The chemo-mechanical coupling relation in the oscillatory contraction-relaxation cycles of insect fibrillar muscle.

R A Chaplain, B Frommelt, B Honka
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Abstract

The mechanical properties and the activity of the myofibrillar ATPase have been investigated at 21 degrees C on glycerinated back muscle from the water-bug Lethocerus colossicus. When the fibres were held under isometric conditions after stretching them by 0.5--4%, the ATPase required to maintain a given tension increases from 19 to 39 p-moles ATP split for each mg of tension developed as the Ca2+ level is increased from 10(-7) to up to 10(-5) M. The mechanical properties and the ATPase activity have been determined for Ca2+-activated fibres using sinusoidal frequencies of 1--30 HZ and oscillatory amplitudes of 0.5--6% peak-to-peak. In this way the R.M.S. velocity of sinusoidal movement was varied between 0.1-10 mm/sec. The rate of ATP splitting associated with oscillatory tension development, the dynamic tension cost, increases both with Ca2+ and with frequency of oscillation (at 1% peak-to-peak amplitude), becoming as high as four times the isometric value. The oscillatory power output which can be obtained is increased when the Ca2+ level is raised from 10(-7) to 10(-5) M or towards higher amplitudes of oscillation. The chemo-mechanical coupling efficiency increases proportionally with the R.M.S. velocity of muscle movement. In presence of 10(-5) M Ca2+ optimal efficiencies of 5.5--6.2 kcal work per mole ATP split are obtained at R.M.S. velocities of 1.3--2 muscle lengths/sec. The ability of the muscle fibres to perform osciillatory work at the higher frequencies was much reduced at lower Ca2+ levels of 10(-6) or 10(-7) M and the maximal efficiencies never exceeded 2.2 kcal/mole.

昆虫纤维肌收缩-松弛振荡周期中的化学-力学耦合关系。
在21℃条件下,研究了水虫臀肌甘油化后的肌纤维atp酶的力学性能和活性。当纤维拉伸0.5- 4%后保持在等长条件下时,当Ca2+水平从10(-7)增加到10(-5)m时,维持给定张力所需的ATP酶每mg张力从19到39 p-mol ATP分裂。使用1- 30 HZ的正弦频率和0.5- 6%的振荡幅度峰对峰确定了Ca2+激活纤维的机械性能和ATP酶活性。这样,正弦波运动的均方根速度在0.1-10毫米/秒之间变化。与振荡张力发展相关的ATP分裂速率,即动态张力成本,随着Ca2+和振荡频率(峰对峰振幅为1%)的增加而增加,高达等距值的四倍。当Ca2+水平从10(-7)提高到10(-5)M或向更高的振荡幅度时,可以获得的振荡功率输出增加。化学-机械耦合效率随肌肉运动的均方根速度成比例地增加。在10(-5)M Ca2+的存在下,在1.3- 2肌肉长度/秒的均方根速度下,获得了每摩尔ATP分裂5.5- 6.2千卡功的最佳效率。当Ca2+水平为10(-6)或10(-7)M时,肌纤维在较高频率下进行振荡工作的能力大大降低,最大效率从未超过2.2千卡/摩尔。
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