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Mutational Analysis of the Control Cable That Mediates Transmembrane Signaling in the Escherichia coli Serine Chemoreceptor

机译:介导大肠杆菌丝氨酸化学感受器中跨膜信号的控制电缆的突变分析。

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摘要

During transmembrane signaling by Escherichia coli Tsr, changes in ligand occupancy in the periplasmic serine-binding domain promote asymmetric motions in a four-helix transmembrane bundle. Piston displacements of the signaling TM2 helix in turn modulate the HAMP bundle on the cytoplasmic side of the membrane to control receptor output signals to the flagellar motors. A five-residue control cable joins TM2 to the HAMP AS1 helix and mediates conformational interactions between them. To explore control cable structural features important for signal transmission, we constructed and characterized all possible single amino acid replacements at the Tsr control cable residues. Only a few lesions abolished Tsr function, indicating that the chemical nature and size of the control cable side chains are not individually critical for signal control. Charged replacements at I214 mimicked the signaling consequences of attractant or repellent stimuli, most likely through aberrant structural interactions of the mutant side chains with the membrane interfacial environment. Prolines at residues 214 to 217 also caused signaling defects, suggesting that the control cable has helical character. However, proline did not disrupt function at G213, the first control cable residue, which might serve as a structural transition between the TM2 and AS1 helix registers. Hydrophobic amino acids at S217, the last control cable residue, produced attractant-mimic effects, most likely by contributing to packing interactions within the HAMP bundle. These results suggest a helix extension mechanism of Tsr transmembrane signaling in which TM2 piston motions influence HAMP stability by modulating the helicity of the control cable segment.
机译:在大肠杆菌Tsr跨膜信号传递过程中,周质丝氨酸结合域中配体占有率的变化会促进四螺旋跨膜束中的不对称运动。信号TM2螺旋的活塞位移进而调节了膜细胞质一侧的HAMP束,以控制受体输出信号至鞭毛马达。一根五残基控制电缆将TM2连接到HAMP AS1螺旋,并介导它们之间的构象相互作用。为了探索对于信号传输重要的控制电缆结构特征,我们在Tsr控制电缆残基处构建并表征了所有可能的单个氨基酸替代物。仅少数病变消除了Tsr功能,这表明控制电缆侧链的化学性质和大小对于信号控制而言并非至关重要。 I214的带电置换模拟了诱变或排斥刺激的信号转导结果,很可能是由于突变体侧链与膜界面环境的异常结构相互作用所致。残基214至217处的脯氨酸也引起信号缺陷,表明控制电缆具有螺旋特征。但是,脯氨酸并没有破坏第一个控制电缆残基G213的功能,这可能是TM2和AS1螺旋寄存器之间的结构转变。 S217(最后一个控制电缆残基)的疏水氨基酸产生了吸引子模拟效果,很可能是通过促进HAMP束内的堆积相互作用而产生的。这些结果表明Tsr跨膜信号的螺旋扩展机制,其中TM2活塞运动通过调节控制电缆段的螺旋度影响HAMP稳定性。

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