Key result
Severe changes in calcium regulation or contractile function over a large portion of the apex, exacerbated by a failing Frank-Starling mechanism, are required to produce the apical ballooning characteristic of Takotsubo cardiomyopathy.
Computational modeling demonstrates that severe, spatially distinct apical changes in calcium handling and contractility, compounded by an impaired Frank-Starling mechanism, are necessary to reproduce the apical ballooning seen in Takotsubo cardiomyopathy.
May inform targeted experiments on apical calcium handling; leaves open human translation and therapeutic relevance.
In Takotsubo cardiomyopathy, the left ventricle shows apical ballooning combined with basal hypercontractility. Both clinical observations in humans and recent experimental work on isolated rat ventricular myocytes suggest the dominant mechanisms of this syndrome are related to acute catecholamine overload. However, relating observed differences in single cells to the capacity of such alterations to result in the extreme changes in ventricular shape seen in Takotsubo syndrome is difficult. By using a computational model of the rat left ventricle, we investigate which mechanisms can give rise to the typical shape of the ventricle observed in this syndrome. Three potential dominant mechanisms related to effects of β-adrenergic stimulation were considered: apical-basal variation of calcium transients due to differences in L-type and sarco(endo)plasmic reticulum Ca(2+)-ATPase activation, apical-basal variation of calcium sensitivity due to differences in troponin I phosphorylation, and apical-basal variation in maximal active tension due to, e.g., the negative inotropic effects of p38 MAPK. Furthermore, we investigated the interaction of these spatial variations in the presence of a failing Frank-Starling mechanism. We conclude that a large portion of the apex needs to be affected by severe changes in calcium regulation or contractile function to result in apical ballooning, and smooth linear variation from apex to base is unlikely to result in the typical ventricular shape observed in this syndrome. A failing Frank-Starling mechanism significantly increases apical ballooning at end systole and may be an important additional factor underpinning Takotsubo syndrome.
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Land et al. (2014) studied Takotsubo cardiomyopathy. Spatially varying beta-adrenergic stimulation vs. Homogeneous stimulation was evaluated on Apical ballooning (A:B ratio). Severe changes in calcium regulation or contractile function over a large portion of the apex, exacerbated by a failing Frank-Starling mechanism, are required to produce the apical ballooning characteristic of Takotsubo cardiomyopathy.
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