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Updated: Jun 28, 2026

Echocardiographic and Histological Examination of Cardiac Morphology in the Mouse
Published on: October 26, 2017
Expression of the vitamin d receptor is increased in the hypertrophic heart
Songcang Chen1, Denis J Glenn, Wei Ni
1Diabetes Center, University of California at San Francisco, CA 94143-0540, USA.
Insights
The vitamin D receptor (VDR) system is present in the heart and may help prevent cardiac hypertrophy. Its components increase with cardiac hypertrophy, suggesting an amplified protective role.
Area of Science:
- Cardiology
- Endocrinology
- Molecular Biology
Background:
- The vitamin D receptor (VDR) is implicated in cardiac function, particularly in preventing cardiac hypertrophy.
- Previous research on VDR in the heart is limited in scope and number.
Purpose of the Study:
- To investigate the presence and function of the VDR signaling system in the heart.
- To determine if VDR is involved in cardiac hypertrophy.
Main Methods:
- Real-time PCR, Western blot, immunofluorescence, and transfection analysis were used.
- Investigated VDR, 1-alpha-hydroxylase, and 24-hydroxylase presence in cardiac cells and tissue.
- Examined VDR interaction with the B-type natriuretic peptide gene promoter.
Main Results:
- Functional VDR, 1-alpha-hydroxylase, and 24-hydroxylase were detected in cardiac myocytes, fibroblasts, and ventricular myocardium.
- VDR directly interacts with the B-type natriuretic peptide gene promoter.
- VDR mRNA and protein levels increase during cardiac hypertrophy in vitro and in vivo.
Conclusions:
- The heart possesses the necessary components for a functional 1,25 dihydroxyvitamin D signaling system.
- This VDR-dependent system appears to be antihypertrophic and is upregulated during cardiac hypertrophy.
Abstract:
The liganded vitamin D receptor (VDR) is thought to play an important role in controlling cardiac function. Specifically, this system has been implicated as playing an antihypertrophic role in the heart. Despite this, studies of VDR in the heart have been limited in number and scope. In the present study, we used a combination of real-time polymerase chain reaction, Western blot analysis, immunofluorescence, and transient transfection analysis to document the presence of functional VDR in both the myocytes and fibroblasts of the heart, as well as in the intact ventricular myocardium. We also demonstrated the presence of 1-alpha-hydroxylase and 24-hydroxylase in the heart, 2 enzymes involved in the synthesis and metabolism of 1,25 dihydroxyvitamin D. VDR is shown to interact directly with the human B-type natriuretic peptide gene promoter, a surrogate marker of the transcriptional response to hypertrophy. Of note, induction of myocyte hypertrophy either in vitro or in vivo leads to an increase in VDR mRNA and protein levels. Collectively, these findings suggest that the key components required for a functional 1,25 dihydroxyvitamin D-dependent signaling system are present in the heart and that this putatively antihypertrophic system is amplified in the setting of cardiac hypertrophy.
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