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SATB2 Mediates H3K9 Delactylation by Recruiting HDAC3 to Repress LCN2 and Inhibit Lung Tumor Growth and Metastasis
Ting Wen1, Lihua Yang1, Shuang Cai1
1Department of Cell Biology and Genetics, School of Basic Medical Sciences, Xi'an Jiaotong University, Xi'an, Shaanxi, China.
Abstract:
Lung cancer remains a leading cause for global cancer-related mortality, with therapeutic resistance and metastasis posing major clinical challenges. The special AT-rich sequence-binding protein 2 (SATB2) is a well-established tumor suppressor in NSCLC, but its downstream epigenetic and metabolic regulatory mechanisms remain largely unclear. Here, we demonstrate that SATB2 exerts tumor-suppressive effects by impairing NSCLC cell proliferation, migration, invasion, and EMT. Mechanistically, SATB2 functions as a negative regulator of global histone lactylation, with a specific role in reducing histone H3 lysine 9 lactylation (H3K9la)-a previously uncharacterized histone mark in NSCLC. Through integrated multi-omics analyses (RNA-seq and H3K9la-specific CUT&Tag), we identified Lipocalin-2 (LCN2), an oncoprotein, as a critical downstream target of the SATB2-H3K9la axis. SATB2 is able to bind LCN2 promoter and recruit histone deacetylase 3 (HDAC3) via its N-terminal domain, catalyzing H3K9 delactylation to repress LCN2 transcription. Exogenous lactate reversed SATB2-mediated H3K9la and LCN2 suppression, restoring oncogenic phenotypes. In vivo, SATB2 overexpression inhibited xenograft tumor growth and lung metastasis, while LCN2 overexpression rescued these suppressive effects. Our findings uncover a novel epigenetic-metabolic crosstalk pathway in NSCLC, providing new insights into the molecular mechanisms of SATB2-mediated tumor suppression and potential therapeutic targets for NSCLC.
Insights
Special AT-rich sequence-binding protein 2 (SATB2) suppresses non-small cell lung cancer (NSCLC) by reducing histone lactylation and repressing the oncoprotein Lipocalin-2 (LCN2). This reveals a new epigenetic-metabolic pathway in NSCLC.
Area of Science:
- Epigenetics
- Cancer Metabolism
- Molecular Oncology
Background:
- Lung cancer is a leading cause of cancer mortality, with resistance and metastasis being major challenges.
- The tumor suppressor SATB2's mechanisms in NSCLC are not fully understood.
- Histone lactylation is an emerging epigenetic modification with unclear roles in cancer.
Purpose of the Study:
- To elucidate the downstream epigenetic and metabolic regulatory mechanisms of SATB2 in NSCLC.
- To identify novel targets and pathways involved in SATB2-mediated tumor suppression.
- To explore potential therapeutic strategies for NSCLC based on SATB2 function.
Main Methods:
- Integrated multi-omics analyses (RNA-seq, H3K9la-specific CUT&Tag) were employed.
- In vitro assays assessed cell proliferation, migration, invasion, and epithelial-mesenchymal transition (EMT).
- In vivo xenograft models were used to evaluate tumor growth and metastasis.
Main Results:
- SATB2 impairs NSCLC proliferation, migration, invasion, and EMT.
- SATB2 negatively regulates histone lactylation, specifically reducing H3K9la.
- LCN2 is identified as a direct downstream target repressed by SATB2 via H3K9 delactylation mediated by HDAC3.
Conclusions:
- SATB2 suppresses NSCLC by modulating the novel H3K9la mark and repressing the oncoprotein LCN2.
- This study uncovers a novel epigenetic-metabolic crosstalk pathway in NSCLC.
- Targeting the SATB2-H3K9la-LCN2 axis may offer new therapeutic avenues for NSCLC.
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