Isorhynchophylline improves lipid metabolism disorder by mediating a circadian rhythm gene Bmal1 in spontaneously hypertensive rat

Author:

Zhu Xialin12,Hou Qingqing3,Zhang Ling3,Wang Danyang1,Tian Zhenhua4,Liu Yuecheng5,Wang Yu6,Li Yunlun1678ORCID,Jiang Haiqiang178ORCID

Affiliation:

1. Innovative Institute of Chinese Medicine and Pharmacy Shandong University of Traditional Chinese Medicine Jinan China

2. Research Center of Basic Medicine, Jinan Central Hospital Shandong First Medical University Jinan China

3. College of Pharmaceutical Sciences Shandong University of Traditional Chinese Medicine Jinan China

4. Experimental Center Shandong University of Traditional Chinese Medicine Jinan China

5. Shandong Academy of Chinese Medicine Jinan China

6. Affiliated Hospital of Shandong University of Traditional Chinese Medicine Jinan China

7. Key Laboratory of Traditional Chinese Medicine Classical Theory Ministry of Education, Shandong University of Traditional Chinese Medicine Jinan China

8. Shandong Provincial Key Laboratory of Traditional Chinese Medicine for Basic Research Shandong University of Traditional Chinese Medicine Jinan China

Abstract

AbstractHypertension is a progressive metabolic disease characterized by circadian regulation of lipid metabolism disorder. Identifying specific lipid components and maintaining circadian homeostasis of lipid metabolism might be a promising therapeutic strategy for hypertension. Isorhynchophylline (IRP) can regulate lipid metabolism; however, the underlying mechanism of IRP in improving lipid metabolism rhythm disorder is still unclear. The lipid circadian biomarkers and abnormal metabolic pathways intervened by IRP were investigated using diurnal lipidomic research methods. The 24‐h circadian changes in mRNA and protein expression levels of circadian genes, including Bmal1, Clock, Cry1, Cry2, Per1, and Per2, and lipid metabolism‐related factors (PPARα and LPL) were determined using RT‐PCR and western blot analyses, respectively. The underlying mechanisms were intensively investigated by inhibiting Bmal1. Molecular docking and drug affinity responsive target stability analyses were performed to assess the binding affinity of IRP and Bmal1. IRP treatment could effectively improve 24‐h blood pressure, ameliorate the lipid metabolic rhythm disorder, reverse the expression levels of circadian rhythm genes, and regulate lipid metabolism‐related genes (PPARα and LPL) by mediating Bmal1. This study highlighted the potential effects of IRP in maintaining the circadian homeostasis of lipid metabolism and the treatment of hypertension.

Funder

National Natural Science Foundation of China

Shandong Academy of Medical Sciences

Publisher

Wiley

Subject

Pharmacology

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