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Drug transport mechanism of P-glycoprotein monitored by single molecule fluorescence resonance energy transfer

机译:单分子荧光共振能量转移监测p-糖蛋白的药物转运机理

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In this work we monitor the catalytic mechanism of P-glycoprotein (Pgp) using single-molecule fluorescence resonance energy transfer (FRET). Pgp, a member of the ATP binding cassette family of transport proteins, is found in the plasma membrane of animal cells where it is involved in the ATP hydrolysis driven export of hydrophobic molecules. When expressed in the plasma membrane of cancer cells, the transport activity of Pgp can lead to the failure of chemotherapy by excluding the mostly hydrophobic drugs from the interior of the cell. Despite ongoing effort, the catalytic mechanism by which Pgp couples MgATP binding and hydrolysis to translocation of drug molecules across the lipid bilayer is poorly understood. Using site directed mutagenesis, we have introduced cysteine residues for fluorescence labeling into different regions of the nucleotide binding domains (NBDs) of Pgp. Double-labeled single Pgp molecules showed fluctuating FRET efficiencies during drug stimulated ATP hydrolysis suggesting that the NBDs undergo significant movements during catalysis. Duty cycle-optimized alternating laser excitation (DCO-ALEX) is applied to minimize FRET artifacts and to select the appropriate molecules. The data show that Pgp is a highly dynamic enzyme that appears to fluctuate between at least two major conformations during steady state turnover.
机译:在这项工作中,我们使用单分子荧光共振能量转移(FRET)监测p-糖蛋白(PGP)的催化机制。 PGP是ATP结合盒式盒系列的转运蛋白的成员,发现在动物细胞的血浆膜中,其中涉及ATP水解驱动的疏水分子的出口。当在癌细胞的血浆膜中表达时,PGP的运输活性可以通过从细胞内部排除最疏水的药物来导致化疗失败。尽管持续努力,PGP将MGATP结合和水解对脂质双层的药物分子易位的催化机制较差。使用现场定向诱变,我们已经引入了荧光标记的半胱氨酸残基分成PGP的核苷酸结合结构域(NBD)的不同区域。双标记的单PGP分子显示出药物刺激的ATP水解期间的姿态效率波动,表明NBD在催化过程中经历显着的运动。占用循环优化的交替激光激发(DCO-Alex)以最小化FRET伪像并选择合适的分子。数据显示PGP是一种高度动态的酶,似乎在稳态周转期间在至少两个重大构象之间波动。

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