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Published on: January 28, 2020
The roles of mediator complex in cardiovascular diseases
Concetta Schiano1, Amelia Casamassimi2, Maria Teresa Vietri2
1Institute of Diagnostic and Nuclear Development (SDN), IRCCS, Via E. Gianturco 113, 80143 Naples, Italy.
Abstract:
Despite recent treatment advances, an increase in cardiovascular diseases (CVD) mortality is expected for the next years. Mediator (MED) complex plays key roles in eukaryotic gene transcription. Currently, while numerous studies have correlated MED alterations with several diseases, like cancer or neurological disorders, fewer studies have investigated MED role in CVD initiation and progression. The first finding of MED involvement in these pathologies was the correlation of missense mutations in MED13L gene with transposition of the great arteries. Nowadays, also MED13 and MED15 have been associated with human congenital heart diseases and others could be added, like MED12 that is involved in early mouse development and heart formation. Interestingly, a missense mutation in MED30 gene causes a progressive cardiomyopathy in homozygous mice suggesting a potential role for this subunit also in human CVDs. Moreover, several subunits like MED1, MED13, MED14, MED15, MED23, MED25 and CDK8 exert important roles in glucose and lipid metabolism. Although these evidences derive from in vitro and animal model studies, they indicate that their deregulation may have a significant role in human CVD-related metabolic disorders. Finally, alternative transcripts of MED12, MED19 and MED30 are differently expressed in circulating endothelial progenitor cells thus suggesting they can play a role in the field of regenerative medicine. Overall, further functional studies exploring MED role in human CVD are warranted. The results could allow identifying novel biomarkers to use in combination with imaging techniques for early diagnosis; otherwise, they could be useful to develop targets for novel therapeutic approaches.
Insights
The Mediator (MED) complex, crucial for gene transcription, is increasingly linked to cardiovascular diseases (CVD). Research suggests MED subunits may offer new diagnostic biomarkers and therapeutic targets for CVD and related metabolic disorders.
Area of Science:
- Molecular Biology
- Genetics
- Cardiovascular Research
Background:
- Cardiovascular diseases (CVD) mortality is projected to rise despite treatment advances.
- The Mediator (MED) complex regulates eukaryotic gene transcription, but its role in CVD is understudied.
- MED complex alterations are known in cancer and neurological disorders, with emerging links to heart conditions.
Purpose of the Study:
- To explore the involvement of the Mediator (MED) complex in the initiation and progression of cardiovascular diseases (CVD).
- To investigate the potential of MED subunits as biomarkers and therapeutic targets for CVD and associated metabolic disorders.
Main Methods:
- Review of existing literature correlating MED gene mutations and expression with heart development and disease.
- Analysis of studies on MED subunit roles in glucose and lipid metabolism.
- Examination of MED transcript variations in endothelial progenitor cells.
Main Results:
- Missense mutations in MED13L, MED13, MED15, and MED30 are associated with congenital heart defects and cardiomyopathy.
- Several MED subunits (MED1, MED13, MED14, MED15, MED23, MED25, CDK8) are implicated in glucose and lipid metabolism, suggesting a role in CVD-related metabolic disorders.
- Alternative transcripts of MED12, MED19, and MED30 show differential expression in endothelial progenitor cells, indicating potential in regenerative medicine.
Conclusions:
- Further research into the Mediator complex's function in human CVD is essential.
- MED subunits may serve as novel biomarkers for early CVD diagnosis when combined with imaging.
- MED complex components could be developed into therapeutic targets for novel CVD treatments.
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