mitigating cardiac ischaemic injury.
Purpose of the Study:
- To investigate if ERβ activation can attenuate myocardial infarction (MI)-induced cardiac damage by modulating the Notch1 signalling pathway.
- To elucidate the downstream signalling mediators involved in ERβ-mediated cardioprotection.
Main Methods:
- Myocardial infarction model established in male C57BL/6 mice.
- Administration of DPN to activate ERβ and DAPT to inhibit Notch1 signalling.
- Analysis of cardiac oxidative stress, apoptosis, infarct size, fibrosis, and function using immunohistochemistry, western blot, ELISA, and echocardiography.
Main Results:
- ERβ activation by DPN protected cardiomyocytes from MI-induced oxidative stress and apoptosis.
- ERβ activation reduced infarct size, serum myocardial enzyme levels, and fibrosis, improving cardiac function.
- Notch1 inhibition by DAPT abrogated the cardioprotective effects of ERβ activation and reversed cardiac functional recovery.
- DPN administration increased PI3K/Akt signalling, which was reversed by DAPT.
Conclusions:
- ERβ activation ameliorates MI-induced cardiac dysfunction by enhancing Notch1 signalling.
- PI3K/Akt signalling acts as a downstream mediator in the ERβ-mediated cardioprotective pathway.
- Targeting ERβ and Notch1 signalling presents a potential therapeutic strategy for managing myocardial infarction.
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