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关于 prestin 电荷运动在膜片上的频率响应。

On the frequency response of prestin charge movement in membrane patches.

机构信息

Surgery (Otolaryngology), Neuroscience, and Cellular and Molecular Physiology, Yale University School of Medicine, New Haven, Connecticut.

Surgery (Otolaryngology), Neuroscience, and Cellular and Molecular Physiology, Yale University School of Medicine, New Haven, Connecticut.

出版信息

Biophys J. 2022 Jun 21;121(12):2371-2379. doi: 10.1016/j.bpj.2022.05.020. Epub 2022 May 20.

Abstract

Outer hair cell (OHC) nonlinear membrane capacitance derives from voltage-dependent sensor charge movements within the membrane protein prestin (SLC26a5) that drive OHC electromotility. The ability of the protein to influence hearing depends on its reaction to membrane receptor potentials across auditory frequency. Estimates of prestin's frequency response have been evaluated by several groups out to tens of kHz in voltage-clamped macro-patches of OHC membrane. The response is a power function of frequency that is down 40 dB at 77 kHz. Despite these observations, concerns remain that the macro-patch approach is flawed due to mechanical constraints of pipette solution column load or patch size itself. In the absence of these influences, prestin's frequency response is posited by some to be ultrasonic in nature. Here we evaluate the influence of these putative confounding factors on prestin's frequency response. We show that neither pipette column height nor negative or positive pipette pressure substantially influence total sensor charge frequency response. Additionally, patch surface area has negligible influence. We conclude that the speed of voltage-driven conformational changes in prestin within the plasma membrane is accurately assessed with the macro-patch technique, permitting investigations of membrane characteristics that can substantially alter prestin's performance bandwidth. We illustrate significant alterations in bandwidth by perturbation of membrane fluidity and chloride anion concentration. Finally, we speculate that OHC membrane characteristics may differ along the tonotopic axis of the cochlea to tune nonlinear membrane capacitance frequency cutoffs.

摘要

外毛细胞 (OHC) 非线性膜电容源自膜蛋白 prestin(SLC26a5)中的电压依赖性传感器电荷运动,这些电荷运动驱动 OHC 运动。该蛋白影响听力的能力取决于其对听觉频率范围内膜受体电位的反应。已经有几个研究小组通过对 OHC 膜的电压钳制宏斑片进行评估,估计了 prestin 的频率响应,其响应范围可达数十千赫兹。该响应是频率的幂函数,在 77 kHz 时下降 40 dB。尽管有这些观察结果,但仍有人担心宏斑片方法存在缺陷,因为移液器溶液柱负载或斑片大小本身的机械限制。在没有这些影响的情况下,有人认为 prestin 的频率响应是超声性质的。在这里,我们评估了这些潜在混杂因素对 prestin 频率响应的影响。我们表明,无论是移液器柱的高度还是移液器的负压或正压都不会对总传感器电荷频率响应产生实质性影响。此外,斑片表面积的影响可以忽略不计。我们得出结论,使用宏斑片技术可以准确评估 prestin 在质膜中电压驱动构象变化的速度,从而可以研究会极大改变 prestin 性能带宽的膜特性。我们通过干扰膜流动性和氯离子浓度来证明带宽的显著变化。最后,我们推测 OHC 膜特性可能沿着耳蜗的音调轴有所不同,以调整非线性膜电容频率截止值。

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On the frequency response of prestin charge movement in membrane patches.关于 prestin 电荷运动在膜片上的频率响应。
Biophys J. 2022 Jun 21;121(12):2371-2379. doi: 10.1016/j.bpj.2022.05.020. Epub 2022 May 20.

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