Gueta R, Barlam D, Shneck R Z, Rousso I
Department of Structural Biology, Weizmann Institute of Science, Rehovot, Israel.
Biophys J. 2008 Jun;94(11):4570-6. doi: 10.1529/biophysj.107.125203. Epub 2008 Feb 29.
The exceptional performance of mammalian hearing is due to the cochlea's amplification of sound-induced mechanical stimuli. During acoustic stimulation, the vertical motion of the outer hair cells relative to the tectorial membrane (TM) is converted into the lateral motion of their stereocilia. The actual mode of this conversion, which represents a fundamental step in hearing, remains enigmatic, as it is unclear why the stereocilia are deflected when pressed against the TM, rather than penetrating it. In this study we show that deflection of the stereocilia is a direct outcome of the anisotropic material properties of the TM. Using force spectroscopy, we find that the vertical stiffness of the TM is significantly larger than its lateral stiffness. As a result, the TM is more resistant to the vertical motion of stereocilia than to their lateral motion, and so they are deflected laterally when pushed against the TM. Our findings are confirmed by finite element simulations of the mechanical interaction between the TM and stereocilia, which show that the vertical outer hair cells motion is converted into lateral stereocilia motion when the experimentally determined stiffness values are incorporated into the model. Our results thus show that the material properties of the TM play a central and previously unknown role in mammalian hearing.
哺乳动物听觉的卓越表现归因于耳蜗对声音诱发的机械刺激的放大作用。在声刺激过程中,外毛细胞相对于盖膜(TM)的垂直运动被转化为其静纤毛的侧向运动。这种转化的实际模式是听觉中的一个基本步骤,仍然是个谜,因为尚不清楚静纤毛在压向TM时为何会发生偏转,而不是穿透它。在本研究中,我们表明静纤毛的偏转是TM各向异性材料特性的直接结果。使用力谱学,我们发现TM的垂直刚度明显大于其侧向刚度。因此,TM对静纤毛垂直运动的抵抗力比对其侧向运动的抵抗力更强,所以当静纤毛压向TM时会发生侧向偏转。我们的发现通过TM与静纤毛之间机械相互作用的有限元模拟得到证实,模拟结果表明,当将实验测定的刚度值纳入模型时,外毛细胞的垂直运动被转化为静纤毛的侧向运动。因此,我们的结果表明,TM的材料特性在哺乳动物听觉中起着核心且此前未知的作用。