Related Experiment Video
Updated: Jan 13, 2026

Combinational Treatment of Trichostatin A and Vitamin C Improves the Efficiency of Cloning Mice by Somatic Cell Nuclear Transfer
Published on: April 26, 2018
mTORC1-dependent suppression of autophagic activity in somatic cell nuclear transfer mouse embryos
Takaki Tatebe1,2, Dinh Quoc Pham1,3, Atsuo Ogura1
1RIKEN BioResource Research Center, Tsukuba, Ibaraki, Japan.
In Brief:
The non-genomic factors responsible for developmental arrest in SCNT embryos remain poorly understood. Using live-cell fluorescence imaging, we revealed that autophagic activity is impaired in preimplantation SCNT embryos, possibly due to ectopic activation of the mTORC1 signaling pathway, providing new insights into cytoplasmic barriers to cloning efficiency.
Abstract:
Activation of autophagy after fertilization is essential for mammalian embryonic development, as it supplies embryos with nutrients and energy. Somatic cell nuclear transfer (SCNT) embryos frequently exhibit developmental arrest, largely because of incomplete genomic reprogramming; however, the role of non-genomic factors remains unclear. Here, we investigated autophagy dynamics in mouse SCNT embryos using immunostaining and live-cell fluorescence imaging. In fertilized embryos, autophagy increased markedly from the late 2-cell stage and peaked at the morula stage. SCNT embryos followed a similar timeline but consistently showed reduced autophagic activity. Notably, the autophagic activity levels varied among SCNT embryos and positively correlated with their developmental potential. Attempts to enhance genomic reprogramming, including the removal of somatic histone methylation, did not restore autophagy. Instead, transcriptome analysis revealed ectopic activation of mTORC1 signaling as a likely cause of impaired autophagy. Consistently, treatment with an mTORC1 inhibitor successfully rescued autophagic activity in SCNT embryos. These findings identify a persistent autophagy defect during preimplantation development in SCNT embryos and suggest that modulation of non-genomic pathways, such as mTORC1 signaling, could improve SCNT efficiency.
Insights
Impaired autophagy, due to overactive mTORC1 signaling, hinders somatic cell nuclear transfer (SCNT) embryo development. Enhancing autophagy via mTORC1 inhibition may improve cloning efficiency.
Area of Science:
- Developmental Biology
- Cellular Biology
- Reproductive Biology
Background:
- Autophagy is crucial for mammalian embryonic development, providing essential nutrients and energy.
- Somatic cell nuclear transfer (SCNT) embryos often fail to develop fully, with non-genomic factors contributing to this developmental arrest.
Purpose of the Study:
- To investigate autophagy dynamics in mouse SCNT embryos.
- To identify non-genomic factors causing developmental arrest in SCNT embryos.
- To explore potential therapeutic targets for improving SCNT efficiency.
Main Methods:
- Live-cell fluorescence imaging and immunostaining were used to track autophagy in SCNT and fertilized embryos.
- Transcriptome analysis identified ectopic mTORC1 signaling activation.
- Treatment with an mTORC1 inhibitor was employed to assess its effect on autophagy.
Main Results:
- SCNT embryos exhibited significantly reduced autophagic activity compared to fertilized embryos.
- Autophagic activity levels in SCNT embryos correlated positively with their developmental potential.
- Ectopic activation of mTORC1 signaling was identified as a cause of impaired autophagy, which was successfully rescued by an mTORC1 inhibitor.
Conclusions:
- A persistent defect in autophagy exists in preimplantation SCNT embryos.
- Dysregulation of non-genomic pathways, specifically mTORC1 signaling, contributes to cloning inefficiency.
- Modulating mTORC1 signaling presents a potential strategy to enhance SCNT efficiency.
Related Concept Videos
In-vitro Mutagenesis
Methods of Nuclear Reprogramming

