Cardiac functions in children with growth hormone deficiency before and during growth hormone-replacement therapy

Osman Ozdemir1, Ayhan Abaci, Samil Hizli

  • 1Department of Paediatric Cardiology, Kecioren Training and Research Hospital, Ankara, Turkey. pedkard@gmail.com

Pediatric Cardiology
|April 8, 2011
PubMed

Insights

Childhood growth hormone deficiency (GHD) reduces heart size but not function. Recombinant human growth hormone (rhGH) therapy increases left-ventricular mass and improves specific cardiac relaxation parameters in children with GHD.

Area of Science:

  • Pediatric Endocrinology
  • Cardiology
  • Medical Imaging

Background:

  • Childhood growth hormone deficiency (GHD) is known to decrease left-ventricular (LV) mass.
  • However, the impact of GHD on cardiac function has not been previously documented.

Purpose of the Study:

  • To evaluate the cardiac effects of GHD and subsequent treatment with recombinant human growth hormone (rhGH).
  • To assess changes in cardiac morphology and function using echocardiography and tissue Doppler imaging.

Main Methods:

  • 12 children with GHD underwent complete echocardiography and tissue Doppler imaging at baseline and after rhGH therapy.
  • Parameters assessed included LV mass index, dimensions, fractional shortening, and various Doppler-derived indices.

Main Results:

  • rhGH treatment significantly increased LV mass index and LV internal dimensions.
  • Significant improvements were observed in deceleration time of mitral early peak velocity, isovolumic relaxation time, and myocardial performance index.
  • No significant differences were found in LV fractional shortening or peak wave velocities before and after rhGH therapy.

Conclusions:

  • In children, GHD impacts heart morphology by reducing cardiac size but does not impair cardiac function.
  • rhGH therapy effectively increases cardiac mass and improves specific diastolic function parameters in children with GHD.

Related Concept Videos

Cardiomyopathy III: Hypertrophic Cardiomyopathy01:29

Cardiomyopathy III: Hypertrophic Cardiomyopathy

Hypertrophic cardiomyopathy, or HCM, is an autosomal dominant genetic disorder characterized by asymmetric left ventricular hypertrophy without ventricular dilation. It is more common in men and is typically diagnosed in young, athletic adults.EtiologyHCM is primarily genetic and is caused by mutations in genes encoding sarcomeric proteins. Researchers have identified over 1400 mutations across at least 11 different genes. Among these, the most frequently occurring mutations are found in the...
Functions of Thyroid Hormones01:18

Functions of Thyroid Hormones

The thyroid hormone (TH) plays a pivotal role in the intricate orchestration of physiological processes, exerting profound effects on development, metabolism, and homeostasis throughout different life stages.
TH is indispensable for the normal development and maturation of the skeletal, muscular, and nervous systems during fetal and childhood growth. It facilitates bone mineral turnover and regulates protein synthesis in developing tissues, contributing significantly to overall growth and...
Cardiomyopathy II: Dilated Cardiomyopathy01:30

Cardiomyopathy II: Dilated Cardiomyopathy

Dilated cardiomyopathy, or DCM, is a progressive myocardial disorder characterized by ventricular chamber dilation and contractile dysfunction.EtiologyVarious factors can cause DCM, including hypertension and heavy alcohol intake, which contribute to the weakening and enlargement of the heart muscle. Viral infections, such as Coxsackievirus B, adenoviruses, and influenza, can lead to DCM by causing inflammation and damage to heart tissue. Certain chemotherapeutic agents, including daunorubicin,...
Hormones and Bone Tissue01:17

Hormones and Bone Tissue

The endocrine system produces and secretes hormones, which interact with the skeletal system. These hormones control bone growth, maintain bone once it is formed, and remodel it.
Hormones That Influence Osteoblasts and/or Maintain the Matrix
Several hormones are necessary for controlling bone growth and maintaining the bone matrix. The pituitary gland secretes growth hormone (GH), which, as its name implies, controls bone growth. This happens in several ways: first, it triggers chondrocyte...
Cellular Adaptation II: Hypertrophy01:26

Cellular Adaptation II: Hypertrophy

Hypertrophy is the increase in the size of individual cells, resulting in the enlargement of a tissue or organ. Unlike hyperplasia, which involves an increase in cell number, hypertrophy is characterized by an increase in cell volume. This process often occurs in response to higher functional demand or hormonal stimulation, leading to the production of more structural proteins and organelles, thereby enhancing the cells' work capacity.There are two primary types of hypertrophy: physiological...
Role of Hematopoietic Growth Factors01:28

Role of Hematopoietic Growth Factors

Hematopoietic growth factors are molecules that regulate the differentiation rate of hematopoietic stem cells (HSCs). Erythropoietin (EPO), primarily produced by the kidneys, plays a crucial role in erythrocyte production. When oxygen levels in the blood are low, EPO is released into the bloodstream, reaching the bone marrow, where it stimulates HSCs to differentiate and mature into erythrocytes, which are vital for oxygen transport.
Thrombopoietin (TPO), mainly released by the liver,...