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Labarchede, M.

Publications and source records attributed to Labarchede, M..

2 recordsLinked to original sources

Neuronal activity induces myelin voltage changes that reflect action potential dependent myelin potassium buffering

Vertebrate axons can be wrapped by myelin produced by oligodendrocytes. This cellular interaction ensures fast and accurate propagation of action potentials, but the physiology of the myelin sheath is almost completely unknown. To investigate the physiology of the myelin sheath, we implemented an imaging strategy that allowed optical measurements of myelin membrane voltage, with the aim to identify physiological changes of the myelin membrane during neuronal firing. We expressed the genetically encoded voltage indicator ASAP3 in mouse oligodendrocytes in vivo and subsequently investigated myelin physiology by optically measuring myelin membrane voltage. We found that myelin depolarizes during neuronal activity, which is blocked by inhibiting neuronal action potentials. Pharmacological and knock-out experiments of Kir4.1 showed that potassium uptake channels mediate action potential induced depolarization. Blocking myelin dependent potassium uptake and direct application of high potassium to identified axons induced axonal initiated and antidromic propagating action potentials. Our study shows that myelin is not an electrically passive insulator, but exhibits ion dynamics and its physiological response is fine tuned to neuronal activity. By facilitating potassium removal during action potentials, myelin supports high precision axonal firing. Genetically encoded sensors are thus a useful tool to study physiological properties of myelin, inaccessible by classical techniques. HighlightsO_LIOptical imaging of myelin membrane potential C_LIO_LIMyelin sheaths exhibit depolarization in response to neuronal firing C_LIO_LIDepolarizations are partially mediated through Kir channels C_LIO_LIPotassium originates from axonal Kv channels C_LI

neuroscience↗

A population of gray matter oligodendrocytes directly associates with the vasculature

Oligodendrocyte lineage cells interact with the vasculature in the gray matter. Physical and functional interactions between blood vessels and oligodendrocyte precursor cells play an essential role in both the developing and adult brain. Oligodendrocyte precursor cells have been shown to migrate along the vasculature and subsequently detach from it during their differentiation to oligodendrocytes. However, the association of mature oligodendrocytes with blood vessels has been noted since the discovery of this glial cell type almost a century ago and this interaction remains poorly explored. Here, we systematically investigated the extent of mature oligodendrocyte interaction with the vasculature in mouse. We found that ~17% of oligodendrocytes were in contact with blood vessels in cortex, hippocampus and cerebellum. Contacts were made mainly with capillaries and sparsely with larger arterioles or venules. By combining light and serial electron microscopy, we demonstrated that oligodendrocytes are in direct contact with the vascular basement membrane, raising the possibility of direct signaling pathways and metabolite exchange with endothelial cells. During experimental remyelination in the adult, oligodendrocytes were regenerated and associated with blood vessels in the same proportion compared to control cortex, suggesting a homeostatic regulation of the vasculature-associated oligodendrocyte population. Based on the frequent and close association with blood vessels, we propose that vasculature-associated oligodendrocytes should be considered as an integral part of the vasculature microenvironment. This particular location could underlie specific functions of vasculature-associated oligodendrocytes, while contributing to the vulnerability of mature oligodendrocytes in neurological diseases.

neuroscience↗