Key result
Chronic ROCK inhibition with fasudil attenuated left ventricular systolic dysfunction and preserved diastolic myosin mass transfer in a rat model of early type-1 diabetes.
Why the study?
Does fasudil improve left ventricular contractile dysfunction and cross-bridge dynamics in a rat model of early type-1 diabetes?
Does fasudil improve left ventricular contractile dysfunction and cross-bridge dynamics in a rat model of early type-1 diabetes?
Chronic ROCK inhibition with fasudil attenuates left ventricular contractile dysfunction and improves actin-myosin cross-bridge dynamics in a rat model of early diabetic cardiomyopathy.
Supports ROCK inhibition as a target in early diabetic cardiomyopathy; hypothesis-generating and requires human validation.
BACKGROUND: Impaired actin-myosin cross-bridge (CB) dynamics correlate with impaired left ventricular (LV) function in early diabetic cardiomyopathy (DCM). Elevated expression and activity of Rho kinase (ROCK) contributes to the development of DCM. ROCK targets several sarcomeric proteins including myosin light chain 2, myosin binding protein-C (MyBP-C), troponin I (TnI) and troponin T that all have important roles in regulating CB dynamics and contractility of the myocardium. Our aim was to examine if chronic ROCK inhibition prevents impaired CB dynamics and LV dysfunction in a rat model of early diabetes, and whether these changes are associated with changes in myofilament phosphorylation state. METHODS: Seven days post-diabetes induction (65 mg/kg ip, streptozotocin), diabetic rats received the ROCK inhibitor, fasudil (10 mg/kg/day ip) or vehicle for 14 days. Rats underwent cardiac catheterization to assess LV function simultaneous with X-ray diffraction using synchrotron radiation to assess in situ CB dynamics. RESULTS: Compared to controls, diabetic rats developed mild systolic and diastolic dysfunction, which was attenuated by fasudil. End-diastolic and systolic myosin proximity to actin filaments were significantly reduced in diabetic rats (P < 0.05). In all rats there was an inverse correlation between ROCK1 expression and the extension of myosin CB in diastole, with the lowest ROCK expression in control and fasudil-treated diabetic rats. In diabetic and fasudil-treated diabetic rats changes in relative phosphorylation of TnI and MyBP-C were not significant from controls. CONCLUSIONS: Our results demonstrate a clear role for ROCK in the development of LV dysfunction and impaired CB dynamics in early DCM.
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Waddingham et al. (2015) studied Early type-1 diabetes and diabetic cardiomyopathy. Fasudil vs. Vehicle (saline) was evaluated on Left ventricular contractile dysfunction and actin-myosin cross-bridge dynamics. Chronic ROCK inhibition with fasudil attenuated left ventricular systolic dysfunction and preserved diastolic myosin mass transfer in a rat model of early type-1 diabetes.
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