Iron overload induces cerebral endothelial senescence in aged mice and in primary culture in a sex‐dependent manner

衰老 生物 小学(天文学) 原代培养 生理学 细胞培养 免疫学 细胞生物学 遗传学 天文 物理
作者
Brian Noh,Maria P. Blasco-Conesa,Syed Mushfiqur Rahman,Sheelu Monga,Rodney M. Ritzel,Gary Guzman,Yun‐Ju Lai,Bhanu Priya Ganesh,Akihiko Urayama,Louise D. McCullough,Jose F. Moruno-Manchon
出处
期刊:Aging Cell [Wiley]
卷期号:22 (11) 被引量:13
标识
DOI:10.1111/acel.13977
摘要

Iron imbalance in the brain negatively affects brain function. With aging, iron levels increase in the brain and contribute to brain damage and neurological disorders. Changes in the cerebral vasculature with aging may enhance iron entry into the brain parenchyma, leading to iron overload and its deleterious consequences. Endothelial senescence has emerged as an important contributor to age-related changes in the cerebral vasculature. Evidence indicates that iron overload may induce senescence in cultured cell lines. Importantly, cells derived from female human and mice generally show enhanced senescence-associated phenotype, compared with males. Thus, we hypothesize that cerebral endothelial cells (CEC) derived from aged female mice are more susceptible to iron-induced senescence, compared with CEC from aged males. We found that aged female mice, but not males, showed cognitive deficits when chronically treated with ferric citrate (FC), and their brains and the brain vasculature showed senescence-associated phenotype. We also found that primary culture of CEC derived from aged female mice, but not male-derived CEC, exhibited senescence-associated phenotype when treated with FC. We identified that the transmembrane receptor Robo4 was downregulated in the brain vasculature and in cultured primary CEC derived from aged female mice, compared with those from male mice. We discovered that Robo4 downregulation contributed to enhanced vulnerability to FC-induced senescence. Thus, our study identifies Robo4 downregulation as a driver of senescence induced by iron overload in primary culture of CEC and a potential risk factor of brain vasculature impairment and brain dysfunction.
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