Related Experiment Video
Updated: Jun 24, 2026

Real Time and Repeated Measurement of Skeletal Muscle Growth in Individual Live Zebrafish Subjected to Altered Electrical Activity
Published on: June 16, 2022
Cooperation of Mtmr8 with PI3K regulates actin filament modeling and muscle development in zebrafish
Jie Mei1, Zhi Li, Jian-Fang Gui
1State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Graduate School of Chinese Academy of Sciences, Wuhan, China.
Background:
It has been shown that mutations in at least four myotubularin family genes (MTM1, MTMR1, 2 and 13) are causative for human neuromuscular disorders. However, the pathway and regulative mechanism remain unknown.
Methodology/Principal Findings:
Here, we reported a new role for Mtmr8 in neuromuscular development of zebrafish. Firstly, we cloned and characterized zebrafish Mtmr8, and revealed the expression pattern predominantly in the eye field and somites during early somitogenesis. Using morpholino knockdown, then, we observed that loss-of-function of Mtmr8 led to defects in somitogenesis. Subsequently, the possible underlying mechanism and signal pathway were examined. We first checked the Akt phosphorylation, and observed an increase of Akt phosphorylation in the morphant embryos. Furthermore, we studied the PH/G domain function within Mtmr8. Although the PH/G domain deletion by itself did not result in embryonic defect, addition of PI3K inhibitor LY294002 did give a defective phenotype in the PH/G deletion morphants, indicating that the PH/G domain was essential for Mtmr8's function. Moreover, we investigated the cooperation of Mtmr8 with PI3K in actin filament modeling and muscle development, and found that both Mtmr8-MO1 and Mtmr8-MO2+LY294002 led to the disorganization of the actin cytoskeleton. In addition, we revealed a possible participation of Mtmr8 in the Hedgehog pathway, and cell transplantation experiments showed that Mtmr8 worked in a non-cell autonomous manner in actin modeling.
Conclusion/Significance:
The above data indicate that a conserved functional cooperation of Mtmr8 with PI3K regulates actin filament modeling and muscle development in zebrafish, and reveal a possible participation of Mtmr8 in the Hedgehog pathway. Therefore, this work provides a new clue to study the physiological function of MTM family members.
Insights
Myotubularin-related protein 8 (Mtmr8) plays a key role in zebrafish neuromuscular development. This study reveals Mtmr8 cooperates with PI3K to regulate actin and muscle development, offering insights into MTM family functions.
Area of Science:
- Molecular Biology
- Developmental Biology
- Genetics
Background:
- Mutations in myotubularin family genes cause human neuromuscular disorders.
- The specific pathways and regulatory mechanisms remain largely unknown.
Purpose of the Study:
- To investigate the role of Mtmr8 in zebrafish neuromuscular development.
- To elucidate the underlying molecular mechanisms and signaling pathways involved.
Main Methods:
- Cloning and characterization of zebrafish Mtmr8.
- Morpholino knockdown to assess loss-of-function effects.
- Analysis of Akt phosphorylation and PI3K pathway involvement.
- Investigation of Mtmr8's PH/G domain function.
- Assessment of actin cytoskeleton organization and muscle development.
- Exploration of Mtmr8's interaction with the Hedgehog pathway.
- Cell transplantation experiments to determine Mtmr8's mode of action.
Main Results:
- Mtmr8 is expressed in the eye field and somites during zebrafish development.
- Mtmr8 loss-of-function causes somitogenesis defects.
- Mtmr8 regulates Akt phosphorylation.
- The PH/G domain of Mtmr8 is essential for its function.
- Mtmr8 cooperates with PI3K to regulate actin filament organization and muscle development.
- Mtmr8 may participate in the Hedgehog pathway.
- Mtmr8 acts in a non-cell autonomous manner.
Conclusions:
- Mtmr8 functionally cooperates with PI3K to regulate actin filament modeling and muscle development in zebrafish.
- Mtmr8 may be involved in the Hedgehog pathway.
- This study provides new insights into the physiological functions of MTM family members.

