Kent R L, Mann D L, Urabe Y, Hisano R, Hewett K W, Loughnane M, Cooper G
Veterans Administration Medical Center, Charleston, South Carolina.
Am J Physiol. 1989 Nov;257(5 Pt 2):H1717-27. doi: 10.1152/ajpheart.1989.257.5.H1717.
The classical force-velocity relationship is a standard measure of the contractile function of isolated linear cardiac muscle, but no such simple index of contractile function exists for the isolated mammalian cardiocyte. Therefore, this study established an analogous viscosity-velocity relationship for the characterization of cardiocyte contractile function. For this purpose, force was imposed on unfettered adult feline cardiocytes as a series of defined viscous loads, which provided resistance to cardiocyte shape changes during contraction. This was done by increasing the viscosity of the Krebs superfusate (37 degrees C, pH 7.4) in graded, reproducible steps from 1 to 500 centipoise by the addition of methylcellulose. Sarcomere motion within each contracting cardiocyte was measured as movement of the diffraction pattern cast onto a photodiode array by a laser beam passing through the cell. Both the rate and extent of sarcomere shortening varied inversely with increasing viscosity, whereas neither resting sarcomere length nor osmolarity was altered. Further, increased inotropism effected by paired-pulse stimulation of cardiocytes caused an upward shift of the entire viscosity-velocity relationship. Thus the cardiocyte viscosity-velocity relationship is analogous in form to the force-velocity relationship of isolated linear cardiac muscle and provides a simple reproducible method for characterizing the contractile performance of relatively large numbers of cardiocytes isolated from a single specimen of myocardium.
经典的力-速度关系是孤立线性心肌收缩功能的标准测量指标,但对于孤立的哺乳动物心肌细胞而言,不存在这样简单的收缩功能指标。因此,本研究建立了一种类似的黏度-速度关系来表征心肌细胞的收缩功能。为此,对不受束缚的成年猫心肌细胞施加一系列定义好的黏性负荷作为力,这些负荷在心肌细胞收缩时对其形状变化产生阻力。这是通过添加甲基纤维素,将克雷布斯灌流液(37摄氏度,pH 7.4)的黏度从1厘泊逐步、可重复地提高到500厘泊来实现的。每个收缩的心肌细胞内肌节的运动,通过激光束穿过细胞投射到光电二极管阵列上的衍射图案的移动来测量。肌节缩短的速率和程度均随黏度增加呈反比变化,而静息肌节长度和渗透压均未改变。此外,对心肌细胞进行成对脉冲刺激所产生的变力作用增强,导致整个黏度-速度关系向上移动。因此,心肌细胞的黏度-速度关系在形式上类似于孤立线性心肌的力-速度关系,并为表征从单个心肌标本中分离出的相对大量心肌细胞的收缩性能提供了一种简单可重复的方法。