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Updated: Jul 7, 2026

Analysis of Embryonic and Larval Zebrafish Skeletal Myofibers from Dissociated Preparations
Published on: November 13, 2013
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.
Abstract:
Mrf4 is a basic helix-loop-helix (bHLH) transcription factor associated with myogenesis. Two mrf4 transcripts, mrf4_tv1 and mrf4_tv2, were identified in zebrafish generated by alternative splicing. To study their biological functions, we separately injected the Mrf4-morpholinos, including MO1 (mrf4_tv1:mrf4_tv2 knockdown), MO2+MO3 (mrf4_tv1:mrf4_tv2 knockdown), MO3 (mrf4_tv1 knockdown), and MO4 (mrf4_tv2 knockdown), into zebrafish embryos to observe mrf4 gene knockdown phenotypes. No phenotypic abnormalities were observed following injection with 0.5 ng of MO1 but those injected with 4.5, 9, or 13.5 ng displayed curved-body phenotypes, such as indistinct somite boundaries, and a lack of uniformly sized cell blocks. Similar results were also observed in the (MO2+MO3)-, MO3-, and MO4-injected groups. To further investigate the molecular mechanisms that lead to curved-body phenotypes, we stained embryos with alpha-bungrotoxin and specific monoclonal antibodies F59, Znp1, and Zn5 to detect morphological changes in acetyl-choline receptor (AChR) clusters, muscle fibers, common path of the primary neurons, and secondary neurons axonal projections, respectively. Our results show that the muscle fibers of mrf4_(tv1:tv2)-morphant aligned disorderly and lost their integrity and attachment, while the defects became milder in either mrf4_tv1-morphant or mrf4_tv2-morphant. On the other hand, reduced axonal projections and AChR clusters were found in both mrf4_tv2-morphant and mrf4_(tv1:tv2)-morphant but distributed normally in the mrf4_tv1-morphant. We conclude that Mrf4_tv2 is involved in alignment of muscle fibers, and Mrf4_tv1 might have cooperative function with Mrf4_tv2 in muscle fiber alignment, without affecting the muscle-nerve connection.
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.

