Trautmann M E, Wollheim C B
Biochem J. 1987 Mar 15;242(3):625-30. doi: 10.1042/bj2420625.
The rat insulinoma-derived RINm5F cell line retains many differentiated functions of islet beta-cells. However, it fails to recognize glucose as an insulin secretagogue in the physiological concentration range. With this cell line, glucose-transport kinetics were investigated, by using a double-label technique with the non-metabolizable glucose analogue 3-O-methylglucose (OMG). RINm5F cells possess a passive glucose-transport system with high capacity and low affinity. Equilibration across the plasma membrane of extracellular OMG concentrations up to at least 20 mM is achieved within 2 min at 37 degrees C. The half-saturation of OMG uptake occurs at 32 mM. At lower temperatures OMG uptake is markedly retarded, with a temperature coefficient (Q10) of 2.9. As indicated by efflux measurements, transport is symmetrical. Cytochalasin B at micromolar concentrations and phlorrhizin in millimolar concentrations are potent inhibitors of OMG uptake. Neutralization of the secreted insulin with antibodies does not alter OMG uptake kinetics. The glucose metabolism of RINm5F cells is much exaggerated compared with that of islet beta-cells. Nonetheless, when measured in parallel to uptake, transport exceeds by far the rate of metabolism at glucose concentrations above 3 mM. Measurements of intracellular D-glucose reveal a lower intracellular glucose concentration relative to the extracellular in RINm5F cells. This seems to be due to abnormalities in the subsequent steps of glucose metabolism, rather than to abnormalities in hexose uptake. The loss of glucose-induced insulin release in RINm5F cells cannot be explained by alterations in hexose transport.
源自大鼠胰岛素瘤的RINm5F细胞系保留了胰岛β细胞的许多分化功能。然而,在生理浓度范围内,它无法将葡萄糖识别为胰岛素促分泌剂。利用不可代谢的葡萄糖类似物3 - O - 甲基葡萄糖(OMG)的双标记技术,对该细胞系的葡萄糖转运动力学进行了研究。RINm5F细胞拥有一个高容量、低亲和力的被动葡萄糖转运系统。在37℃下,细胞外OMG浓度高达至少20 mM时,在2分钟内即可实现跨质膜的平衡。OMG摄取的半饱和浓度为32 mM。在较低温度下,OMG摄取明显延迟,温度系数(Q10)为2.9。如流出测量所示,转运是对称的。微摩尔浓度的细胞松弛素B和毫摩尔浓度的根皮苷是OMG摄取的有效抑制剂。用抗体中和分泌的胰岛素不会改变OMG摄取动力学。与胰岛β细胞相比,RINm5F细胞的葡萄糖代谢更为亢进。尽管如此,当与摄取同时测量时,在葡萄糖浓度高于3 mM时,转运速率远远超过代谢速率。细胞内D - 葡萄糖的测量显示,RINm5F细胞内的葡萄糖浓度相对于细胞外较低。这似乎是由于葡萄糖代谢后续步骤的异常,而非己糖摄取的异常。RINm5F细胞中葡萄糖诱导的胰岛素释放丧失不能用己糖转运的改变来解释。