Inactivation of zebrafish mrf4 leads to myofibril misalignment and motor axon growth disorganization

Yun-Hsin Wang1, Chun-Kai Li, Gang-Hui Lee

  • 1Graduate Institute of Life Sciences, Tamkang University, Tamsui, Taiwan.

Insights

Mrf4_tv2 is crucial for zebrafish muscle fiber alignment, while Mrf4_tv1 may assist in this process. Both isoforms are essential for proper muscle development without impacting nerve connections.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Mrf4 is a basic helix-loop-helix (bHLH) transcription factor vital for myogenesis.
  • Two zebrafish Mrf4 transcripts, mrf4_tv1 and mrf4_tv2, arise from alternative splicing.

Purpose of the Study:

  • To investigate the distinct biological functions of mrf4_tv1 and mrf4_tv2.
  • To elucidate the molecular mechanisms underlying Mrf4 knockdown-induced phenotypes in zebrafish embryos.

Main Methods:

  • Utilized morpholinos for targeted knockdown of mrf4_tv1 and mrf4_tv2 in zebrafish embryos.
  • Employed histological staining with alpha-bungarotoxin, F59, Znp1, and Zn5 antibodies to assess muscle fiber and neuronal development.

Main Results:

  • Knockdown of both mrf4 transcripts (mrf4_tv1:mrf4_tv2) resulted in curved-body phenotypes, indistinct somites, and abnormal cell blocks.
  • Mrf4_tv2 knockdown severely affected muscle fiber alignment and integrity.
  • Mrf4_tv2 knockdown also led to reduced axonal projections and acetylcholine receptor clusters, while mrf4_tv1 knockdown showed milder effects.

Conclusions:

  • Mrf4_tv2 plays a primary role in the alignment of muscle fibers.
  • Mrf4_tv1 appears to have a cooperative function with Mrf4_tv2 in muscle fiber alignment.
  • Neither mrf4_tv1 nor mrf4_tv2 knockdown significantly impacted the muscle-nerve connection.

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