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2-脱氧葡萄糖在Caco-2细胞中的转运与代谢。

2-Deoxyglucose transport and metabolism in Caco-2 cells.

作者信息

Bissonnette P, Gagné H, Blais A, Berteloot A

机构信息

Department of Physiology, Faculty of Medicine, University of Montreal, Quebec, Canada.

出版信息

Am J Physiol. 1996 Jan;270(1 Pt 1):G153-62. doi: 10.1152/ajpgi.1996.270.1.G153.

Abstract

We investigated the kinetics of 2-deoxy-D-glucose (DG) uptake and metabolism in Caco-2 cells, because this human cell line may represent a valid enterocyte model to assess the dynamics between sugar transport and metabolism and hence to obtain insights into the factors involved during the intracellular phase of glucose absorption. When studied in 14-day-old monolayers, DG uptake is characterized by a lag phase with a time course matching the decrease in intracellular glucose concentrations, and no intracellular glucose 6-phosphate (G-6-P) can be detected at any time during incubation. After 1 h of preincubation of Caco-2 cells in substrate-free transport medium, however, steady-state DG uptake matches 2-deoxy-D-glucose 6-phosphate (DG-6-P) accumulation with undetectable levels of free DG. This complex behavior in DG uptake is linked to high hexokinase activity in Caco-2 cells, and the enzyme has a Michaelis-Menten constant K(m) for glucose that is typical of hexokinase type II (0.120 +/- 0.003 mM). Caco-2 cells also contain low-level glucose-6-phosphatase (G-6-Pase) activity, which may account for the leveling off in DG uptake, and the kinetics of DG transport may be attributed to the existence of a predominant pathway with a K(m) of 1.7 +/- 0.2 mM. Finally, analysis of the growth-related expression of DG transport and hexokinase activity clearly shows that DG uptake is lowest in postconfluent cells when hexokinase is at its highest levels. We thus conclude that 1) transport is the rate-limiting step during DG accumulation, 2) G-6-P is a potent inhibitor of hexokinase activity compared with DG-6-P, so that enzyme inhibition may have physiological relevance in diverting glucose from metabolism during its active reabsorption in the small intestine, and 3) low levels of G-6-Pase activity seem to exclude this enzyme, and hence the endoplasmic reticulum, as important factors during the intracellular phase of glucose transport.

摘要

我们研究了2-脱氧-D-葡萄糖(DG)在Caco-2细胞中的摄取和代谢动力学,因为这种人类细胞系可能是一个有效的肠上皮细胞模型,可用于评估糖转运与代谢之间的动态关系,从而深入了解葡萄糖吸收细胞内阶段所涉及的因素。在14天大的单层细胞中进行研究时,DG摄取的特征是存在一个延迟期,其时程与细胞内葡萄糖浓度的降低相匹配,并且在孵育期间的任何时间都检测不到细胞内葡萄糖6-磷酸(G-6-P)。然而,在无底物转运培养基中对Caco-2细胞进行1小时预孵育后,稳态DG摄取与2-脱氧-D-葡萄糖6-磷酸(DG-6-P)积累相匹配,而游离DG水平不可检测。DG摄取中的这种复杂行为与Caco-2细胞中高己糖激酶活性有关,并且该酶对葡萄糖的米氏常数K(m)是典型的II型己糖激酶(0.120±0.003 mM)。Caco-2细胞还含有低水平的葡萄糖-6-磷酸酶(G-6-Pase)活性,这可能解释了DG摄取的平稳状态,并且DG转运的动力学可能归因于存在一条主要途径,其K(m)为1.7±0.2 mM。最后,对DG转运和己糖激酶活性的生长相关表达分析清楚地表明,当己糖激酶处于最高水平时,汇合后细胞中的DG摄取最低。因此,我们得出结论:1)转运是DG积累过程中的限速步骤;2)与DG-6-P相比,G-6-P是己糖激酶活性的有效抑制剂,因此在小肠中葡萄糖主动重吸收期间,酶抑制可能在将葡萄糖从代谢中转移方面具有生理相关性;3)低水平的G-6-Pase活性似乎排除了该酶,从而也排除了内质网作为葡萄糖转运细胞内阶段的重要因素。

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