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Publication : Signs of cardiac autonomic imbalance and proarrhythmic remodeling in FTO deficient mice.

First Author  Carnevali L Year  2014
Journal  PLoS One Volume  9
Issue  4 Pages  e95499
PubMed ID  24743632 Mgi Jnum  J:215191
Mgi Id  MGI:5604840 Doi  10.1371/journal.pone.0095499
Citation  Carnevali L, et al. (2014) Signs of cardiac autonomic imbalance and proarrhythmic remodeling in FTO deficient mice. PLoS One 9(4):e95499
abstractText  In humans, variants of the fat mass and obesity associated (FTO) gene have recently been associated with obesity. However, the physiological function of FTO is not well defined. Previous investigations in mice have linked FTO deficiency to growth retardation, loss of white adipose tissue, increased energy metabolism and enhanced systemic sympathetic activation. In this study we investigated for the first time the effects of global knockout of the mouse FTO gene on cardiac function and its autonomic neural regulation. ECG recordings were acquired via radiotelemetry in homozygous knockout (n = 12) and wild-type (n = 8) mice during resting and stress conditions, and analyzed by means of time- and frequency-domain indexes of heart rate variability. In the same animals, cardiac electrophysiological properties (assessed by epicardial mapping) and structural characteristics were investigated. Our data indicate that FTO knockout mice were characterized by (i) higher heart rate values during resting and stress conditions, (ii) heart rate variability changes (increased LF to HF ratio), (iii) larger vulnerability to stress-induced tachyarrhythmias, (iv) altered ventricular repolarization, and (v) cardiac hypertrophy compared to wild-type counterparts. We conclude that FTO deficiency in mice leads to an imbalance of the autonomic neural modulation of cardiac function in the sympathetic direction and to a potentially proarrhythmic remodeling of electrical and structural properties of the heart.
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