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鸣禽鸣管肌肉的纤维结构和鸣唱激活率在欧洲椋鸟中没有偏向性。

Fibre architecture and song activation rates of syringeal muscles are not lateralized in the European starling.

机构信息

Department of Zoology, Weber State University, Ogden, UT 84408-2505, USA.

出版信息

J Exp Biol. 2010 Apr;213(Pt 7):1069-78. doi: 10.1242/jeb.038885.

Abstract

The songbird vocal organ, the syrinx, is composed of two sound generators, which are independently controlled by sets of two extrinsic and four intrinsic muscles. These muscles rank among the fastest vertebrate muscles, but the molecular and morphological foundations of this rapid physiological performance are unknown. Here we show that the four intrinsic muscles in the syrinx of male European starlings (Sturnus vulgaris) are composed of fast oxidative and superfast fibres. Dorsal and ventral tracheobronchialis muscles contain slightly more superfast fibres relative to the number of fast oxidative fibres than dorsal and ventral syringealis muscles. This morphological difference is not reflected in the highest, burst-like activation rate of the two muscle groups during song as assessed with electromyographic recordings. No difference in fibre type ratio was found between the corresponding muscles of the left and right sound generators. Airflow and electromyographic measurements during song indicate that maximal activation rate and speed of airflow regulation do not differ between the two sound sources. Whereas the potential for high-speed muscular control exists on both sides, the two sound generators are used differentially for modulation of acoustic parameters. These results show that large numbers of superfast fibre types are present in intrinsic syringeal muscles of a songbird, providing further confirmation of rapid contraction kinetics. However, syringeal muscles are composed of two fibre types which raises questions about the neuromuscular control of this heterogeneous muscle architecture.

摘要

鸣禽的发声器官鸣管由两个发声器组成,它们分别由两组外在和四组内在肌肉控制。这些肌肉属于最快的脊椎动物肌肉之列,但这种快速生理性能的分子和形态基础尚不清楚。在这里,我们表明雄性欧洲椋鸟(Sturnus vulgaris)鸣管中的四组内在肌肉由快速氧化纤维和超快速纤维组成。与快速氧化纤维相比,背侧和腹侧气管支气管肌含有略多的超快速纤维,而背侧和腹侧鸣管肌则没有。这种形态差异并没有反映在通过肌电图记录评估鸣唱期间两组肌肉的最高、突发样激活率上。左右发声器相应肌肉之间的纤维类型比例没有差异。在鸣唱过程中的气流和肌电图测量表明,两个声源之间的最大激活率和气流调节速度没有差异。尽管两侧都存在高速肌肉控制的潜力,但两个发声器在声学参数的调制中被差异化使用。这些结果表明,鸣禽鸣管的内在肌肉中存在大量的超快速纤维类型,进一步证实了快速收缩动力学。然而,鸣管肌肉由两种纤维类型组成,这引发了对这种异质肌肉结构的神经肌肉控制的质疑。

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