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.

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