Epac, a positive or negative signaling molecule in cardiovascular diseases

Yu-Qing Tan1, Jun Li2, Heng-Wen Chen2

  • 1Department of Cardiology, Guang'anmen Hospital, China Academy of Chinese Medical Sciences, Beijing 100053, China; Beijing University of Chinese Medicine, Beijing 100029, China.

Insights

Epac, a cAMP effector, plays a crucial role in cardiovascular diseases (CVDs) by influencing pathways like ion regulation and cardiac remodeling. Understanding Epac

Area of Science:

  • Molecular Biology
  • Cardiovascular Research
  • Cellular Signaling

Background:

  • Cardiovascular diseases (CVDs) are a leading cause of mortality and morbidity globally.
  • The complex pathogenesis of CVDs remains incompletely understood, highlighting the need for further research.
  • Mitochondrial function and cAMP signaling are critical in cardiovascular physiology and pathology.

Purpose of the Study:

  • To systematically review the mechanisms by which Epac (Exchange protein directly activated by cyclic AMP) influences cardiovascular diseases.
  • To explore Epac's role in various CVD-related pathways, including ion regulation, cardiac hypertrophy, fibrosis, apoptosis, and angiogenesis.
  • To provide insights for novel therapeutic strategies and targeted drug development for CVDs like arrhythmia and heart failure.

Main Methods:

  • Systematic review and discussion of existing scientific literature on Epac and CVDs.
  • Analysis of Epac's involvement in diverse cellular and molecular pathways relevant to cardiovascular function.
  • Synthesis of current understanding regarding Epac's physiopathological roles in the heart.

Main Results:

  • Epac, a key cAMP effector, is implicated in multiple CVD mechanisms.
  • Epac influences critical cardiovascular processes such as cardiomyocyte survival, cardiac remodeling, and vascularization.
  • While some mechanisms show inconsistencies, they underscore the complexity and significance of Epac's functions in CVD.

Conclusions:

  • Epac is a significant molecular target for understanding and treating cardiovascular diseases.
  • Further research into Epac's diverse roles can pave the way for innovative therapeutic interventions.
  • The complexity of Epac signaling necessitates continued investigation for effective drug discovery in cardiology.

Related Concept Videos

cAMP-dependent Protein Kinase Pathways01:25

cAMP-dependent Protein Kinase Pathways

Cyclic Adenosine Monophosphate (cAMP) is an essential second messenger that activates protein kinase A (PKA) and regulates various biological processes. A single epinephrine molecule binds to GPCR and activates several heterotrimeric G proteins, each stimulating multiple adenylyl cyclase, amplifying the signal, and synthesizing large numbers of cAMP molecules. Small changes in cAMP concentration affect PKA activity. The binding of four cAMP molecules induces a conformational change in PKA,...
6.8K
Transducer Mechanism: Enzyme-Linked Receptors01:27

Transducer Mechanism: Enzyme-Linked Receptors

Enzyme-linked receptors are cell-surface receptors acting as an enzyme or associating with an enzyme intracellularly. They make excellent drug targets. Drugs can bind to the extracellular ligand-binding domain or directly affect their enzymatic domain and alter their activity.
Major types that are helpful drug targets include:
3.0K
G-Protein Gated Ion Channels01:21

G-Protein Gated Ion Channels

GPCRs are primarily responsible for our sense of smell, taste, and vision.  The binding of a sensory stimulus activates GPCR to stimulate effector proteins, many of which are ion channels in the sensory organs. GPCRs modulate the opening and closing of the target ion channels either directly by binding them, or by releasing second messengers that activate these channels. As ions move across the membrane, the membrane potential is altered, which induces an appropriate response.
Sensory...
4.9K
Paracrine Signaling01:21

Paracrine Signaling

Paracrine signaling allows cells to communicate with their immediate neighbors via secretion of signaling molecules. Such a signal can only trigger a response in nearby target cells because the signal molecules degrade quickly or are inactivated if not taken up. Prominent examples of paracrine signaling include nitric oxide signaling in blood vessels, synaptic signaling of neurons, the blood clotting system, tissue repair/wound healing, and local allergic skin reactions. Nitric oxide as a...
56.3K
GPCRs Regulate Adenylyl Cylase Activity01:09

GPCRs Regulate Adenylyl Cylase Activity

Some GPCRs transmit signals through adenylyl cyclase (AC), a transmembrane enzyme. AC helps synthesize second messenger cyclic adenosine monophosphate (cAMP). AC catalyzes cyclization reaction and converts ATP to cAMP by releasing a pyrophosphate. The pyrophosphate is further hydrolyzed to phosphate by the enzyme pyrophosphatase, which drives cAMP synthesis to completion. However, cAMP is rapidly degraded to 5′ AMP by the enzymes phosphodiesterase (PDE), preventing overstimulation of...
6.0K
Blood Studies for Cardiovascular System II: CRP, Hcy, and Cardiac Natriuretic Peptide Markers01:19

Blood Studies for Cardiovascular System II: CRP, Hcy, and Cardiac Natriuretic Peptide Markers

Cardiac biomarkers are critical in diagnosing, prognosing, and managing cardiovascular diseases. Routine measurement of specific biomarkers such as B-type natriuretic peptide (BNP), C-reactive protein (CRP), and homocysteine (Hcy) is common practice in clinical settings to evaluate heart function and predict cardiovascular events.
These markers indicate stress or strain on the heart muscle:
Natriuretic Peptides (BNP)
Cardiac myocytes produce these hormones in response to ventricular stretching...
247