Distinct sequences and post-translational modifications in cardiac atrial and ventricular myosin light chains
Zachery R Gregorich1, Wenxuan Cai1, Ziqing Lin2
1Molecular and Cellular Pharmacology Training Program, University of Wisconsin-Madison, Madison, WI 53705, USA; Department of Cell and Regenerative Biology, University of Wisconsin-Madison, Madison, WI 53705, USA.
Insights
This study reveals novel N-terminal modifications in atrial and ventricular myosin light chains (MLC) from human and swine hearts. These findings enhance our understanding of cardiac muscle contraction and MLC function.
Area of Science:
- Cardiovascular Biology
- Proteomics
- Muscle Physiology
Background:
- Myosin light chains (MLC), including essential light chains (ELC) and regulatory light chains (RLC), are crucial for cardiac muscle contraction.
- Previous studies have lacked comprehensive characterization of MLC isoforms and their post-translational modifications in the heart.
Purpose of the Study:
- To comprehensively characterize the sequences and N-terminal modifications of atrial and ventricular MLC isoforms from human and swine hearts.
- To identify phosphorylation sites in swine MLC isoforms.
- To provide insights into the functional roles of MLC modifications in cardiac physiology and pathophysiology.
Main Methods:
- Top-down high-resolution mass spectrometry (MS) was employed for comprehensive characterization.
- Electron capture dissociation (ECD) was utilized for precise localization of phosphorylation sites.
Main Results:
- Database sequence disparities in swine MLC were corrected.
- Ventricular ELC and RLC isoforms are N-terminally methylated.
- Atrial ELC and RLC isoforms are Nα-methylated and Nα-acetylated, respectively, in both human and swine hearts.
- Phosphorylation sites in swine RLC were localized to Ser14 (ventricle) and Ser22 (atria).
Conclusions:
- This study provides the first comprehensive characterization of N-terminal modifications for atrial and ventricular MLC isoforms in human and swine hearts.
- Novel N-terminal acetylation and methylation patterns were identified in atrial MLCs.
- Specific phosphorylation sites were localized in swine RLC isoforms, offering new targets for functional studies.
- These findings advance the understanding of myosin light chain regulation in cardiac function and disease.
Abstract:
Myosin is the principal component of the thick filaments that, through interactions with the actin thin filaments, mediates force production during muscle contraction. Myosin is a hexamer, consisting of two heavy chains, each associated with an essential (ELC) and a regulatory (RLC) light chain, which bind the lever-arm of the heavy chain and play important modulatory roles in striated muscle contraction. Nevertheless, a comprehensive assessment of the sequences of the ELC and RLC isoforms, as well as their post-translational modifications, in the heart remains lacking. Herein, utilizing top-down high-resolution mass spectrometry (MS), we have comprehensively characterized the sequences and N-terminal modifications of the atrial and ventricular isoforms of the myosin light chains from human and swine hearts, as well as the sites of phosphorylation in the swine proteins. In addition to the correction of disparities in the database sequences of the swine proteins, we show for the first time that, whereas the ventricular isoforms of the ELC and RLC are methylated at their N-termini, which is consistent with previous studies, the atrial isoforms of the ELC and RLC from both human and swine are Nα-methylated and Nα-acetylated, respectively. Furthermore, top-down MS with electron capture dissociation enabled localization of the sites of phosphorylation in swine RLC isoforms from the ventricles and atria to Ser14 and Ser22, respectively. Collectively, these results provide new insights into the sequences and modifications of myosin light chain isoforms in the human and swine hearts, which will pave the way for a better understanding of their functional roles in cardiac physiology and pathophysiology.
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