Related Experiment Video
Updated: Feb 3, 2026

Fetal Echocardiography and Pulsed-wave Doppler Ultrasound in a Rabbit Model of Intrauterine Growth Restriction
Published on: June 29, 2013
Skeletal Muscle Damage in Intrauterine Growth Restriction
Leonard Năstase1,2, Dragos Cretoiu3,4, Silvia Maria Stoicescu3,4
1Carol Davila University of Medicine and Pharmacy, Bucharest, Romania. nastaseleonard@gmail.com.
Insights
Intrauterine growth restriction (IUGR) limits fetal growth, impacting skeletal muscle development. This muscle mass reduction persists from infancy into adulthood, affecting metabolic health.
Area of Science:
- Neonatology
- Developmental Biology
- Pediatric Endocrinology
Background:
- Intrauterine growth restriction (IUGR) is fetal growth below average for gestational age, often below the 10th percentile.
- IUGR is multifactorial, frequently caused by reduced placental nutrient and oxygen delivery.
- It affects 24% of births in developing nations and is a leading cause of perinatal mortality and a risk factor for lifelong metabolic disorders.
Purpose of the Study:
- To review the effects of IUGR on fetal and neonatal skeletal muscle from a neonatological and clinical perspective.
- To highlight the impact of IUGR on muscle mass and its long-term consequences.
- To identify gaps in current research regarding human IUGR and muscle development.
Main Methods:
- Literature review focusing on neonatological and clinical aspects of IUGR.
- Analysis of existing studies, acknowledging a predominance of animal research.
- Synthesis of information on the effects of IUGR on skeletal muscle growth and metabolism.
Main Results:
- IUGR significantly limits skeletal muscle and adipose tissue growth due to decreased nutrient supply.
- IUGR fetuses exhibit reduced skeletal muscle mass compared to normal neonates.
- This muscle deficit is not recovered postnatally and continues into adulthood.
Conclusions:
- IUGR leads to a persistent reduction in skeletal muscle mass with potential long-term metabolic implications.
- Further research on human fetuses and newborns is crucial to fully understand IUGR's impact on muscle development.
- Early identification and management of IUGR may be vital for mitigating lifelong health consequences.
Abstract:
Intrauterine growth restriction (IUGR) represents a rate of fetal growth that is less than average for the population and the growth potential of a specific infant. IUGR produces infants who are small for gestational age (SGA) but also appropriate for gestational age (AGA). It refers to growth less than expected for gestational age and is most often under 10th percentiles for age. It develops during the late second and third trimesters of gestation. The etiology of IUGR is multifactorial. One of the most important factors which leads to IUGR is a decrease of nutrients and oxygen delivered to the fetus by the placenta. The growth of adipose tissue and skeletal muscle is limited by the declined fetal nutrient supply later in gestation. IUGR affects about 24% of babies born in developing countries. Worldwide, IUGR is the second cause of perinatal morbidity and mortality behind the premature birth and a major predisposing factor to metabolic disorders throughout postnatal life, even at adult age. Skeletal muscle represents about 35-40% of the body mass and plays an essential role in metabolic homeostasis, being responsible for 65% of fetal glucose consumption. A reduction in skeletal muscle growth characterizes IUGR fetuses compared to normal weight neonates. The decrease in muscle mass is not compensated after birth and persists until adulthood. This is a review of the literature, a neonatological, clinical point of view on the effects of IUGR on striated muscles. The available studies on this subject are currently the results of experimental research on animals, and information about the human fetus and newborn are scarce.
Related Concept Videos
Classification of Skeletal Muscle Fibers
Slow-Twitch Muscle Fibers
Slow oxidative, muscle fibers appear red due to large numbers of capillaries and high levels of...
Overview of Skeletal Muscle
Relaxation of Skeletal Muscles
When an action potential reaches the axon terminal, it depolarizes the membrane and opens voltage-gated sodium channels. Sodium ions enter the cell, further depolarizing the presynaptic membrane. This depolarization causes voltage-gated calcium channels to open....
Disorders of the Skeletal Muscle
Musculoskeletal disorders
Musculoskeletal disorders involve injuries and conditions affecting the skeletal muscles and associated connective tissues. These disorders can arise from acute biomechanical stresses or chronic overuse and can occur across different age groups. Common injuries include sprains, fractures, and muscular strains, often resulting from...
Naming Skeletal Muscles
The key factors used in naming muscles include:
Skeletal Muscle Anatomy

