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Updated: Jan 20, 2026

Single Molecule Methods for Monitoring Changes in Bilayer Elastic Properties
Published on: November 3, 2008
Elastic titin properties and protein quality control in the aging heart
Senem Salcan1, Sabine Bongardt1, David Monteiro Barbosa1
1Department of Cardiovascular Physiology, Medical Faculty, Heinrich Heine-University Düsseldorf, D-40225 Düsseldorf, Germany.
Insights
Cardiac aging impairs protein quality control, affecting titin turnover and proteasomal activity, but does not alter cardiomyocyte passive tension. This reduced adaptive capacity may contribute to heart failure development.
Area of Science:
- Cardiology
- Molecular Biology
- Aging Research
Background:
- Cardiac aging shares features with chronic heart failure, including impaired diastolic function and protein accumulation.
- Diminished protein-quality control systems in aging hearts increase the risk of defective protein buildup.
Purpose of the Study:
- To investigate the impact of cardiac aging on the sarcomeric protein titin.
- To analyze titin's passive tension, modifications, and proteasomal turnover in aged hearts.
Main Methods:
- Analysis of left ventricular samples from young and old wild-type mice.
- Examination of human donor hearts from young and aged individuals.
- Assessment of titin phosphorylation, passive tension, calpain-1 activity, and proteasomal function.
Main Results:
- No age-dependent differences in titin isoform composition were observed in mice or humans.
- Altered titin phosphorylation occurred at specific serine residues (S4010, S4099) in aged hearts.
- Cardiomyocyte passive tension remained unchanged, but calpain-1 activity and proteasomal function were reduced in aged hearts.
Conclusions:
- Cardiac aging does not alter titin-based passive cardiomyocyte properties.
- Protein-quality control mechanisms, including titin turnover, are impaired in aging hearts.
- Reduced adaptive capacity of the aged myocardium may result from impaired protein quality control.
Abstract:
Cardiac aging affects the heart on the functional, structural, and molecular level and shares characteristic hallmarks with the development of chronic heart failure. Apart from age-dependent left ventricular hypertrophy and fibrosis that impairs diastolic function, diminished activity of cardiac protein-quality-control systems increases the risk of cytotoxic accumulation of defective proteins. Here, we studied the impact of cardiac aging on the sarcomeric protein titin by analyzing titin-based cardiomyocyte passive tension, titin modification and proteasomal titin turnover. We analyzed left ventricular samples from young (6 months) and old (20 months) wild-type mice and healthy human donor patients grouped according to age in young (17-50 years) and aged hearts (51-73 years). We found no age-dependent differences in titin isoform composition of mouse or human hearts. In aged hearts from mice and human we determined altered titin phosphorylation at serine residues S4010 and S4099 in the elastic N2B domain, but no significant changes in phosphorylation of S11878 and S12022 in the elastic PEVK region. Importantly, overall titin-based cardiomyocyte passive tension remained unchanged. In aged hearts, the calcium-activated protease calpain-1, which provides accessibility to ubiquitination by releasing titin from the sarcomere, showed decreased proteolytic activity. In addition, we observed a reduction in the proteasomal activities. Taken together, our data indicate that cardiac aging does not affect titin-based passive properties of the cardiomyocytes, but impairs protein-quality control, including titin, which may result in a diminished adaptive capacity of the aged myocardium.
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