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Updated: Jul 15, 2025

Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
Reduction of double-strand DNA break repair exacerbates vascular aging
Samuel I Bloom1, Jordan R Tucker2, Daniel R Machin3
1Department of Nutrition and Integrative Physiology, University of Utah, Salt Lake City, UT 84148, USA.
Insights
Aging accelerates arterial dysfunction and cardiovascular disease (CVD) risk by increasing DNA damage in arteries. This study reveals how DNA damage accumulation in aged arteries impairs vascular function, contributing to CVD development.
Area of Science:
- Cardiovascular Biology
- Aging Research
- Molecular Biology
Background:
- Advanced age is a primary risk factor for cardiovascular disease (CVD).
- Impaired arterial function with age contributes to CVD development.
- The role of DNA damage in age-related arterial dysfunction is underexplored.
Purpose of the Study:
- To investigate the incidence and physiological consequences of DNA damage in arteries, particularly the microvasculature, during aging.
- To explore the link between DNA damage accumulation and age-related arterial dysfunction.
Main Methods:
- Assessed DNA damage in human and mouse lung microvascular endothelial cells.
- Evaluated endothelial function, microvascular/glycocalyx properties, and arterial stiffness in mice with varying ATM kinase levels (DNA repair protein).
- Compared aged wild-type mice with aged ATM+/- mice (heterozygous for ATM kinase).
Main Results:
- Aging increased DNA damage in microvascular endothelial cells.
- Aged ATM+/- mice exhibited accelerated vascular aging, with increased arterial DNA damage, senescence signaling, and impaired endothelium-dependent dilation.
- Old ATM+/- mice showed reduced microvascular density, thinner glycocalyx, and increased arterial stiffness compared to controls.
Conclusions:
- Accumulated DNA damage in arteries during advanced age contributes significantly to arterial dysfunction.
- This age-related arterial dysfunction is a key driver of cardiovascular disease development.
Abstract:
Advanced age is the greatest risk factor for cardiovascular disease (CVD), the leading cause of death. Arterial function is impaired in advanced age which contributes to the development of CVD. One underexplored hypothesis is that DNA damage within arteries leads to this dysfunction, yet evidence demonstrating the incidence and physiological consequences of DNA damage in arteries, and in particular, in the microvasculature, in advanced age is limited. In the present study, we began by assessing the abundance of DNA damage in human and mouse lung microvascular endothelial cells and found that aging increases the percentage of cells with DNA damage. To explore the physiological consequences of increases in arterial DNA damage, we evaluated measures of endothelial function, microvascular and glycocalyx properties, and arterial stiffness in mice that were lacking or heterozygous for the double-strand DNA break repair protein ATM kinase. Surprisingly, in young mice, vascular function remained unchanged which led us to rationalize that perhaps aging is required to accumulate DNA damage. Indeed, in comparison to wild type littermate controls, mice heterozygous for ATM that were aged to ~18 mo (Old ATM +/-) displayed an accelerated vascular aging phenotype characterized by increases in arterial DNA damage, senescence signaling, and impairments in endothelium-dependent dilation due to elevated oxidative stress. Furthermore, old ATM +/- mice had reduced microvascular density and glycocalyx thickness as well as increased arterial stiffness. Collectively, these data demonstrate that DNA damage that accumulates in arteries in advanced age contributes to arterial dysfunction that is known to drive CVD.
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