TY - JOUR
T1 - Mouse intact cardiac myocyte mechanics
T2 - Cross-bridge and titin-based stress in unactivated cells
AU - King, Nicholas M.P.
AU - Methawasin, Methajit
AU - Nedrud, Joshua
AU - Harrell, Nicholas
AU - Chung, Charles S.
AU - Helmes, Michiel
AU - Granzier, Henk
PY - 2011/1
Y1 - 2011/1
N2 - A carbon fiber-based cell attachment and force measurement system was used to measure the diastolic stress- sarcomere length (SL) relation of mouse intact cardiomyocytes, before and after the addition of actomyosin inhibitors (2,3-butanedione monoxime [BDM] or blebbistatin). Stress was measured during the diastolic interval of twitching myocytes that were stretched at 100% base length/second. Diastolic stress increased close to linear from 0 at SL 1.85 μm to 4.2 mN/mm2 at SL 2.1 μm. The actomyosin inhibitors BDM and blebbistatin significantly lowered diastolic stress by ?1.5 mN/mm2 (at SL 2.1 μm, ?30% of total), suggesting that during diastole actomyosin interaction is not fully switched off. To test this further, calcium sensitivity of skinned myocytes was studied under conditions that simulate diastole: 37°C, presence of Dextran T500 to compress the myofilament lattice to the physiological level, and [Ca2+] from below to above 100 nM. Mean active stress was significantly increased at [Ca2+] > 55 nM (pCa 7.25) and was ?0.7 mN/mm2 at 100 nM [Ca2+] (pCa 7.0) and ?1.3 mN/mm2 at 175 nM Ca2+ (pCa 6.75). Inhibiting active stress in intact cells attached to carbon fibers at their resting SL and stretching the cells while first measuring restoring stress (pushing outward) and then passive stress (pulling inward) made it possible to determine the passive cell's mechanical slack SL as ?1.95 μm and the restoring stiffness and passive stiffness of the cells around the slack SL each as ?17 mN/mm2/μm/SL. Comparison between the results of intact and skinned cells shows that titin is the main contributor to restoring stress and passive stress of intact cells, but that under physiological conditions, calcium sensitivity is sufficiently high for actomyosin interaction to contribute to diastolic stress. These findings are relevant for understanding diastolic function and for future studies of diastolic heart failure.
AB - A carbon fiber-based cell attachment and force measurement system was used to measure the diastolic stress- sarcomere length (SL) relation of mouse intact cardiomyocytes, before and after the addition of actomyosin inhibitors (2,3-butanedione monoxime [BDM] or blebbistatin). Stress was measured during the diastolic interval of twitching myocytes that were stretched at 100% base length/second. Diastolic stress increased close to linear from 0 at SL 1.85 μm to 4.2 mN/mm2 at SL 2.1 μm. The actomyosin inhibitors BDM and blebbistatin significantly lowered diastolic stress by ?1.5 mN/mm2 (at SL 2.1 μm, ?30% of total), suggesting that during diastole actomyosin interaction is not fully switched off. To test this further, calcium sensitivity of skinned myocytes was studied under conditions that simulate diastole: 37°C, presence of Dextran T500 to compress the myofilament lattice to the physiological level, and [Ca2+] from below to above 100 nM. Mean active stress was significantly increased at [Ca2+] > 55 nM (pCa 7.25) and was ?0.7 mN/mm2 at 100 nM [Ca2+] (pCa 7.0) and ?1.3 mN/mm2 at 175 nM Ca2+ (pCa 6.75). Inhibiting active stress in intact cells attached to carbon fibers at their resting SL and stretching the cells while first measuring restoring stress (pushing outward) and then passive stress (pulling inward) made it possible to determine the passive cell's mechanical slack SL as ?1.95 μm and the restoring stiffness and passive stiffness of the cells around the slack SL each as ?17 mN/mm2/μm/SL. Comparison between the results of intact and skinned cells shows that titin is the main contributor to restoring stress and passive stress of intact cells, but that under physiological conditions, calcium sensitivity is sufficiently high for actomyosin interaction to contribute to diastolic stress. These findings are relevant for understanding diastolic function and for future studies of diastolic heart failure.
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U2 - 10.1085/jgp.201010499
DO - 10.1085/jgp.201010499
M3 - Article
C2 - 21187335
AN - SCOPUS:78650890427
SN - 0022-1295
VL - 137
SP - 81
EP - 91
JO - Journal of General Physiology
JF - Journal of General Physiology
IS - 1
ER -