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A Fast and Quantitative Method for Post-translational Modification and Variant Enabled Mapping of Peptides to Genomes
Published on: May 22, 2018
Integrated Dissection of Cysteine Oxidative Post-translational Modification Proteome During Cardiac Hypertrophy
Abstract:
Cysteine oxidative modification of cellular proteins is crucial for many aspects of cardiac hypertrophy development. However, integrated dissection of multiple types of cysteine oxidative post-translational modifications (O-PTM) of proteomes in cardiac hypertrophy is currently missing. Here we developed a novel discovery platform that encompasses a customized biotin switch-based quantitative proteomics pipeline and an advanced analytic workflow to comprehensively profile the landscape of cysteine O-PTM in an ISO-induced cardiac hypertrophy mouse model. Specifically, we identified a total of 1655 proteins containing 3324 oxidized cysteine sites by at least one of the following three modifications: reversible cysteine O-PTM, cysteine sulfinylation (CysSO2H), and cysteine sulfonylation (CysSO3H). Analyzing the hypertrophy signatures that are reproducibly discovered from this computational workflow unveiled four biological processes with increased cysteine O-PTM. Among them, protein phosphorylation, creatine metabolism, and response to elevated Ca2+ pathways exhibited an elevation of cysteine O-PTM in early stages, whereas glucose metabolism enzymes were increasingly modified in later stages, illustrating a temporal regulatory map in cardiac hypertrophy. Our cysteine O-PTM platform depicts a dynamic and integrated landscape of the cysteine oxidative proteome, through the extracted molecular signatures, and provides critical mechanistic insights in cardiac hypertrophy. Data are available via ProteomeXchange with identifier PXD010336.
Insights
Cardiac hypertrophy involves cysteine oxidative modifications. This study developed a novel platform to map these modifications, revealing temporal changes in key metabolic and signaling pathways during cardiac hypertrophy development.
Area of Science:
- Proteomics
- Biochemistry
- Cardiovascular Biology
Background:
- Cysteine oxidative modifications are vital in cardiac hypertrophy.
- A comprehensive analysis of multiple cysteine oxidative post-translational modifications (O-PTM) in cardiac hypertrophy is lacking.
Purpose of the Study:
- To develop a novel platform for comprehensive profiling of cysteine O-PTM in cardiac hypertrophy.
- To investigate the dynamic landscape of cysteine oxidation in a mouse model of cardiac hypertrophy.
Main Methods:
- Developed a customized biotin switch-based quantitative proteomics pipeline.
- Employed an advanced analytic workflow for proteome-wide O-PTM analysis.
- Utilized an ISO-induced cardiac hypertrophy mouse model.
Main Results:
- Identified 1655 proteins with 3324 oxidized cysteine sites, including reversible O-PTM, sulfinylation (CysSO2H), and sulfonylation (CysSO3H).
- Uncovered four biological processes with increased cysteine O-PTM.
- Revealed temporal regulation: early-stage O-PTM in phosphorylation, creatine metabolism, and Ca2+ response pathways; later-stage O-PTM in glucose metabolism enzymes.
Conclusions:
- The developed platform provides a dynamic and integrated view of the cysteine oxidative proteome in cardiac hypertrophy.
- Identified key molecular signatures and temporal regulatory maps offering mechanistic insights into cardiac hypertrophy.
- Data are publicly available (ProteomeXchange identifier PXD010336).
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