Why the study?
Does insulin improve K+ currents and cytoskeleton structure in ventricular cells from STZ-induced diabetic rats?
Does insulin improve K+ currents and cytoskeleton structure in ventricular cells from STZ-induced diabetic rats?
Type 1 diabetes impairs cytoskeleton function and structure in rat cardiomyocytes, which can be partially reversed by insulin, potentially impacting cardiac function.
Insulin may partially restore cytoskeletal and K+ current function in diabetic rat myocytes; hypothesis-generating for human type 1 diabetes electrophysiology.
A sustained K(+) current (I(ss)) is attenuated in ventricular cells from streptozotocin (STZ)-induced diabetic rats. The in vitro addition of insulin to isolated cells augments I(ss) in a process that is blocked by disrupting either actin microfilaments (with cytochalasin D) or microtubules (with colchicine). When these agents are added at progressively later times, the effect of insulin becomes evident in a time-dependent manner. I(ss) is also augmented by insulin in control cells in a cytoskeleton-dependent manner. However, in contrast to diabetic cells, cytoskeleton-dependent augmentation of I(ss) by insulin occurs at a considerably faster rate in control cells. Immunofluorescent labeling shows a reduced density of beta-tubulin in diabetic cells, particularly in perinuclear regions. In vitro insulin replacement or in vivo insulin injections given to STZ-treated rats enhances beta-tubulin density. These results suggest an impairment of cytoskeleton function and structure under insulin-deficient conditions, which may have implications for cardiac function.
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Shimoni et al. (2001) studied this question.
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