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有证据表明,人类下颌伸展反射会增加下颌骨对微小位移的抵抗力。

Evidence that the human jaw stretch reflex increases the resistance of the mandible to small displacements.

作者信息

Cooker H S, Larson C R, Luschei E S

出版信息

J Physiol. 1980 Nov;308:61-78. doi: 10.1113/jphysiol.1980.sp013462.

Abstract
  1. Small 'step' or sinusoidal displacements were imposed on the mandible while human subjects maintained an average biting force of 10 N. Phase-related changes in the force resisting sinusoidal displacement were used to determine the mechanical stiffness of the human mandibular system as a function of the frequency of stretching. 2. Jaw-muscle electromyographic (e.m.g.) responses to 'step' stretches were of 8 msec latency and generated a very substantial force response. Jaw-muscle e.m.g. responses having longer latency were not observed. 3. The mechanical stiffness of the human mandible was relatively constant as a function of the frequency of stretching, having a typical magnitude of about 15 N/mm (+/- 200 micrometers stretch) or 10 N/mm (+/- 1500 micrometers stretch) at mean biting forces of 10 N. The force resisting displacement was phase-advanced at all frequencies. 4. Modulation of jaw muscle electrical activity evoked by sinusoidal stretches increased in amplitude as a function of increasing stretch frequency. E.m.g. modulation was 60--100 degrees advanced at frequencies of 1--10 Hz, but the phase decreased at higher frequencies, becoming negative (lagging stretch) at frequencies of 30 Hz and above. These characteristics are consistent with the idea that the jaw stretch reflex is dependent on jaw muscle spindle afferent fibres exciting jaw-closing motoneurones by relatively direct (but not necessarily monosynaptic) connexions. 5. The relationship between jaw-muscle activity and voluntary fluctuations of isometric biting force suggests that human jaw muscles can be modelled as a second-order linear 'filter'. The corner frequency for human jaw muscle is about 3 Hz; thus it would appear to be considerably slower than jaw muscle of monkeys. 6. The reflex stiffness of the human mandible, estimated quantitatively on the assumption that human jaw muscle stiffness is similar to the intrinsic stiffness of the gastrocnemius of the cat, ranges between 5 and 9 N/mm at frequencies between 1 and 8 Hz. Since this reflex stiffness is about the same as muscle stiffness in this frequency range, we conclude that the stretch reflex of the human mandible contributes functionally to its postural stability. 7. Reflex stiffness appears to be greater in the monkey mandible relative to muscle stiffness than in the human mandible. The difference is argued to be a manifestation of the difference in jaw muscle contraction speed between the two species. 8. The fact that the mandibular stretch reflex appears to be stronger than the stretch reflex of the limbs of intact animals and humans is discussed in terms of the special anatomical and functional features of the mandible.
摘要
  1. 当人类受试者保持平均咬合力为10 N时,对下颌骨施加小的“阶跃”或正弦位移。利用抵抗正弦位移的力的相位相关变化来确定人类下颌系统的机械刚度作为拉伸频率的函数。2. 对“阶跃”拉伸的颌肌肌电图(e.m.g.)反应潜伏期为8毫秒,并产生非常显著的力反应。未观察到潜伏期更长的颌肌e.m.g.反应。3. 人类下颌骨的机械刚度作为拉伸频率的函数相对恒定,在平均咬合力为10 N时,典型幅度约为15 N/mm(±200微米拉伸)或10 N/mm(±1500微米拉伸)。抵抗位移的力在所有频率下均相位超前。4. 由正弦拉伸诱发的颌肌电活动调制幅度随拉伸频率增加而增大。在1 - 10 Hz频率下,e.m.g.调制超前60 - 100度,但在更高频率下相位减小,在30 Hz及以上频率变为负(滞后于拉伸)。这些特征与颌骨牵张反射依赖于颌肌梭传入纤维通过相对直接(但不一定是单突触)连接兴奋颌骨闭合运动神经元的观点一致。5. 颌肌活动与等长咬合力的自发波动之间的关系表明,人类颌肌可被建模为二阶线性“滤波器”。人类颌肌的转折频率约为3 Hz;因此它似乎比猴子的颌肌慢得多。6. 假设人类颌肌刚度与猫的腓肠肌固有刚度相似,在1至8 Hz频率下定量估计的人类下颌骨反射刚度在5至9 N/mm之间。由于该反射刚度在该频率范围内与肌肉刚度大致相同,我们得出结论,人类下颌骨的牵张反射在功能上有助于其姿势稳定性。7. 相对于肌肉刚度,猴子下颌骨的反射刚度似乎比人类下颌骨更大。这种差异被认为是两种物种颌肌收缩速度差异的一种表现。8. 根据下颌骨的特殊解剖和功能特征,讨论了下颌骨牵张反射似乎比完整动物和人类肢体的牵张反射更强这一事实。

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本文引用的文献

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Myotatic reflex: its input-output relation.肌牵张反射:其输入-输出关系。
Science. 1968 Feb 16;159(3816):743-5. doi: 10.1126/science.159.3816.743.
3
Reflex organization of cat masticatory muscles.猫咀嚼肌的反射组织
J Neurophysiol. 1968 Sep;31(5):695-708. doi: 10.1152/jn.1968.31.5.695.
9
Frequency analysis of stretch reflex and its main subsystems in triceps surae muscles of the cat.
J Neurophysiol. 1970 Nov;33(6):713-49. doi: 10.1152/jn.1970.33.6.713.

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