首页> 外文期刊>The Journal of biological chemistry >Structure, Dynamics, and Substrate-induced Conformational Changes of the Multidrug Transporter EmrE in Liposomes
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Structure, Dynamics, and Substrate-induced Conformational Changes of the Multidrug Transporter EmrE in Liposomes

机译:脂质体中多药传输素肌的结构,动力学和基材诱导的构象变化

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EmrE, a member of the small multidrug transporters superfamily, extrudes positively charged hydrophobic compounds out of Escherichia coli cytoplasm in exchange for inward movement of protons down their electrochemical gradient. Although its transport mechanism has been thoroughly characterized, the structural basis of energy coupling and the conformational cycle mediating transport have yet to be elucidated. In this study, EmrE structure in liposomes and the substrate-induced conformational changes were investigated by systematic spin labeling and EPR analysis. Spin label mobilities and accessibilities describe a highly dynamic ligand-free (apo) conformation. Dipolar coupling between spin labels across the dimer reveals at least two spin label populations arising from different packing interfaces of the EmrE dimer. One population is consistent with antiparallel arrangement of the monomers, although the EPR parameters suggest deviations from the crystal structure of substrate-bound EmrE. Resolving these discrepancies requires an unusual disposition of TM3 relative to the membrane-water interface and a kink in its backbone that enables bending of its C-terminal part. Binding of the substrate tetraphenylphosphonium changes the environment of spin labels and their proximity in three transmembrane helices. The underlying conformational transition involves repacking of TM1, tilting of TM2, and changes in the backbone configurations of TM3 and the adjacent loop connecting it to TM4. A dynamic apo conformation is necessary for the polyspecificity of EmrE allowing the binding of structurally diverse substrates. The flexibility of TM3 may play a critical role in movement of substrates across the membrane.
机译:EMRE是小型多药转运仪的成员超家族,挤出了大肠杆菌细胞质的带正电的疏水化合物,以交换质子向内移动其电化学梯度。虽然其运输机制已经完全表征,但尚未阐明能量耦合的结构基础和介导的运输的结构基础。在该研究中,通过系统的旋转标记和EPR分析研究了脂质体中的肌脂质和基质诱导的构象变化。旋转标签迁移率和可视化描述了一种高度动态的无配体(APO)构象。跨二聚体的旋转标签之间的偶极耦合显示了由EMRE二聚体的不同包装界面产生的至少两个旋转标签群。虽然EPR参数表明与基板结合EMRE的晶体结构的偏差,但是一群人与单体的反平行排列一致。解决这些差异需要相对于膜 - 水界面的不寻常配置TM3,并在其骨架中具有扭结,这使得其C末端部分能够弯曲。底物四苯基鏻的结合改变了旋转标签的环境及其在三个跨膜螺旋中的邻近。底层构象转变涉及重新包装TM1,TM2的倾斜,以及TM3的骨干配置和将其连接到TM4的相邻环路的变化。 EMRE的多特异性是动态APO构象必需的,允许在结构上不同的基板的结合。 TM3的灵活性可以在膜上的基板的运动中起着关键作用。

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