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KAT2A Deficiency Suppresses Lung Cancer Progression by Downregulating MYC Through Decreasing MYC Succinylation
Junping Li1,2, Feng Zhao3, Zhongchao Wang4
1Department of Thoracic Medical Oncology II, The Second Affiliated Hospital of Dalian Medical University, Dalian, China.
Abstract:
Succinylation has been shown to promote lung cancer development, but its mechanism remains incompletely understood. KAT2A, a succinyltransferase, acts as an oncogene in multiple cancers, but its role in mediating lung cancer progression is unclear. This study aimed to investigate the mechanism by which KAT2A regulates lung cancer progression via succinylation. KAT2A expression was analyzed using UALCAN, GEPIA, and Kaplan-Meier Plotter databases, and validated in lung cancer cell lines and patient-derived tissues. Quantitative real-time PCR, Cell Counting Kit-8 (CCK-8), EdU staining, and flow cytometry were performed to assess KAT2A's role in lung cancer cell proliferation and apoptosis. KAT2A's target proteins were predicted using LinkedOmics and STRING databases. Additionally, in vivo xenograft models were established to evaluate the effect of KAT2A knockdown on tumor growth. Results indicated that KAT2A expression was significantly elevated in lung cancer cells and tissues and was associated with poor prognosis. KAT2A knockdown inhibited proliferation and promoted apoptosis in lung cancer cells, whereas MYC overexpression reversed these effects. Mechanistically, KAT2A knockdown downregulated MYC by reducing succinylation at K370 and K386 residues. Mutation of these sites abrogated the proliferative effect of MYC overexpression and restored apoptotic activity. Furthermore, in vivo experiments demonstrated that KAT2A knockdown inhibited tumor growth and reduced MYC succinylation. Our findings demonstrate that KAT2A functions as an oncogene in lung cancer by enhancing MYC succinylation. This study identifies KAT2A as a promising therapeutic target for lung cancer.
Insights
KAT2A promotes lung cancer by increasing MYC succinylation, inhibiting cell death and boosting proliferation. Targeting KAT2A offers a potential therapeutic strategy for lung cancer treatment.
Area of Science:
- Biochemistry
- Oncology
- Molecular Biology
Background:
- Succinylation is implicated in lung cancer, but its precise mechanisms are not fully understood.
- KAT2A, a known succinyltransferase and oncogene, has an unclear role in lung cancer progression.
Purpose of the Study:
- To elucidate the mechanism by which KAT2A drives lung cancer progression through succinylation.
- To investigate KAT2A's regulatory role in lung cancer cell proliferation and apoptosis.
Main Methods:
- Bioinformatic analysis (UALCAN, GEPIA, Kaplan-Meier Plotter, LinkedOmics, STRING).
- Experimental validation in lung cancer cell lines and patient tissues using qPCR, CCK-8, EdU staining, flow cytometry.
- In vivo xenograft models to assess KAT2A knockdown effects on tumor growth.
Main Results:
- KAT2A expression is upregulated in lung cancer and linked to poor prognosis.
- KAT2A knockdown suppresses proliferation and induces apoptosis; MYC overexpression reverses this.
- KAT2A enhances lung cancer progression by succinylating MYC at K370 and K386 residues, promoting its oncogenic activity.
Conclusions:
- KAT2A acts as an oncogene in lung cancer by promoting MYC succinylation.
- KAT2A is a potential therapeutic target for lung cancer intervention.
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