相关实验视频
Updated: Jan 13, 2026

Coordinate Mapping of Hyolaryngeal Mechanics in Swallowing
Published on: May 6, 2014
灵长类动物的吞是由上腺肌肉的旋转和收缩驱动的
Courtney P Orsbon1,2, Nicholas J Gidmark2,3, Callum F Ross2
1Department of Radiology, University of Washington Medicine, Seattle, Washington, USA.
的吞生物力学揭示了上状肌肉通过液压机制驱动状肌肉运动. 肌肉旋转和几何是有效的舌头底部收缩的关键,影响灵长类动物和人类吞进化.
科学领域:
- 生物力学 生物力学
- 灵长类动物的解剖学
- 吞生理学 吞生理学
背景情况:
- 哺乳动物的吞生物力学,特别是舌骨运动的作用,仍然不完全理解.
- 的舌头底部收缩的液压机制假设,涉及状腺的升高和延伸,需要实验验证.
研究的目的:
- 实验性地研究类灵长类动物在吞过程中负责状腺升高和伸展的肌肉骨机制.
- 阐明suprahyoid和lingual肌肉在驱动hyoid动力学中的作用.
主要方法:
- 整合移动全景图的X射线重建 (XROMM) 以对下,头骨和下舌结构进行详细的动力学分析.
- 同时电动肌图 (EMG) 上腺和舌肌,以评估吞过程中的肌肉激活模式.
主要成果:
- 甲状腺上部肌肉在吞和舌头底部收缩过程中表现出旋转.
- 状腺的升高和延伸主要由后部髓状腺和消化腺肌肉的同心激活和旋转提供动力.
- 在最初的状体运动后,状体肌肉表现出同心激活,而状体肌肉在吞序列的早期是活跃的.
结论:
- 和语言肌肉的形态,功能和协调作用对于和可能是人类的有效吞至关重要.
- 由于肌肉旋转,灵长类的口舌肌功能受到状体位和肌肉几何学的显著影响,这对吞的进化研究有意义.
- 建筑轮比率和滑轮系统优化状体升高速度和伸展力,这对于舌头底部收缩的液压机制至关重要.
更多相关视频
08:32Adapting Human Videofluoroscopic Swallow Study Methods to Detect and Characterize Dysphagia in Murine Disease Models
Published on: March 1, 2015
07:22Minimally Invasive Murine Laryngoscopy for Close-Up Imaging of Laryngeal Motion During Breathing and Swallowing
Published on: December 1, 2023
相关概念视频
Deglutition
Swallowing can be divided into three stages: the voluntary phase, the pharyngeal phase, and the esophageal phase. Although the...
The Hyoid Bone
Muscles of the Anterior Neck
Physiology of the Gastrointestinal System I: Ingestion and Propulsion
Cranial Nerves: Types Part II
Facial Nerve (Cranial Nerve VII)
Cranial nerve VII, or the facial nerve,...
Muscles that Move the Head
The bilateral sternocleidomastoid, or SCM, and the suprahyoid and infrahyoid muscles are significant head flexors. The SCM muscles originate at the sternum and clavicle and attach to the mastoid process of the temporal bone. The SCM contracts bilaterally to bend the head forward, whereas...