Development of muscle fiber types in the prenatal rat hindlimb

K Condon1, L Silberstein, H M Blau

  • 1Department of Zoology, University of Texas, Austin 78712.

Developmental Biology
|April 1, 1990
PubMed

Insights

During embryonic development, muscle fibers gradually switch myosin heavy chain isoform expression. This developmental process, influenced by fiber birth and innervation, establishes adult muscle fiber type patterns in the rat hindlimb.

Area of Science:

  • Developmental Biology
  • Muscle Physiology
  • Molecular Biology

Background:

  • Muscle fiber development involves the expression of specific myosin heavy chain (MHC) isoforms.
  • Understanding the temporal and spatial regulation of MHC isoform expression is crucial for comprehending muscle differentiation.

Purpose of the Study:

  • To investigate the expression patterns of embryonic, slow, and neonatal MHC isoforms in the developing rat hindlimb.
  • To determine how MHC isoform expression changes during myogenesis and if these changes correlate with innervation.

Main Methods:

  • Immunohistochemistry was employed to detect and localize MHC isoforms within muscle fibers.
  • Analysis focused on the embryonic rat hindlimb during prenatal and early postnatal development.

Main Results:

  • Embryonic MHC isoform is ubiquitously expressed prenatally.
  • By birth, slow and neonatal MHC isoforms are expressed in distinct, complementary fiber populations, mirroring adult slow and fast fiber distributions.
  • Primary muscle fibers initially express slow MHC, with some later switching to neonatal MHC, while secondary fibers predominantly express neonatal MHC, with some switching to slow MHC.

Conclusions:

  • The final pattern of MHC isoform expression in the rat hindlimb is a gradual process, not present at early myogenesis.
  • Both fiber generation (birth date) and location within the muscle influence fiber type determination.
  • Innervation appears to play a significant role in muscle fiber diversification, as suggested by the timing of MHC expression changes relative to axonal arrival.

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