Literature DB >> 28092084

Iron Availability Compromises Not Only Oligodendrocytes But Also Astrocytes and Microglial Cells.

Maria Victoria Rosato-Siri1, Leandro Marziali1, María Eugenia Guitart1, Maria Elvira Badaracco1, Mariana Puntel2, Fernando Pitossi2, Jorge Correale3, Juana Maria Pasquini4.   

Abstract

When disrupted, iron homeostasis negatively impacts oligodendrocyte (OLG) differentiation and impairs myelination. To better understand myelin formation and OLG maturation, in vivo and in vitro studies were conducted to evaluate the effect of iron deficiency (ID) not only on OLG maturation but also on astrocytes (AST) and microglial cells (MG). In vivo experiments in an ID model were carried out to describe maturational events during OLG and AST development and the reactive profile of MG during myelination when iron availability is lower than normal. In turn, in vitro assays were conducted to explore proliferating and maturational states of each glial cell type derived from control or ID conditions. Studies targeted NG2, PDGFRα, CNPAse, CC1, and MBP expression in OLG, GFAP and S100 expression in AST, and CD11b, ED1, and cytokine expression in MG, as well as BrDU incorporation in the three cell types. Our results show that ID affected OLG development at early stages, not only reducing their maturation capacity but also increasing their proliferation and affecting their morphological complexity. AST ID proliferated more than control ones and were more immature, much like OLG. Cytokine expression in ID animals reflected an anti-inflammatory state which probably influenced OLG maturation. These results show that ID conditions alter all glial cells and may impact myelin formation, which could be regulated by a mechanism involving a cross talk between AST, MG, and oligodendrocyte progenitors (OPC).

Entities:  

Keywords:  Astrocyte response; Hypomyelination; Iron deficiency; Microglial cell activation; Oligodendrocyte maturation

Mesh:

Substances:

Year:  2017        PMID: 28092084     DOI: 10.1007/s12035-016-0369-2

Source DB:  PubMed          Journal:  Mol Neurobiol        ISSN: 0893-7648            Impact factor:   5.590


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