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Identification of a Key Residue Determining Substrate Affinity in the Yeast Glucose Transporter Hxt7

机译:确定酵母糖转运蛋白Hxt7中底物亲和力的关键残基的鉴定。

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摘要

We previously identified Asn331 in transmembrane segment 7 (TM7) as a key residue determining substrate affinity in Hxt2, a moderately high-affinity facilitative glucose transporter of Saccharomyces cerevisiae. To gain further insight into the structural basis of substrate recognition by yeast glucose transporters, we have now studied Hxt7, whose affinity for glucose is the highest among the major hexose transporters. The functional role of Asp340 in Hxt7, the residue corresponding to Asn331 of Hxt2, was examined by replacing it with each of the other 19 amino acids. Such replacement of Asp340 generated transporters with various affinities for glucose, with the affinity of the Cys340 mutant surpassing that of the wild-type Hxt7. To examine the structural role of Asp340 in the substrate translocation pathway, we performed cysteine-scanning mutagenesis of the 21 residues in TM7 of a functional Cys-less Hxt7 mutant in conjunction with exposure to the hydrophilic sulfhydryl reagent p-chloromercuribenzenesulfonate (pCMBS). The transport activity of the D340C mutant of Cys-less Hxt7, in which Asp340 is replaced with Cys, was completely inhibited by pCMBS, indicating that Asp340 is located in a water-accessible position. This D340C mutant showed a sensitivity to pCMBS that was ∼70 times that of the wild-type Hxt7, and it was protected from pCMBS inhibition by the substrates d-glucose and 2-deoxy-d-glucose but not by l-glucose. These results indicate that Asp340 is situated at or close to a substrate recognition site and is a key residue determining high-affinity glucose transport by Hxt7, supporting the notion that yeast glucose transporters share a common mechanism for substrate recognition.
机译:我们先前在跨膜区段7(TM7)中确定了Asn 331 作为确定Hxt2(一种中等程度高亲和力酿酒酵母葡萄糖转运蛋白)中底物亲和力的关键残基。为了进一步了解酵母葡萄糖转运蛋白识别底物的结构基础,我们现在研究了Hxt7,它对葡萄糖的亲和力在主要的己糖转运蛋白中最高。通过用其他19个氨基酸分别替换Asp 340 在Hxt7中的功能,该残基对应于Hxt2的Asn 331 。这种对Asp 340 的取代产生了具有各种对葡萄糖亲和力的转运蛋白,而Cys 340 突变体的亲和力超过了野生型Hxt7。为了检查Asp 340 在底物易位途径中的结构作用,我们对半胱氨酸扫描诱变了功能性无半胱氨酸的Hxt7突变体TM7中的21个残基,并进行了亲水性巯基试剂的暴露对氯汞苯磺酸盐(pCMBS)。 pCMBS完全抑制了Cys-less Hxt7的D340C突变体的运输活性,其中Asp 340 被Cys取代,表明Asp 340 位于一个容易接近水的位置。该D340C突变体对pCMBS的敏感性约为野生型Hxt7的70倍,并且受底物d-葡萄糖和2-deoxy-d-葡萄糖的保护,免受pCMBS的抑制,但不受I-葡萄糖的保护。这些结果表明,Asp 340 位于或接近底物识别位点,是决定Hxt7进行高亲和力葡萄糖转运的关键残基,支持了酵母葡萄糖转运蛋白具有共同的底物机制的观点。承认。

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