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Adrenomedullin promotes differentiation of oligodendrocyte precursor cells into myelin-basic-protein expressing oligodendrocytes under pathological conditions in vitro

机译:肾上腺髓质素在体外病理条件下促进少突胶质前体细胞分化为表达髓鞘碱性蛋白的少突胶质细胞

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摘要

Oligodendrocytes, which are the main cell type in cerebral white matter, are generated from their precursor cells (oligodendrocyte precursor cells: OPCs). However, the differentiation from OPCs to oligodendrocytes is disturbed under stressed conditions. Therefore, drugs that can improve oligodendrocyte regeneration may be effective for white matter-related diseases. Here we show that a vasoactive peptide adrenomedullin (AM) promotes the in vitro differentiation of OPCs under pathological conditions. Primary OPCs were prepared from neonatal rat brains, and differentiated into myelin-basic-protein expressing oligodendrocytes over time. This in vitro OPC differentiation was inhibited by prolonged chemical hypoxic stress induced by non-lethal CoCl2 treatment. However, AM promoted the OPC differentiation under the hypoxic stress conditions, and the AM receptor antagonist AM22–52 cancelled the AM-induced OPC differentiation. In addition, AM treatment increased the phosphorylation level of Akt in OPC cultures, and correspondingly, the PI3K/Akt inhibitor blocked the AM-induced OPC differentiation. Taken together, AM treatment rescued OPC maturation under pathological conditions via an AM-receptor-PI3K/Akt pathway. Oligodendrocytes play critical roles in white matter by forming myelin sheath. Therefore, AM signaling may be a promising therapeutic target to boost oligodendrocyte regeneration in CNS disorders.
机译:少突胶质细胞是脑白质中的主要细胞类型,由它们的前体细胞(少突胶质细胞前体细胞:OPC)产生。但是,在压力条件下,从OPC到少突胶质细胞的分化受到干扰。因此,可以改善少突胶质细胞再生的药物可能对白质相关疾病有效。在这里,我们显示血管活性肽肾上腺髓质素(AM)促进病理条件下OPC的体外分化。从新生大鼠脑中制备初级OPC,并随时间分化为表达髓鞘碱性蛋白的少突胶质细胞。这种体外OPC分化受到非致命性CoCl2处理诱导的长时间化学低氧应激的抑制。然而,在低氧胁迫条件下,AM促进了OPC的分化,而AM受体拮抗剂AM22-52取消了AM诱导的OPC的分化。此外,AM处理增加了OPC培养物中Akt的磷酸化水平,相应地,PI3K / Akt抑制剂阻断了AM诱导的OPC分化。总而言之,AM治疗通过AM受体PI3K / Akt途径在病理条件下挽救了OPC成熟。少突胶质细胞通过形成髓鞘形成白质中的关键作用。因此,AM信号传导可能是增强CNS疾病中少突胶质细胞再生的有希望的治疗靶标。

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