胰岛素抵抗和Pcyt2缺乏骨骼肌对过量胆碱的适应。

Adrian Taylor, L. Schenkel, Maiya K. Yokich, M. Bakovic
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引用次数: 10

摘要

据推测,在胰岛素抵抗(IR) CTP:磷酸乙醇胺胞基转移酶缺陷(Pcyt2+/-)小鼠中补充胆碱可以通过重塑葡萄糖和脂肪酸(FA)代谢来改善肌肉功能。Pcyt2+/-小鼠要么不接受治疗,要么连续4周在饮用水中加入2 mg/mL胆碱。从胆碱处理和未处理的小鼠身上采集骨骼肌。比较Pcyt2+/-小鼠、Pcyt2+/-小鼠和Pcyt2+/+小鼠的脂质分析、代谢基因表达和信号通路。补充胆碱对IR肌肉的主要积极影响是减少了FA和甘油三酯(TAG)合成的葡萄糖利用,增加了作为糖原的肌肉葡萄糖储存。胆碱降低了FA和TAG形成基因(Scd1, Fas, Srebp1c, Dgat1/2)的表达,上调了FA氧化基因(Cpt1, Pparα, Pgc1α)的表达,对磷脂和脂肪分解基因的影响较小。Pcyt2+/-肌肉的胰岛素信号(IRS1)、自噬(LC3)和胆碱运输(CTL1)蛋白减少,这些蛋白通过胆碱处理得到恢复。此外,胆碱激活AMPK和Akt,抑制mTORC1磷酸化。这些数据表明,在胰岛素抵抗Pcyt2缺陷小鼠中,补充胆碱可以通过减少脂肪生成和改善线粒体和细胞内蛋白质和能量代谢的信号传导来恢复肌肉葡萄糖代谢。
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Adaptations to excess choline in insulin resistant and Pcyt2 deficient skeletal muscle.
It was hypothesized that choline supplementation in insulin resistant (IR) CTP:phosphoethanolamine cytidylyltransferase deficient (Pcyt2+/-) mice would ameliorate muscle function by remodeling glucose and fatty acid (FA) metabolism. Pcyt2+/- mice either received no treatment or were allowed access to 2 mg/mL choline in drinking water for 4 weeks. Skeletal muscle was harvested from choline treated and untreated mice. Lipid analysis and metabolic gene expression and signaling pathways were compared between untreated Pcyt2+/- mice, treated Pcyt2+/- mice, and Pcyt2+/+ mice. The major positive effect of choline supplementation on IR muscle was the reduction of glucose utilization for FA and triglyceride (TAG) synthesis and increased muscle glucose storage as glycogen. Choline reduced the expression of genes for FA and TAG formation (Scd1, Fas, Srebp1c, Dgat1/2), upregulated the genes for FA oxidation (Cpt1, Pparα, Pgc1α), and had minor effects on phospholipid and lipolysis genes. Pcyt2+/- muscle had reduced insulin signaling (IRS1), autophagy (LC3), and choline transport (CTL1) proteins that were restored by choline treatment. Additionally, choline activated AMPK and Akt while inhibiting mTORC1 phosphorylation. These data established that choline supplementation could restore muscle glucose metabolism by reducing lipogenesis and improving mitochondrial and intracellular signaling for protein and energy metabolism in insulin resistant Pcyt2 deficient mice.
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