Department of Ear, Nose and Throat Diseases, Vilnius University Emergency Hospital, Siltnamiu 29, 04130, Vilnius, Lithuania.
Eur Arch Otorhinolaryngol. 2013 Jan;270(1):37-44. doi: 10.1007/s00405-011-1907-1. Epub 2012 Jan 1.
The aim of the study was to investigate the validity of the avian middle ear model for researching the tympanoplasty mechanics. We studied the morphological details, acoustic transmission and quasi-static behavior of the ostrich tympano-ossicular system. The stained specimens of the ostrich middle ear were examined under a light microscope. The sound transfer function and quasi-static performance of the ostrich middle ear were evaluated using laser Doppler vibrometry. The application of pressure to the tip of the extracolumella causes a buckling movement of the ossicle between the cartilaginous and bony parts. Histologically, the intracolumellar connection can be identified as a junction zone between bone and hyaline cartilage. Sound conduction through the human middle ear is less effective than it is through the ostrich middle ear. The greatest difference (35 dB) was observed in the low-frequency region. Because the extracolumella bends, the medial displacements of the eardrum were not fully transmitted to the footplate. The amplitude of the ostrich columella footplate quasi-static medial displacements significantly exceeded that of the human footplate in both intact and reconstructed middle ears. The ostrich middle ear is a suitable model for designing total ossicular replacement implants. The main protective mechanism in the ostrich middle ear under quasi-static stress is a buckling movement of the extracolumella. The total ossicular prostheses of the new generation should contain an elastic element that allows an adaptation to greater quasi-static eardrum movements.
本研究旨在探讨禽类中耳模型在中耳成形术力学研究中的有效性。我们研究了鸵鸟中耳的形态细节、声传输和准静态特性。通过光镜检查鸵鸟中耳的染色标本。使用激光多普勒测振仪评估鸵鸟中耳的声传递函数和准静态性能。向外柱尖端施加压力会导致软骨和骨部分之间的小骨发生屈曲运动。组织学上,内柱连接可以被识别为骨和透明软骨之间的连接区域。人类中耳的声传导效率不如鸵鸟中耳高。最大的差异(35dB)出现在低频区域。由于外柱弯曲,鼓膜的内侧位移不能完全传递到镫骨底板。在完整和重建的中耳中,鸵鸟中柱脚底板的准静态内侧位移幅度明显超过了人类脚底板。鸵鸟中耳是设计全听骨置换植入物的合适模型。在准静态应力下,鸵鸟中耳的主要保护机制是外柱的屈曲运动。新一代的全听骨假体应包含一个弹性元件,以适应更大的准静态鼓膜运动。