INFRAGLOTTIC ASPECT OF CANINE VOCAL FOLD VIBRATION - EFFECT OF INCREASE OF MEAN AIR-FLOW RATE AND LENGTHENING OF VOCAL FOLD

被引:9
作者
YUMOTO, E
KADOTA, Y
KUROKAWA, H
机构
[1] Department of Otolaryngology, School of Medicine, Ehime University, Ehime
关键词
VOCAL FOLD VIBRATION; MUCOSAL UPHEAVAL; CHANGES IN VOCAL FOLD LENGTH; CHANGES IN MEAN AIR-FLOW;
D O I
10.1016/S0892-1997(05)80119-5
中图分类号
R36 [病理学]; R76 [耳鼻咽喉科学];
学科分类号
100104 ; 100213 ;
摘要
The mucosal upheaval (MU), where the mucosal wave starts and propagates upward, appears only when the vocal fold vibrates. The location of the MU histologically and the effect of changes in mean air flow rate (MFR) and vocal fold length on occurrence of the MU were studied in twelve excised canine larynges. The lower surface of the vocal fold was marked to serve as a landmark for subsequent study. Cricothyroid approximation was performed to lengthen the vocal fold. After taking high-speed pictures or recording stroboscopic images from the tracheal side, a small cut wound was made at the mark. This wound served to compare the position of the MU with the histologically identified location of the mark. The larynx was then sectioned in the frontal plane. Before lengthening the vocal fold, the MU occurred on the area where the lamina propria became thinner and where the muscular layer neared the epithelial layer. After lengthening the vocal fold, the MU actually shifted medially compared with its original position. The subglottic area surrounded by the bilateral MUs became longer and thinner. Whether or not complete glottal closure during a vibratory cycle was achieved did not alter these findings. In contrast, with a fixed vocal fold length the MU appeared more laterally as MFR increased, but, based on the relation with the mark, its location on the vocal fold did not change from its original position before increase of MFR.
引用
收藏
页码:311 / 318
页数:8
相关论文
共 13 条
[1]  
Farnsworth D.W., High-speed motion picture of the human vocal cords, Bell Lab Record, 18, pp. 203-208, (1940)
[2]  
Timcke R., von Leden H., Moore G.P., Laryngeal vibration: measurements of the glottic wave. Part 1. The normal vibratory cycle, Arch Otolaryngol Head Neck Surg, 68, pp. 1-19, (1958)
[3]  
Moore G.P., White F.D., von Leden H., Ultra-high speed photography in laryngeal physiology, J Speech Hear Res, 27, pp. 165-171, (1962)
[4]  
Matsushita H., Vocal cord vibration of excised larynges. A study with ultra-high speed cinematography, Otologia Fukuoka, 15, pp. 127-132, (1969)
[5]  
Matsushita H., The vibratory mode of the vocal folds in the excised larynx, Folia Phoniatr, 27, pp. 7-18, (1975)
[6]  
Yumoto E., Okamoto K., Kurokawa H., Okamura H., Vibratory patterns of normal and microscopically operated larynges: observation of lower surface of vocal fold in dogs, Acta Otolaryngol, 108, pp. 298-304, (1989)
[7]  
Yumoto E., Kurokawa H., Okamura H., Vocal fold vibration of the canine larynx: observation from an infraglottic view, J Voice, 5, pp. 299-303, (1991)
[8]  
Isshiki N., Recent advances in phonosurgery, Folia Phoniatr, 32, pp. 119-154, (1980)
[9]  
Saito S., Phonosurgery, Otologia Fukuoka, 23, pp. 171-384, (1977)
[10]  
Baer T., Investigation of the phonatory mechanism, Proceedings of the Conference on the Assessment of Vocal Pathology, pp. 38-47, (1981)