Schisanhenol Attenuates OxLDL-Induced Endothelial Dysfunction via an AMPK-Dependent Mechanism

Author:

Chiu Tsan-Hung1,Ku Chang-Wen23,Ho Tsung-Jung234,Tsai Kun-Ling5,Hsu Wei-Ching6,Chen Yu-An7,Ou Hsiu-Chung8,Chen Hsiu-I89

Affiliation:

1. Department of Obstetrics and Gynecology, China Medical University Hospital, Taichung, Taiwan

2. Department of Chinese Medicine, Buddhist Tzu Chi Medical Foundation, Hualien, Taiwan

3. Integration Center of Traditional Chinese and Modern Medicine, Hualien Tzu Chi Hospital, Buddhist Tzu Chi Medical Foundation, Hualien, Taiwan

4. School of Post-Baccalaureate Chinese Medicine, College of Medicine, Tzu Chi University, Hualien, Taiwan

5. Department of Physical Therapy, College of Medicine, National Cheng Kung University, Tainan, Taiwan

6. Department of Rehabilitation, Asia University Hospital, Taichung, Taiwan

7. Department of Health and Leisure Management, Yuanpei University of Medical Technology, Hsinchu, Taiwan

8. Department of Physical Therapy, College of Medical and Health Science, Asia University, Taichung, Taiwan

9. Department of Physical Therapy, Hungkuang University, Taichung, Taiwan

Abstract

Atherosclerotic cardiovascular diseases, commonly known as the formation of fibrofatty lesions in the artery wall, are the leading causes of death globally. Oxidized low-density lipoprotein (oxLDL) is one of the major components of atherosclerotic plaques. It is evident that dietary supplementation containing sources of antioxidants can prevent atherogenic diseases. Schisanhenol (SAL), a dibenzocyclooctene lignin, has been shown to attenuate oxLDL-induced apoptosis and the generation of reactive oxygen species (ROS) in endothelial cells. However, the underlying molecular mechanisms are still largely unknown. In this study, human umbilical vein endothelial cells (HUVECs) were pre-treated with SAL and oxLDL. Our results showed that adenosine monophosphate-activated protein kinase (AMPK) phosphorylation was enhanced in cells pre-treated with SAL in time-dependent and dose-dependent manners. Subsequently, oxLDL-induced AMPK dephosphorylation and protein kinase C (PKC) phosphorylation were significantly reversed in the presence of SAL. In addition, SAL treatment led to an inhibiting effect on the oxLDL-induced membrane assembly of NADPH oxidase subunits, and a similar effect was observed in ROS generation. This effect was further confirmed using knockdown AMPK with small interfering RNA (siRNA) and pharmaceutical reagents, such as the AMPK activator (AICAR), PKC inhibitor (Gö 6983), and ROS inhibitor (DPI). Furthermore, the oxLDL-induced intracellular calcium rise and the potential collapse of the mitochondrial membrane reduced the Bcl-2/Bax ratio, and released cytochrome c from the mitochondria, leading to the subsequent activation of caspase-3 in HUVECs, which were also markedly suppressed by SAL pretreatment. The results mentioned above may provide additional insights into the possible molecular mechanisms underlying the cardiovascular protective effects of SAL.

Funder

Asia University and the China Medical University

Buddhist Tzu Chi Medical Foundation Hualien Tzu Chi Hospital

Publisher

World Scientific Pub Co Pte Ltd

Subject

Complementary and alternative medicine,General Medicine

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