4.6 Article

Glial Cell Metabolic Profile Upon Iron Deficiency: Oligodendroglial and Astroglial Casualties of Bioenergetic Adjustments

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MOLECULAR NEUROBIOLOGY
卷 60, 期 4, 页码 1949-1963

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SPRINGER
DOI: 10.1007/s12035-022-03149-y

关键词

Iron deficiency; Oligodendrocytes; Astrocytes; Bioenergetic parameters; Glial cell metabolism; Mitochondrial dysfunction; Glycogen consumption

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Iron deficiency is a common nutritional deficit that affects nearly two billion people worldwide. In this study, primary cultures of oligodendrocytes (OLGs) and astrocytes (ASTs) from control and iron-deficient newborns were used to assess bioenergetics metabolism. The results showed that iron deficiency induces mitochondrial dysfunction and impairs cell maturation.
Iron deficiency (ID) represents one of the most prevalent nutritional deficits, affecting almost two billion people worldwide. Gestational iron deprivation induces hypomyelination due to oligodendroglial maturation deficiencies and is thus a useful experimental model to analyze oligodendrocyte (OLG) requirements to progress to a mature myelinating state. A previous proteomic study in the adult ID brain by our group demonstrated a pattern of dysregulated proteins involved in the tricarboxylic acid cycle and mitochondrial dysfunction. The aim of the present report was to assess bioenergetics metabolism in primary cultures of OLGs and astrocytes (ASTs) from control and ID newborns, on the hypothesis that the regulation of cell metabolism correlates with cell maturation. Oxygen consumption and extracellular acidification rates were measured using a Seahorse extracellular flux analyzer. ID OLGs and ASTs both exhibited decreased spare respiratory capacity, which indicates that ID effectively induces mitochondrial dysfunction. A decrease in glycogen granules was observed in ID ASTs, and an increase in ROS production was detected in ID OLGs. Immunolabeling of structural proteins showed that mitochondrial number and size were increased in ID OLGs, while an increased number of smaller mitochondria was observed in ID ASTs. These results reflect an unfavorable bioenergetic scenario in which ID OLGs fail to progress to a myelinating state, and indicate that the regulation of cell metabolism may impact cell fate decisions and maturation.

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