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HELLS controls mitochondrial dynamics and genome stability in liver cancer by collusion with MIEF1
Sung Kyung Choi1, Jihye Park2, Sang Yun Ha3
1School of Medicine, Konkuk University, Chungju, 27478, Korea.
Abstract:
Dysregulated chromatin remodelers have emerged as critical disease targets. However, owing to the pleiotropic functions of chromatin remodelers, the underlying mechanisms of their effects on cancer have been difficult to elucidate. Here, we investigated the helicase lymphoid-specific (HELLS) oncogenic mechanism by identifying a new direct transcriptional target. Using loss or gain experiments, we identified Mitochondrial elongation factor 1 (MIEF1) as a critical target of the HELLS molecular network in liver cancer. Liver cancer patients with a poor prognosis exhibited upregulated expression of MIEF1, and MIEF1 knockdown led to the loss of tumor capabilities, indicating MIEF1 as an oncogene in liver cancer. Suppressing the HELLS-MIEF1 axis caused mitochondrial hyperfusion, energy deprivation, and further resulting senescence. HELLS knockdown globally increased histone 3 lysine 9 trimethylation (H3K9me3), especially in genomic hotspots with upregulation of SUV39H1 and further augmented DNA methylation. This stabilized genome and hyperfused mitochondria led to reduced levels of reactive oxygen species (ROS) and DNA damage. Finally, tumor cells became famished and calm. We further validated the functions of the HELLS-MIEF1 axis by MIEF1 overexpression and mitochondrial fusion drug. Our study has important implications for medical science by highlighting the crosstalk between epigenetics and metabolism through nuclear chromatin remodeler HELLS and mitochondrial protein MIEF1.
Insights
The helicase lymphoid-specific (HELLS) protein drives liver cancer by regulating Mitochondrial Elongation Factor 1 (MIEF1). Targeting this HELLS-MIEF1 axis inhibits tumor growth by altering cell metabolism and epigenetics.
Area of Science:
- Oncology
- Epigenetics
- Mitochondrial Biology
Background:
- Dysregulated chromatin remodelers are key in cancer, but their mechanisms are complex.
- The helicase lymphoid-specific (HELLS) protein's role in cancer requires further elucidation.
Purpose of the Study:
- To investigate the oncogenic mechanism of HELLS in liver cancer.
- To identify and characterize a direct transcriptional target of HELLS.
Main Methods:
- Loss-of-function and gain-of-function experiments in liver cancer models.
- Analysis of gene expression (MIEF1, SUV39H1), histone modifications (H3K9me3), and DNA methylation.
- Assessment of mitochondrial morphology, cellular energy levels, reactive oxygen species (ROS), and DNA damage.
Main Results:
- Mitochondrial Elongation Factor 1 (MIEF1) was identified as a direct HELLS target and is upregulated in poor-prognosis liver cancer.
- MIEF1 knockdown suppressed tumor capabilities, confirming its oncogenic role.
- Inhibition of the HELLS-MIEF1 axis induced mitochondrial hyperfusion, energy deprivation, senescence, increased H3K9me3 and DNA methylation, and reduced ROS and DNA damage.
Conclusions:
- The HELLS-MIEF1 axis is a critical oncogenic driver in liver cancer, linking epigenetic regulation to cellular metabolism.
- Targeting the HELLS-MIEF1 pathway offers a potential therapeutic strategy for liver cancer by disrupting energy homeostasis and genome stability.
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