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Effects of Aging, Hypertension and Diabetes on the Mouse Brain and Heart Vasculomes

Overview
Journal Neurobiol Dis
Specialty Neurology
Date 2018 Jul 22
PMID 30031157
Citations 21
Authors
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Abstract

The emerging concept of the vasculome suggests that microvessels contribute to function and dysfunction in every organ. In the brain, aging and comorbidities such as hypertension and diabetes significantly influence a wide variety of neurodegenerative and cerebrovascular disorders, but the underlying mechanisms are complex and remain to be fully elucidated. Here, we hypothesize that aging, hypertension and diabetes perturb gene networks in the vasculome. Microvascular endothelial cells were isolated from mouse brain and heart, and their transcriptomes were profiled with microarrays. For aging, we compared 5 mo vs 15 mo old C57BL6 male mice. For hypertension, we compared 4 mo old normotensive BPN vs hypertensive BPH male mice. For diabetes, we compared 3 mo old diabetic db/db mice with their matching C57BLKS controls. Four overall patterns arose from these comparative analyses. First, organ differences between brain and heart were larger than effects of age and co-morbidities per se. Second, across all conditions, more genes were altered in the brain vasculome compared with the heart. Third, age, hypertension and diabetes perturbed the brain and heart vasculomes in mostly distinct ways, with little overlap. Fourth, nevertheless, a few common pathways were detected in the brain, expressed mostly as a suppression of immune response. These initial drafts of the brain and heart vasculomes in the context of aging and vascular comorbidities should provide a framework for designing future investigations into potential targets and mechanisms in CNS disease.

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References
1.
Vanlandewijck M, He L, Mae M, Andrae J, Ando K, Del Gaudio F . A molecular atlas of cell types and zonation in the brain vasculature. Nature. 2018; 554(7693):475-480. DOI: 10.1038/nature25739. View

2.
Guo S, Lok J, Zhao S, Leung W, Som A, Hayakawa K . Effects of Controlled Cortical Impact on the Mouse Brain Vasculome. J Neurotrauma. 2015; 33(14):1303-16. PMC: 4931728. DOI: 10.1089/neu.2015.4101. View

3.
Xing C, Lo E . Help-me signaling: Non-cell autonomous mechanisms of neuroprotection and neurorecovery. Prog Neurobiol. 2016; 152:181-199. PMC: 5064822. DOI: 10.1016/j.pneurobio.2016.04.004. View

4.
Marie C, Pedard M, Quirie A, Tessier A, Garnier P, Totoson P . Brain-derived neurotrophic factor secreted by the cerebral endothelium: A new actor of brain function?. J Cereb Blood Flow Metab. 2018; 38(6):935-949. PMC: 5998997. DOI: 10.1177/0271678X18766772. View

5.
Lubomirov L, Papadopoulos S, Putz S, Welter J, Klockener T, Weckmuller K . Aging-related alterations in eNOS and nNOS responsiveness and smooth muscle reactivity of murine basilar arteries are modulated by apocynin and phosphorylation of myosin phosphatase targeting subunit-1. J Cereb Blood Flow Metab. 2016; 37(3):1014-1029. PMC: 5363478. DOI: 10.1177/0271678X16649402. View