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Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
Histidine-rich calcium-binding protein: a molecular integrator of cardiac excitation-contraction coupling
1Department of Physiology, School of Medicine, College of Medicine and Health, University College Cork, Cork, T12 XF62, Ireland.
Insights
The histidine-rich calcium-binding protein (HRC) and aspolin regulate cardiomyocyte calcium levels. HRC shows rapid evolution, suggesting adaptation to terrestrial life and potential roles in pH sensing and redox reactions.
Area of Science:
- Cardiology
- Molecular Biology
- Evolutionary Biology
Background:
- Mammalian cardiomyocyte contraction relies on calcium (Ca2+) influx and release from the sarcoplasmic reticulum (SR).
- Histidine-rich calcium-binding protein (HRC) and aspolin are key Ca2+-binding regulators of SR Ca2+ levels and function.
- HRC modulates SR Ca2+-ATPase 2 and ryanodine receptor channels, impacting excitation-contraction coupling.
Purpose of the Study:
- To analyze the evolution of HRC and aspolin to understand their regulatory roles in cardiac function.
- To investigate the evolutionary origins and diversification of these Ca2+-binding proteins.
Main Methods:
- Comparative genomic and evolutionary analysis of HRC and aspolin sequences across different species.
- Bioinformatic analysis to identify conserved and rapidly evolving regions.
- Examination of protein domains and motifs for functional inference.
Main Results:
- HRC homologues are found in diverse species including chordates, annelids, molluscs, corals, and sea anemones.
- Triadin appears to be a chordate-specific protein.
- HRC exhibits accelerated evolution in mammals, particularly in regions potentially involved in pH sensing and redox reactions, while its C-terminal region is conserved.
Conclusions:
- HRC and aspolin play crucial roles in regulating cardiac Ca2+ handling, with HRC undergoing significant evolutionary adaptation.
- The rapid evolution of HRC may reflect adaptations to terrestrial, endothermic life, possibly involving pH sensing.
- Conserved cysteine-rich motifs suggest roles in redox reactions and metal binding for both HRC and aspolin, while polyaspartic regions in aspolin are linked to demethylase activity.
Abstract:
During mammalian cardiomyocyte excitation-contraction coupling, Ca2+ influx through voltage-gated Ca2+ channels triggers Ca2+ release from the sarcoplasmic reticulum (SR) through ryanodine receptor channels. This Ca2+-induced Ca2+ release mechanism controls cardiomyocyte contraction and is exquisitely regulated by SR Ca2+ levels. The histidine-rich calcium-binding protein (HRC) and its aspartic acid-rich paralogue aspolin are high-capacity, low-affinity Ca2+-binding proteins. Aspolin also acts as a trimethylamine N-oxide demethylase. At low intraluminal Ca2+ concentrations, HRC binds to the SR Ca2+-ATPase 2, inhibiting its Ca2+-pumping activity. At high intraluminal Ca2+ levels, HRC interacts with triadin to reduce Ca2+ release through ryanodine receptor channels. This Review analyses the evolution of these Ca2+-regulatory proteins, to gain insights into their roles. It reveals that HRC homologues are present in chordates, annelid worms, molluscs, corals and sea anemones. In contrast, triadin appears to be a chordate innovation. Furthermore, HRC is evolving more rapidly than other cardiac excitation-contraction coupling proteins. This positive selection (or relaxed negative selection) occurs along most of the mammalian HRC protein sequence, with the exception being the C-terminal cysteine-rich region, which is undergoing negative selection. The histidine-rich region of HRC might be involved in pH sensing, as an adaptation to air-breathing, endothermic and terrestrial life. In addition, a cysteine-rich pattern within HRC and aspolin is also found in a wide range of iron-sulfur cluster proteins, suggesting roles in redox reactions and metal binding. The polyaspartic regions of aspolins are likely to underlie their trimethylamine N-oxide demethylase activity, which might be mimicked by the acidic regions of HRCs. These potential roles of HRCs and aspolins await experimental verification.
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