Zhang Jing, Zhang Shili, Li Yue, Xiao Lijie, Yu Shen, Wu Xiang, Shen Shuang, Xu Hang
School of Medical Imaging, Xuzhou Medical University, Xuzhou, China.
Department of Otolaryngology, Affiliated Hospital of Xuzhou Medical University, Xuzhou, China.
Front Bioeng Biotechnol. 2024 Feb 7;12:1322008. doi: 10.3389/fbioe.2024.1322008. eCollection 2024.
Different head positions affect the responses of the vestibular semicircular canals (SCCs) to angular movement. Specific head positions can relieve vestibular disorders caused by excessive stimulating SCCs. In this study, we quantitatively explored responses of human SCCs using numerical simulations of fluid-structure interaction and vestibulo-ocular reflex (VOR) experiments under different forward-leaning angles of the head, including 0°, 10°, 20°, 30°, 40°, 50°, and 60°. It was found that the horizontal nystagmus slow-phase velocity and corresponding biomechanical responses of the cupula in horizontal SCC increased with the forward-leaning angles of the head, reached a maximum when the head was tilted 30° forward, and then gradually decreased. However, no obvious vertical or torsional nystagmus was observed in the VOR experiments. In the numerical model of bilateral SCCs, the biomechanical responses of the cupula in the left anterior SCC and the right anterior SCC showed the same trends; they decreased with the forward-leaning angles, reached a minimum at a 40° forward tilt of the head, and then gradually increased. Similarly, the biomechanical responses of the cupula in the left posterior SCC and in the right posterior SCC followed a same trend, decreasing with the forward-leaning angles, reaching a minimum at a 30° forward tilt of the head, and then gradually increasing. Additionally, the biomechanical responses of the cupula in both the anterior and posterior SCCs consistently remained lower than those observed in the horizontal SCCs across all measured head positions. The occurrence of these numerical results was attributed to the consistent maintenance of mutual symmetry in the bilateral SCCs with respect to the mid-sagittal plane containing the axis of rotation. This symmetry affected the distribution of endolymph pressure, resulting in biomechanical responses of the cupula in each pair of symmetrical SCCs exhibiting same tendencies under different forward-leaning angles of the head. These results provided a reliable numerical basis for future research to relieve vestibular diseases induced by spatial orientation of SCCs.
不同的头部位置会影响前庭半规管(SCCs)对角运动的反应。特定的头部位置可以缓解因过度刺激半规管而引起的前庭疾病。在本研究中,我们通过流固耦合数值模拟和前庭眼反射(VOR)实验,定量探究了在头部前倾角度分别为0°、10°、20°、30°、40°、50°和60°时人体半规管的反应。研究发现,水平半规管壶腹嵴的水平眼震慢相速度及相应生物力学反应随头部前倾角度增加而增大,在头部向前倾斜30°时达到最大值,随后逐渐减小。然而,在前庭眼反射实验中未观察到明显的垂直或扭转性眼震。在双侧半规管的数值模型中,左前半规管和右前半规管壶腹嵴的生物力学反应呈现相同趋势;它们随头部前倾角度减小,在头部向前倾斜40°时达到最小值,随后逐渐增大。同样,左后半规管和右后半规管壶腹嵴的生物力学反应也呈现相同趋势,随头部前倾角度减小,在头部向前倾斜30°时达到最小值,随后逐渐增大。此外,在所有测量的头部位置,前后半规管壶腹嵴的生物力学反应始终低于水平半规管。这些数值结果的出现归因于双侧半规管相对于包含旋转轴的正中矢状面始终保持相互对称。这种对称性影响了内淋巴压力的分布,导致在不同头部前倾角度下,每对对称半规管中壶腹嵴的生物力学反应呈现相同趋势。这些结果为未来缓解由半规管空间定向引起的前庭疾病的研究提供了可靠的数值依据。