Tutulan-Cunita Andreea Cristina, Mikoshi Makoto, Mizunuma Masaki, Hirata Dai, Miyakawa Tokichi
Department of Molecular Biotechnology, Graduate School of Advanced Sciences of Matter, Hiroshima University, 1-3-1 Kagamiyama, Higashi-Hiroshima 739-8530, Japan.
Genes Cells. 2005 May;10(5):409-20. doi: 10.1111/j.1365-2443.2005.00847.x.
Multidrug resistance ABC transporter Pdr5p of Saccharomyces cerevisiae is particularly important due to its ability to export a wide range of unrelated substrates. To clarify its function, we generated Pdr5p mutants by random mutagenesis and screened for mutants with altered drug specificity in vivo by using 5 drug compounds. Nine point mutations that caused significant changes in drug specificity distributed throughout the length of Pdr5p, namely, in the extracellular, transmembrane or cytoplasmic regions of the transporter. We then investigated their effects upon drug resistance, using 36 chemically related or distinct substrates. From this study, overall geometry of the Pdr5p was suggested to contribute in acquiring the enormous range of drug specificity. Based on their ability to inhibit the growth of the mutant strains, the 36 tested drugs were classified into: drugs to which the mutants responded differently (Group 1), drugs to which all the mutants showed sensitivity (Group 2), and drugs to which all the mutants exhibited resistance (Group 3). The ability of the compounds to be partitioned to the plasma membrane seemed an important factor for recognition by Pdr5p.
酿酒酵母的多药耐药ABC转运蛋白Pdr5p因其能够转运多种不相关底物的能力而尤为重要。为阐明其功能,我们通过随机诱变产生了Pdr5p突变体,并使用5种药物化合物在体内筛选出药物特异性改变的突变体。导致药物特异性发生显著变化的9个点突变分布在Pdr5p的全长,即在转运蛋白的细胞外、跨膜或细胞质区域。然后,我们使用36种化学相关或不同的底物研究了它们对耐药性的影响。从这项研究中可以看出,Pdr5p的整体结构可能有助于获得广泛的药物特异性。根据它们抑制突变菌株生长的能力,将36种受试药物分为:突变体反应不同的药物(第1组)、所有突变体均敏感的药物(第2组)和所有突变体均耐药的药物(第3组)。化合物分配到质膜的能力似乎是Pdr5p识别的一个重要因素。