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Fuss, B.

Publications and source records attributed to Fuss, B..

2 recordsLinked to original sources

ORMDL3-mediated SPT regulation Coordinates Myelin Sphingolipid and Protein Synthesis in Oligodendrocytes

Myelin is an essential and highly specialized membrane in the central and peripheral nervous systems that enwraps axons to accelerate electrical transmission and support neuronal health. The generation of this multilamellar structure requires a tightly coordinated synthesis of specific proteins and lipids. Among these are sphingolipids (SLs), which are major components of myelin. SL production is initiated by the serine palmitoyltransferase (SPT) enzyme complex, the rate-limiting enzyme in the de novo SL biosynthesis pathway. ORMDL proteins (ORMDL1-3) are the regulatory subunits of SPT, which, by sensing ceramide levels, tune SL flux. Although ORMDL3 has been linked to asthma and peripheral myelination, its role in CNS myelination and the CNS myelin-making oligodendrocytes (OLGs) remains unclear. We therefore assessed the function of ORMDL3 in OLs by generating a Cnp-Cre-driven, oligodendrocyte-specific Ormdl3 conditional knockout (cKO) mouse model. Loss of Ormdl3 selectively increased myelin SLs, particularly long-chain sulfatides, without altering ceramide or galactosylceramide abundance. These changes are most prominent around postnatal day 35, a developmental period of active myelin turnover. Ultrastructural analysis of optic nerves shows a thicker myelin sheath and increased axon caliber in cKO mice. Unexpectedly, deletion of Ormdl3 also increases levels of major myelin proteins (MBP, MOG, and PLP) and is accompanied by dynamic, region- and sex-dependent regulation of enzymes involved in sulfatide biosynthesis, without altering OLGs number or maturation. Together, for the first time, these findings identify Ormdl3 as a key regulator of SL homeostasis during developmental myelination and suggest that it helps synchronize lipid synthesis with myelin protein expression.

biochemistry↗

Astrocyte-oligodendrocyte crosstalk dependent myelination via secreted protein YKL40

Although oligodendrocyte differentiation and myelin formation are inherent properties of oligodendrocyte progenitor cells (OPCs) that are guided by intrinsic transcriptional and epigenetic programs, this process in the brain is finely regulated by signals coming from other cells, including astrocytes. Here, we identified the astrocyte secreted protein YKL40 at the center of astrocyte-OPC cross-communication and myelination in the developing brain. We find that YKL40 is expressed by astrocytes within white matter areas in the developing brain, coinciding with the OPC differentiation and myelination. Deletion of YKL40 in astrocytes showed delayed developmental myelination and reduced OPC proliferation. Interestingly, coculture with OPCs in vitro specifically induces YKL40 expression in astrocytes, which in turn promotes OPC differentiation and OPC proliferation. Mechanistically, purified YKL40 significantly induced the expression of transcription factors Olig2 and MYRF (Myeline regulatory factor) in OPCs. Therefore, we identified a novel mechanism of OPC-astrocyte crosscommunication dependent myelination by astrocytic YKL40 in the developing brain.

neuroscience↗