首页> 美国卫生研究院文献>Biophysical Journal >Response of Equatorial X-Ray Reflections and Stiffness to Altered Sarcomere Length and Myofilament Lattice Spacing in Relaxed Skinned Cardiac Muscle
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Response of Equatorial X-Ray Reflections and Stiffness to Altered Sarcomere Length and Myofilament Lattice Spacing in Relaxed Skinned Cardiac Muscle

机译:赤道X射线反射和刚度对皮肤松弛型心肌中改变的Sarcomere长度和肌丝晶格间距的响应

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摘要

Low angle x-ray diffraction measurements of myofilament lattice spacing (D1,0) and equatorial reflection intensity ratio (I1,1/I1,0) were made in relaxed skinned cardiac trabeculae from rats. We tested the hypothesis that the degree of weak cross-bridge (Xbr) binding, which has been shown to be obligatory for force generation in skeletal muscle, is modulated by changes in lattice spacing in skinned cardiac muscle. Altered weak Xbr binding was detected both by changes in I1,1/I1,0 and by measurements of chord stiffness (chord K). Both measurements showed that, similar to skeletal muscle, the probability of weak Xbr binding at 170-mM ionic strength was significantly enhanced by lowering temperature to 5°C. The effects of lattice spacing on weak Xbr binding were therefore determined under these conditions. Changes in D1,0, I1,1/I1,0, and chord K by osmotic compression with dextran T500 were determined at sarcomere lengths (SL) of 2.0 and 2.35 μm. At each SL increasing [dextran] caused D1,0 to decrease and both I1,1/I1,0 and chord K to increase, indicating increased weak Xbr binding. The results suggest that in intact cardiac muscle increasing SL and decreasing lattice spacing could lead to increased force by increasing the probability of initial weak Xbr binding.
机译:在大鼠皮肤松弛的小梁中对肌丝晶格间距(D1,0)和赤道反射强度比(I1,1 / I1,0)进行低角度X射线衍射测量。我们测试了这样的假设:弱横桥(Xbr)结合的程度已被证明对于骨骼肌中的力产生是必不可少的,而这种改变是由皮肤上的心肌晶格间距的变化来调节的。通过改变I1,1 / I1,0和测量和弦刚度(和弦K),可以检测到弱的Xbr结合改变。两项测量均表明,与骨骼肌相似,通过将温度降低至5°C,在170mM离子强度下弱Xbr结合的可能性显着提高。因此,在这些条件下确定了晶格间距对弱Xbr结合的影响。在2.0和2.35μm的肌节长度(SL)下,通过右旋糖酐T500渗透压测定了D1,0,I1、1 / I1,0和和弦K的变化。在每个SL处,右旋糖酐的增加导致D1,0减少,而I1,1 / I1,0和弦K均增加,表明Xbr弱结合增加。结果表明,在完整的心肌中,增加SL和减小晶格间距可能会通过增加初始Xbr弱结合的可能性而导致力增加。

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