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Assessment of Sarcoplasmic Reticulum Calcium Reserve and Intracellular Diastolic Calcium Removal in Isolated Ventricular Cardiomyocytes
Published on: September 18, 2017
An integrated mechanism of cardiomyocyte nuclear Ca(2+) signaling
Cristián Ibarra1, Jose Miguel Vicencio2, Manuel Varas-Godoy3
1Cardiovascular and Metabolic Diseases, Innovative Medicines and Early Development, AstraZeneca R&D, Mölndal, Sweden.
Abstract:
In cardiomyocytes, Ca(2+) plays a central role in governing both contraction and signaling events that regulate gene expression. Current evidence indicates that discrimination between these two critical functions is achieved by segregating Ca(2+) within subcellular microdomains: transcription is regulated by Ca(2+) release within nuclear microdomains, and excitation-contraction coupling is regulated by cytosolic Ca(2+). Accordingly, a variety of agonists that control cardiomyocyte gene expression, such as endothelin-1, angiotensin-II or insulin-like growth factor-1, share the feature of triggering nuclear Ca(2+) signals. However, signaling pathways coupling surface receptor activation to nuclear Ca(2+) release, and the phenotypic responses to such signals, differ between agonists. According to earlier hypotheses, the selective control of nuclear Ca(2+) signals by activation of plasma membrane receptors relies on the strategic localization of inositol trisphosphate receptors at the nuclear envelope. There, they mediate Ca(2+) release from perinuclear Ca(2+) stores upon binding of inositol trisphosphate generated in the cytosol, which diffuses into the nucleus. More recently, identification of such receptors at nuclear membranes or perinuclear sarcolemmal invaginations has uncovered novel mechanisms whereby agonists control nuclear Ca(2+) release. In this review, we discuss mechanisms for the selective control of nuclear Ca(2+) signals with special focus on emerging models of agonist receptor activation.
Insights
Calcium (Ca2+) in heart cells (cardiomyocytes) controls both muscle contraction and gene expression. This review explores how Ca2+ signals are directed to the nucleus for gene regulation, distinct from cytosolic Ca2+ used for contraction.
Area of Science:
- Cardiovascular Biology
- Cellular Signaling
- Molecular Cardiology
Background:
- Calcium ions (Ca2+) are critical for cardiomyocyte function, regulating both excitation-contraction coupling and gene expression.
- Subcellular Ca2+ segregation into microdomains dictates its distinct roles, with nuclear Ca2+ controlling transcription and cytosolic Ca2+ governing contraction.
Purpose of the Study:
- To review mechanisms controlling nuclear Ca2+ signals in cardiomyocytes.
- To highlight emerging models of agonist-induced nuclear Ca2+ release via receptor activation.
Main Methods:
- Literature review focusing on signaling pathways and Ca2+ dynamics.
- Analysis of agonist-specific mechanisms controlling nuclear Ca2+ release.
Main Results:
- Agonists like endothelin-1, angiotensin-II, and IGF-1 trigger nuclear Ca2+ signals to regulate cardiomyocyte gene expression.
- Inositol trisphosphate receptors (IP3Rs) located at the nuclear envelope mediate Ca2+ release from perinuclear stores.
- Novel mechanisms involving IP3Rs at nuclear membranes and sarcolemmal invaginations are emerging.
Conclusions:
- Selective control of nuclear Ca2+ signals is crucial for agonist-specific regulation of cardiomyocyte gene expression.
- Understanding these pathways is key to deciphering how external stimuli influence cardiac phenotype.
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