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Fetal Growth Restriction and the Programming of Heart Growth and Cardiac Insulin-like Growth Factor 2 Expression in the Lamb

Overview
Journal J Physiol
Specialty Physiology
Date 2011 Aug 3
PMID 21807611
Citations 32
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Abstract

Reduced growth in fetal life together with accelerated growth in childhood, results in a ~50% greater risk of coronary heart disease in adult life. It is unclear why changes in patterns of body and heart growth in early life can lead to an increased risk of cardiovascular disease in adulthood. We aimed to investigate the role of the insulin-like growth factors in heart growth in the growth-restricted fetus and lamb. Hearts were collected from control and placentally restricted (PR) fetuses at 137-144 days gestation and from average (ABW) and low (LBW) birth weight lambs at 21 days of age. We quantified cardiac mRNA expression of IGF-1, IGF-2 and their receptors, IGF-1R and IGF-2R, using real-time RT-PCR and protein expression of IGF-1R and IGF-2R using Western blotting. Combined bisulphite restriction analysis was used to assess DNA methylation in the differentially methylated region (DMR) of the IGF-2/H19 locus and of the IGF-2R gene. In PR fetal sheep, IGF-2, IGF-1R and IGF-2R mRNA expression was increased in the heart compared to controls. LBW lambs had a greater left ventricle weight relative to body weight as well as increased IGF-2 and IGF-2R mRNA expression in the heart, when compared to ABW lambs. No changes in the percentage of methylation of the DMRs of IGF-2/H19 or IGF-2R were found between PR and LBW when compared to their respective controls. In conclusion, a programmed increased in cardiac gene expression of IGF-2 and IGF-2R may represent an adaptive response to reduced substrate supply (e.g. glucose and/or oxygen) in order to maintain heart growth and may be the underlying cause for increased ventricular hypertrophy and the associated susceptibility of cardiomyocytes to ischaemic damage later in life.

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References
1.
Lumbers E, Kim M, Burrell J, Kumarasamy V, Boyce A, Gibson K . Effects of intrafetal IGF-I on growth of cardiac myocytes in late-gestation fetal sheep. Am J Physiol Endocrinol Metab. 2009; 296(3):E513-9. DOI: 10.1152/ajpendo.90497.2008. View

2.
Hill D . Relative abundance and molecular size of immunoreactive insulin-like growth factors I and II in human fetal tissues. Early Hum Dev. 1990; 21(1):49-58. DOI: 10.1016/0378-3782(90)90110-5. View

3.
Rohini A, Agrawal N, Koyani C, Singh R . Molecular targets and regulators of cardiac hypertrophy. Pharmacol Res. 2009; 61(4):269-80. DOI: 10.1016/j.phrs.2009.11.012. View

4.
Xiong Z, Laird P . COBRA: a sensitive and quantitative DNA methylation assay. Nucleic Acids Res. 1997; 25(12):2532-4. PMC: 146738. DOI: 10.1093/nar/25.12.2532. View

5.
Li C, Maloney C, Cropley J, Suter C . Epigenetic programming by maternal nutrition: shaping future generations. Epigenomics. 2011; 2(4):539-49. DOI: 10.2217/epi.10.33. View