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布氏锥虫中己糖转运的特异性和动力学

Specificity and kinetics of hexose transport in Trypanosoma brucei.

作者信息

Eisenthal R, Game S, Holman G D

机构信息

Department of Biochemistry, University of Bath, U.K.

出版信息

Biochim Biophys Acta. 1989 Oct 2;985(1):81-9. doi: 10.1016/0005-2736(89)90107-7.

DOI:10.1016/0005-2736(89)90107-7
PMID:2790048
Abstract

Transport of 6-deoxy-D-glucose was studied in Trypanosoma brucei in order to characterise the kinetics of hexose transport in this organism using a nonphosphorylated sugar. Kinetic parameters for efflux and entry, measured using zero-trans and equilibrium exchange protocols, indicate that the transporter is probably kinetically symmetrical. Comparison of the kinetic constants of D-glucose metabolism with those for 6-deoxy-D-glucose transport shows that transport across the plasma membrane is likely to be the rate-limiting step of glucose utilisation. The transport rate is nevertheless very fast and 6-deoxy-D-glucose, at concentrations below Km, enters the cells with a half filling time of less than 2 s at 20 degrees C. Thus the high metabolic capacity of these organisms is matched by a high transport rate. The structural requirements for the trypanosome hexose transporter were explored by measuring inhibition constants (Ki) for a range of D-glucose analogues including fluoro and deoxy sugars as well as epimeric hexoses. The relative affinities shown by these analogues indicated H-bonds from the carrier to the C-3, C-4 and C-5 hydroxyl oxygens and from the C-1 and C-3 hydroxyl hydrogens to the binding site. Hydrophobic interactions are likely at the C-2 and C-6 regions of the glucose molecule. Spatial constraints appear to occur around C-4 indicating that the transport site at this position is not freely open to the external solution as is the case with the mammalian hexose transporter. However, the trypanosome transporter appears to accept D-fructose but the common mammalian (erythrocyte type) hexose transporter does not.

摘要

为了利用一种非磷酸化糖来表征布氏锥虫中己糖转运的动力学,对6-脱氧-D-葡萄糖的转运进行了研究。使用零转运和平衡交换方案测量的流出和进入的动力学参数表明,转运体在动力学上可能是对称的。将D-葡萄糖代谢的动力学常数与6-脱氧-D-葡萄糖转运的动力学常数进行比较表明,跨质膜的转运可能是葡萄糖利用的限速步骤。然而,转运速率非常快,在20℃下,浓度低于Km的6-脱氧-D-葡萄糖进入细胞的半填充时间不到2秒。因此,这些生物体的高代谢能力与高转运速率相匹配。通过测量一系列D-葡萄糖类似物(包括氟糖和脱氧糖以及差向异构己糖)的抑制常数(Ki),探索了锥虫己糖转运体的结构要求。这些类似物显示的相对亲和力表明,载体与C-3、C-4和C-5羟基氧之间以及C-1和C-3羟基氢与结合位点之间存在氢键。在葡萄糖分子的C-2和C-6区域可能存在疏水相互作用。在C-4周围似乎存在空间限制,这表明该位置的转运位点不像哺乳动物己糖转运体那样对外部溶液自由开放。然而,锥虫转运体似乎可以接受D-果糖,而常见的哺乳动物(红细胞型)己糖转运体则不能。

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