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Effects of sustained length-dependent activation on in situ cross-bridge dynamics in rat hearts

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BIOPHYSICAL JOURNAL
卷 93, 期 12, 页码 4319-4329

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BIOPHYSICAL SOC
DOI: 10.1529/biophysj.107.111740

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The cellular basis of the length-dependent increases in contractile force in the beating heart has remained unclear. Our aim was to investigate whether length-dependent mediated increases in contractile force are correlated with myosin head proximity to actin. laments, and presumably the number of cross-bridges activated during a contraction. We therefore employed x-ray diffraction analyses of beat-to-beat contractions in spontaneously beating rat hearts under open-chest conditions simultaneous with recordings of left ventricle (LV) pressure-volume. Regional x-ray diffraction patterns were recorded from the anterior LV free wall under steady-state contractions and during acute volume loading (intravenous lactate Ringers infusion at 60 ml/h, <5 min duration) to determine the change in intensity ratio (I-1,I-0/I-1,I-1) and myosin inter. lament spacing (d(1,0)). We found no significant change in end-diastolic (ED) intensity ratio, indicating that the proportion of myosin heads in proximity to actin was unchanged by fiber stretching. Intensity ratio decreased significantly more during the isovolumetric contraction phase during volume loading than under baseline contractions. A significant systolic increase in myosin head proximity to actin. laments correlated with the maximum rate of pressure increase. Hence, a reduction in inter. lament spacing at end-diastole (similar to 0.5 nm) during stretch increased the proportion of cross-bridges activated. Furthermore, our recordings suggest that d(1,0) expansion was inversely related to LV volume but was restricted during contraction and sarcomere shortening to values smaller than the maximum during isovolumetric relaxation. Since ventricular volume, and presumably sarcomere length, was found to be directly related to inter. lament spacing, these findings support a role for inter. lament spacing in modulating cross-bridge formation and force developed before shortening.

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