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Heterologous expression and characterization of Plasmodium falciparum multidrug resistance protein 1.

机译:恶性疟原虫多药耐药蛋白1的异源表达与表征

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摘要

A yeast optimized synthetic Pfmdr1 gene has been designed and constructed, and has been successfully over expressed PfMDR1 in yeast. The protein in both full length and half transporter form is well localized to the yeast plasma membrane, and is fully functional as evidenced by ATPase activity. We have expressed various drug resistance related isoforms and have assessed antimalarial drug effects on them using ATPase activity measurements. In relation to other member of the B subfamily of ATP binding cassette transporters, PfMDR1 has similar pH, [ATP] and Mg ++ dependencies but surprisingly much higher Km and V max for ATP hydrolysis. Drug resistance related isoforms show either elevated (N86Y; Dd2, D1246Y) or reduced (S1034C, S1034C/N1042D/D1246Y; TM, 184F/1034C/1042D/1246Y; 7G8) basal ATPase activity and different patterns of drug stimulation or inhibition relative to wild-type. Verapamil (1--300 muM) which stimulates P-gp ATPase activity does not stimulate PfMDR1. To decipher the low ATPase activity of the 7G8 mutant isoform various C-terminal mutants were constructed. Analysis of the ATPase activity of the C-terminal mutants provide evidence that the S1034C mutation contributes to the low basal ATPase activity of the 7G8 PfMDR1 isoforms this effect is reduced in the presence of other mutations. Wild-type PfMDR1 has also been purified and reconstituted into proteoliposomes which have drug stimulatable ATPase activity. It is now believed that PfMDR1 does not cause chloroquine resistance (CQR) in and of itself, but modulates CQR caused by PfCRT mutations. To this end, a yeast model system harboring both PfMDR1 and PfCRT has been devised which can be used to provide valuable information on the combined roles of these two major anti-malarial drug transporters.
机译:已经设计和构建了酵母优化的合成Pfmdr1基因,并已成功地在酵母中过表达PfMDR1。全长和半转运蛋白形式的蛋白质都很好地定位在酵母的质膜上,并且具有完全的功能,如ATPase活性所证明的。我们已经表达了多种与耐药性有关的同工型,并使用ATPase活性测量方法评估了抗疟药对它们的作用。关于ATP结合盒转运蛋白B亚家族的其他成员,PfMDR1具有相似的pH,[ATP]和Mg ++依赖性,但出乎意料的是,ATP水解的Km和Vmax更高。与耐药性有关的同工型显示(ATP)升高(N86Y; Dd2,D1246Y)或降低(S1034C,S1034C / N1042D / D1246Y; TM,184F / 1034C / 1042D / 1246Y; 7G8)基础ATPase活性以及相对于药物刺激或抑制的不同模式野生型。维拉帕米(1--300μM)刺激P-gp ATPase活性不刺激PfMDR1。为了解释7G8突变体同工型的低ATP酶活性,构建了各种C末端突变体。 C端突变体的ATPase活性分析提供了证据,表明S1034C突变有助于7G8 PfMDR1亚型的低基础ATPase活性,在其他突变的存在下这种作用会降低。野生型PfMDR1也已被纯化并重组为具有可刺激药物ATPase活性的蛋白脂质体。现在认为PfMDR1本身不会引起氯喹抗性(CQR),但会调节由PfCRT突变引起的CQR。为此,已经设计了同时具有PfMDR1和PfCRT的酵母模型系统,该系统可用于提供有关这两种主要抗疟疾药物转运蛋白结合作用的有价值的信息。

著录项

  • 作者

    Amoah, Linda E.;

  • 作者单位

    Georgetown University Medical Center.;

  • 授予单位 Georgetown University Medical Center.;
  • 学科 Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 174 p.
  • 总页数 174
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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