Muscle Responses to Passive Joint Movements in Infants During the First Year of Life

Irina A Solopova1, Dmitry S Zhvansky1, Irina Y Dolinskaya1

  • 1Laboratory of Neurobiology of Motor Control, Institute for Information Transmission Problems, Moscow, Russia.

Frontiers in Physiology
|October 15, 2019
PubMed

Insights

Infants show prominent muscle shortening reactions (ShR) during passive stretching, indicating adaptive motor behavior. Both stretching (StR) and shortening reactions decrease significantly in the first year of life as neural circuits reorganize.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Motor Control

Background:

  • Muscle tone is crucial for assessing nervous system development in infants.
  • Muscle reactions to passive stretching (StR) and shortening (ShR) are key indicators.
  • Understanding these reactions provides insight into early motor development and neural organization.

Purpose of the Study:

  • To investigate the characteristics of muscle stretching (StR) and shortening reactions (ShR) in healthy infants.
  • To analyze changes in these muscle responses throughout the first year of life.
  • To explore the relationship between muscle reactions and the development of motor circuitry.

Main Methods:

  • Studied healthy infants aged 2 weeks to 12 months in a supine position.
  • Applied slow, passive, cyclic flexion/extension movements to major joints (hip, knee, ankle, elbow).
  • Recorded the presence and characteristics of muscle stretching (StR) and shortening reactions (ShR).

Main Results:

  • Most infants exhibited prominent ShRs, with StRs observed more frequently.
  • Both StR and ShR occurrences significantly decreased in infants during their first year.
  • Rhythmic muscle responses in other or contralateral limbs were more common in younger infants (<6 months).

Conclusions:

  • Shortening reactions (ShR) are an important component of adaptive motor behavior in early infancy.
  • The decrease in muscle responses with age suggests functional reorganization of motor circuitry.
  • Early muscle reactions and spontaneous activity may reflect muscle tone formation and neural self-organization.

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