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首页> 外文期刊>American Journal of Physiology >The vascular endothelial cell mediates insulin transport into skeletal muscle.
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The vascular endothelial cell mediates insulin transport into skeletal muscle.

机译:血管内皮细胞介导胰岛素转运到骨骼肌中。

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The pathways by which insulin exits the vasculature to muscle interstitium have not been characterized. In the present study, we infused FITC-labeled insulin to trace morphologically (using confocal immunohistochemical methods) insulin transport into rat skeletal muscle. We biopsied rectus muscle at 0, 10, 30, and 60 min after beginning a continuous (10 mU x min(-1) x kg(-1)), intravenous FITC-insulin infusion (with euglycemia maintained). The FITC-insulin distribution was compared with that of insulin receptors (IR), IGF-I receptors (IGF-IR), and caveolin-1 (a protein marker for caveolae) in skeletal muscle vasculature. We observed that muscle endothelium stained strongly for FITC-insulin within 10 min, and this persisted to 60 min. Endothelium stained more strongly for FITC-insulin than any other cellular elements in muscle. IR, IGF-IR, and caveolin-1 were also detected immunohistochemically in muscle endothelial cells. We further compared their intracellular distribution with that of FITC-insulin incultured bovine aortic endothelial cells (bAECs). Considerable colocalization of IR or IGF-IR with FITC-insulin was noted. There was some but less overlap of IR or IGF-IR or FITC-insulin with caveolin-1. Immunoprecipitation of IR coprecipitated caveolin-1, and conversely the precipitation of caveolin-1 brought down IR. Furthermore, insulin increased the tyrosine phosphorylation of caveolin-1, and filipin (which inhibits caveolae formation) blocked insulin uptake. Finally, the ability of insulin, IGF-I, and IGF-I-blocking antibody to diminish insulin transport across bAECs grown on transwell plates suggested that IGF-IR, in addition to IR, can also mediate transendothelial insulin transit. We conclude that in vivo endothelial cells rapidly take up and concentrate insulin relative to plasma and muscle interstitium and that IGF-IR, like IR, may mediate insulin transit through endothelial cells in a process involving caveolae.
机译:胰岛素离开脉管系统到达肌肉间质的途径尚未鉴定。在本研究中,我们注入了FITC标记的胰岛素,以形态学上(使用共聚焦免疫组织化学方法)将胰岛素转运到大鼠骨骼肌中。我们在开始连续(10 mU x min(-1)x kg(-1))静脉FITC胰岛素输注(维持血糖正常)后的0、10、30和60分钟处对直肌进行活检。将FITC胰岛素的分布与骨骼肌脉管系统中的胰岛素受体(IR),IGF-1受体(IGF-1R)和小窝蛋白1(小窝蛋白标记)的分布进行了比较。我们观察到肌内皮在10分钟内对FITC胰岛素染色强烈,并且持续60分钟。内皮细胞对FITC胰岛素的染色比肌肉中任何其他细胞元件更强。还通过免疫组织化学方法在肌肉内皮细胞中检测到IR,IGF-IR和Caveolin-1。我们进一步将它们的细胞内分布与FITC胰岛素培养的牛主动脉内皮细胞(bAEC)进行了比较。注意到IR或IGF-1R与FITC-胰岛素的相当共定位。 IR或IGF-1R或FITC-胰岛素与caveolin-1有一些但很少的重叠。 IR的免疫沉淀共沉淀了caveolin-1,相反,caveolin-1的沉淀降低了IR。此外,胰岛素增加了小窝蛋白1的酪氨酸磷酸化,而菲律宾血脂(抑制小窝的形成)阻止了胰岛素的吸收。最后,胰岛素,IGF-I和IGF-I阻断抗体减少跨孔板生长的bAEC上的胰岛素转运的能力表明,除IR外,IGF-IR还可以介导跨内皮胰岛素转运。我们得出的结论是,体内内皮细胞相对于血浆和肌肉间质迅速吸收并浓缩胰岛素,而IGF-IR与IR一样,可能在涉及小窝的过程中介导胰岛素通过内皮细胞的转运。

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