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July 1, 2000AJP Heart and Circulatory Physiology64 citations

Altered cardiac excitation-contraction coupling in ventricular myocytes from spontaneously diabetic BB rats

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JRJun RenABAnn M. Bode

Structured PICO

Does genetic predisposition to diabetes alter cardiac excitation-contraction coupling in ventricular myocytes from BB rats?

P
Population
Ventricular myocytes isolated from 1-yr-old BioBreed (BB) spontaneously diabetic-prone (BB/DP) rats
I
Intervention
Genetic predisposition to diabetes (BB/DP rats)
C
Comparator
Myocytes from diabetic-resistant littermates (BB/DR)
O
Outcome
Mechanical properties (peak shortening, time-to-peak shortening, time-to-90% relengthening, maximal velocities of shortening and relengthening) and intracellular Ca2+ handlingsurrogate

Genetically predisposed diabetes in BB rats leads to impaired cardiac excitation-contraction coupling at the cellular level, characterized by altered mechanical properties and intracellular calcium handling.

Abstract

Cardiac excitation-contraction (E-C) coupling abnormalities in chemically induced diabetes have been well defined. Heart dysfunction has also been reported in diabetes of genetic origin. The purpose of this study was to determine whether heart dysfunction in genetically predisposed diabetes is attributable to impaired E-C coupling at the cellular level. Myocytes were isolated from 1-yr-old BioBreed (BB) spontaneously diabetic-prone (BB/DP) rats and their diabetic-resistant littermates (BB/DR). Mechanical properties were evaluated by use of a video edge-detection system. Myocytes were electrically stimulated at 0.5 Hz. The contractile properties analyzed included peak shortening (PS), time-to-peak shortening (TPS), time-to-90% relengthening (TR(90)), and maximal velocities of shortening and relengthening (+/-dL/dt). Intracellular Ca(2+) handling was evaluated with fura 2 fluorescent dye. Myocytes from spontaneously diabetic hearts exhibited a depressed PS, prolonged TPS and TR(90), and reduced +/-dL/dt. Consistent with the mechanical response, myocytes from the BB/DP group displayed reduced resting and peak intracellular Ca(2+) concentration associated with a slowed Ca(2+)-transient decay. Furthermore, myocytes from BB/DP hearts were less responsive to increases in extracellular Ca(2+) and norepinephrine and equally responsive to increases in stimulation frequency and KCl compared with those from the BB/DR group. These results suggest that the genetic diabetic state produces altered cardiac E-C coupling, in part, because of abnormalities of the myocyte, similar to that demonstrable after chemically induced diabetes or during human diabetes.

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Ren et al. (2000) studied this question.

synapsesocial.com/papers/6a1be97dc97d63156a5f17fehttps://doi.org/10.1152/ajpheart.2000.279.1.h238
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