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Induction and Validation of Cellular Senescence in Primary Human Cells
Published on: June 20, 2018
Magnesium deficiency accelerates cellular senescence in cultured human fibroblasts
David W Killilea1, Bruce N Ames
1Nutrition and Metabolism Center, Children's Hospital Oakland Research Institute, Oakland, CA 94609, USA. dkillilea@chori.org
Abstract:
Magnesium inadequacy affects more than half of the U.S. population and is associated with increased risk for many age-related diseases, yet the underlying mechanisms are unknown. Altered cellular physiology has been demonstrated after acute exposure to severe magnesium deficiency, but few reports have addressed the consequences of long-term exposure to moderate magnesium deficiency in human cells. Therefore, IMR-90 human fibroblasts were continuously cultured in magnesium-deficient conditions to determine the long-term effects on the cells. These fibroblasts did not demonstrate differences in cellular viability or plating efficiency but did exhibit a decreased replicative lifespan in populations cultured in magnesium-deficient compared with standard media conditions, both at ambient (20% O(2)) and physiological (5% O(2)) oxygen tension. The growth rates for immortalized IMR-90 fibroblasts were not affected under the same conditions. IMR-90 fibroblast populations cultured in magnesium-deficient conditions had increased senescence-associated beta-galactosidase activity and increased p16(INK4a) and p21(WAF1) protein expression compared with cultures from standard media conditions. Telomere attrition was also accelerated in cell populations from magnesium-deficient cultures. Thus, the long-term consequence of inadequate magnesium availability in human fibroblast cultures was accelerated cellular senescence, which may be a mechanism through which chronic magnesium inadequacy could promote or exacerbate age-related disease.
Insights
Chronic magnesium inadequacy accelerates cellular senescence in human fibroblasts, potentially contributing to age-related diseases. This study reveals key cellular mechanisms linked to low magnesium levels.
Area of Science:
- Cell Biology
- Nutritional Science
- Gerontology
Background:
- Magnesium inadequacy affects over 50% of the U.S. population.
- It is linked to increased risk for age-related diseases, but mechanisms are unclear.
- Long-term effects of moderate magnesium deficiency in human cells are understudied.
Purpose of the Study:
- To investigate the long-term effects of magnesium deficiency on human fibroblasts.
- To determine if magnesium inadequacy accelerates cellular aging processes.
Main Methods:
- IMR-90 human fibroblasts were cultured in magnesium-deficient media.
- Cellular viability, replicative lifespan, senescence markers (beta-galactosidase, p16INK4a, p21WAF1), and telomere length were assessed.
- Experiments were conducted at ambient (20% O2) and physiological (5% O2) oxygen levels.
Main Results:
- Magnesium-deficient fibroblasts showed a decreased replicative lifespan compared to controls.
- Increased senescence-associated beta-galactosidase activity and elevated p16INK4a and p21WAF1 protein levels were observed.
- Telomere attrition was accelerated in magnesium-deficient cell cultures.
Conclusions:
- Long-term magnesium inadequacy accelerates cellular senescence in human fibroblasts.
- Accelerated senescence may be a mechanism linking chronic magnesium deficiency to age-related diseases.
- These findings highlight the importance of adequate magnesium for cellular health and aging.
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