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Co-immunoprecipitation Assay Using Endogenous Nuclear Proteins from Cells Cultured Under Hypoxic Conditions
Published on: August 2, 2018
Calcineurin activates cytoglobin transcription in hypoxic myocytes
Sarvjeet Singh1, Shilpa M Manda, Devanjan Sikder
1Departments of Internal Medicine and Molecular Biology, University of Texas Southwestern Medical Center, Dallas, Texas 75390, USA.
Insights
Cytoglobin, a heart protein, is upregulated during cardiac hypertrophy caused by hypoxia. Its expression is controlled by calcineurin-dependent transcription factors, suggesting a role in heart remodeling.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cellular Stress Response
Background:
- Cardiac hypertrophy is a response to cardiovascular stress, involving complex signaling pathways.
- Cytoglobin (CYGB) is a hemoprotein found in various tissues, but its role in cardiac stress is not fully understood.
Purpose of the Study:
- To investigate the role and regulation of cytoglobin in hypoxia-induced cardiac hypertrophy.
- To elucidate the molecular mechanisms controlling cytoglobin gene expression under stress.
Main Methods:
- Analysis of cytoglobin transcript and protein levels in hypertrophic hearts.
- Transcriptional analysis of the cytoglobin gene's 5' upstream regulatory region.
- Investigation of transcription factor binding (HIF-1, AP-1, NFAT) and calcineurin activity.
Main Results:
- Cytoglobin expression is significantly upregulated in hypoxia-induced hypertrophic myocardium.
- The cytoglobin gene promoter contains binding sites for HIF-1, AP-1, and NFAT.
- Calcineurin activity positively modulates cytoglobin transcription by enhancing NFAT and AP-1 binding, particularly under hypoxia.
Conclusions:
- Cytoglobin is a stress-responsive hemoprotein transcriptionally regulated by calcineurin-dependent factors in cardiac hypertrophy.
- These findings suggest cytoglobin may play a functional role in calcium-dependent cardiac remodeling processes.
Abstract:
Cardiac hypertrophy develops in response to a variety of cardiovascular stresses and results in activation of numerous signaling cascades and proteins. In the present study, we demonstrate that cytoglobin is a stress-responsive hemoprotein in the hypoxia-induced hypertrophic myocardium and it is transcriptionally regulated by calcineurin-dependent transcription factors. The cytoglobin transcript level is abundantly expressed in the adult heart and in response to hypoxia cytoglobin expression is markedly up-regulated within the hypoxia-induced hypertrophic heart. To define the molecular mechanism resulting in the induction of cytoglobin, we undertook a transcriptional analysis of the 5' upstream regulatory region of the cytoglobin gene. Evolutionarily conserved binding elements for transcription factors HIF-1, AP-1, and NFAT are located within the upstream region of the cytoglobin gene. Transcriptional assays demonstrated that calcineurin activity modulates cytoglobin transcription. Increased calcineurin activity enhances the ability of NFAT and AP-1 to bind to the putative cytoglobin promoter, especially under hypoxic conditions. In addition, inhibition of calcineurin, NFAT, and/or AP-1 activities decreases endogenous cytoglobin transcript and protein levels. Thus, the regulation of cytoglobin transcription by calcineurin-dependent transcription factors suggests that cytoglobin may have a functional role in calcium-dependent events accompanying cardiac remodeling.
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