Related Experiment Video
Updated: Jun 11, 2025

Dynamic Proteomic and miRNA Analysis of Polysomes from Isolated Mouse Heart After Langendorff Perfusion
Published on: August 29, 2018
Characterizing age-related changes in intact mitochondrial proteoforms in murine hearts using quantitative top-down
Andrea Ramirez-Sagredo1, Anju Teresa Sunny2, Kellye A Cupp-Sutton2
1Aging and Metabolism Research Program, Oklahoma Medical Research Foundation, MS21, 825 NE 13th St, Oklahoma City, OK, 73104, USA.
Insights
This study used top-down proteomics to analyze cardiac aging, identifying age-related changes in mitochondrial proteoforms and post-translational modifications (PTMs) in mouse hearts.
Area of Science:
- Proteomics
- Mitochondrial Biology
- Cardiovascular Aging
Background:
- Cardiovascular diseases (CVDs) increase with age, linked to mitochondrial dysfunction.
- The heart's high energy demand makes it sensitive to mitochondrial dysfunction.
- Cardiac mitochondrial proteome complexity and age-related changes are not fully understood.
Purpose of the Study:
- To investigate age-related changes in intact mitochondrial proteoforms in the heart.
- To identify alterations in protein abundance and post-translational modifications (PTMs) during cardiac aging.
- To apply top-down proteomics for comprehensive cardiac mitochondrial proteome analysis.
Main Methods:
- Isolated intact mitochondria from young and old mouse hearts.
- Utilized quantitative top-down proteomics (LC-MS/MS) with label-free quantitation.
- Identified and quantified proteoforms and their PTMs in cardiac mitochondria.
Main Results:
- Identified 134 unique mitochondrial proteins and 823 unique proteoforms.
- Detected significant age-related changes in proteoform abundance (7 increased, 13 decreased).
- Characterized PTMs including acetylation, succinylation, oxidation, and phosphorylation in aged cardiac mitochondria.
Conclusions:
- Top-down proteomics successfully identified and quantified intact proteoforms in the cardiac mitochondrial proteome.
- This approach revealed age-related alterations in proteoform abundance and PTMs in the heart.
- The findings provide insights into mitochondrial changes during cardiac aging.
Background:
Cardiovascular diseases (CVDs) are the leading cause of death worldwide, and the prevalence of CVDs increases markedly with age. Due to the high energetic demand, the heart is highly sensitive to mitochondrial dysfunction. The complexity of the cardiac mitochondrial proteome hinders the development of effective strategies that target mitochondrial dysfunction in CVDs. Mammalian mitochondria are composed of over 1000 proteins, most of which can undergo post-translational modifications (PTMs). Top-down proteomics is a powerful technique for characterizing and quantifying proteoform sequence variations and PTMs. However, there are still knowledge gaps in the study of age-related mitochondrial proteoform changes using this technique. In this study, we used top-down proteomics to identify intact mitochondrial proteoforms in young and old hearts and determined changes in protein abundance and PTMs in cardiac aging.
Methods:
Intact mitochondria were isolated from the hearts of young (4-month-old) and old (24-25-month-old) mice. The mitochondria were lysed, and mitochondrial lysates were subjected to denaturation, reduction, and alkylation. For quantitative top-down analysis, there were 12 runs in total arising from 3 biological replicates in two conditions, with technical duplicates for each sample. The collected top-down datasets were deconvoluted and quantified, and then the proteoforms were identified.
Results:
From a total of 12 LC-MS/MS runs, we identified 134 unique mitochondrial proteins in the different sub-mitochondrial compartments (OMM, IMS, IMM, matrix). 823 unique proteoforms in different mass ranges were identified. Compared to cardiac mitochondria of young mice, 7 proteoforms exhibited increased abundance and 13 proteoforms exhibited decreased abundance in cardiac mitochondria of old mice. Our analysis also detected PTMs of mitochondrial proteoforms, including N-terminal acetylation, lysine succinylation, lysine acetylation, oxidation, and phosphorylation. Data are available via ProteomeXchange with the identifier PXD051505.
Conclusion:
By combining mitochondrial protein enrichment using mitochondrial fractionation with quantitative top-down analysis using ultrahigh-pressure liquid chromatography (UPLC)-MS and label-free quantitation, we successfully identified and quantified intact proteoforms in the complex mitochondrial proteome. Using this approach, we detected age-related changes in abundance and PTMs of mitochondrial proteoforms in the heart.
More Related Videos
08:04Measuring Mitochondrial Electron Transfer Complexes in Previously Frozen Cardiac Tissue from the Offspring of Sow: A Model to Assess Exercise-Induced Mitochondrial Bioenergetics Changes
Published on: August 16, 2021
09:04Author Spotlight: Two-Step Tag-Free Isolation of Mitochondria for Improved Protein Discovery and Quantification
Published on: June 2, 2023