β,β-Dimethylacrylshikonin suppresses hepatocellular carcinoma progression through mitochondrial stress and TGM2-associated mitophagy impairment
- Phytomedicine. 2026 Jul 25:157:158322. doi: 10.1016/j.phymed.2026.158322.
- 1. NHC Key Laboratory of Clinical Nutrition and Intervention, First Affiliated Hospital of Wenzhou Medical University, Wenzhou 325035, China.
- 2. Liver Cancer Institute, Zhongshan Hospital, Fudan University, Shanghai 200032, China.
- 3. NHC Key Laboratory of Clinical Nutrition and Intervention, First Affiliated Hospital of Wenzhou Medical University, Wenzhou 325035, China. Electronic address: [email protected].
- 4. NHC Key Laboratory of Clinical Nutrition and Intervention, First Affiliated Hospital of Wenzhou Medical University, Wenzhou 325035, China; Zhejiang Key Laboratory of Intelligent Cancer Biomarker Discovery and Translation, First Affiliated Hospital of Wenzhou Medical University, Wenzhou 325035, China. Electronic address: [email protected].
- 5. NHC Key Laboratory of Clinical Nutrition and Intervention, First Affiliated Hospital of Wenzhou Medical University, Wenzhou 325035, China; Liver Cancer Institute, Zhongshan Hospital, Fudan University, Shanghai 200032, China. Electronic address: [email protected].
Background: Hepatocellular carcinoma (HCC) is a highly aggressive malignancy with high lethality, asymptomatic in early stages and prone to metastasis, with poor response to current treatments. β,β-Dimethylacrylshikonin (DMAS) is a naphthoquinone derivative with potent Anticancer activity. Nevertheless, The anti-tumor mechanisms of DMAS in HCC have not yet been fully elucidated.
Purpose: This study was designed to investigate the effects of DMAS on HCC and to clarify the associated molecular mechanisms.
Study design: To investigate the effects of DMAS, we conducted transcriptomic Sequencing, network pharmacology analyses and functional experiments in HCC cells. An in vivo xenograft model was also employed to further confirm these observations.
Methods: CCK-8, Transwell, EdU, colony formation, flow cytometry, wound healing, immunofluorescence, and Western blot analysis were conducted to assess the effects of DMAS on HCC cells. The interaction between DMAS and TGM2 was investigated using DARTS, molecular docking, and CETSA. Adenoviral transfection, JC-1, mitochondrial-lysosomal colocalization, and Autophagy inducers were applied to investigate interactions with Autophagy/Mitophagy, and TGM2 overexpression in HuH-7 cells clarified the underlying antitumor mechanism. The antiproliferative activity of DMAS against HCC cells was demonstrated through in vitro studies, and its in vivo therapeutic performance and safety profile were corroborated in a xenograft mouse model.
Results: In vitro analyses demonstrated that DMAS effectively inhibits HCC cell proliferation. Moreover, DMAS suppresses cell migration by inducing mitochondria-dependent Apoptosis and antagonizing epithelial-mesenchymal transition (EMT). Mechanistically, DMAS induces mitochondrial dysfunction and activates the PINK1/Parkin signaling axis, initiating mitophagy-related responses. However, concomitant binding to and inhibition of TGM2 suppresses Beclin1 and ATG5 expression, impairing autophagosome biogenesis and thereby limiting effective mitophagic clearance, leading to the accumulation of damaged mitochondria. Upregulation of TGM2 counteracts the effects of DMAS on HCC. The antitumor effects of DMAS and its underlying mechanisms were further verified in a subcutaneously implanted xenograft model.
Conclusions: Our work highlights a new mechanistic insight showing that DMAS directly associates with TGM2 and inhibits its activity, thereby blocking autophagosome formation and limiting Mitophagy progression. Moreover, DMAS synergizes with lenvatinib to suppress HCC progression, suggesting a novel therapeutic strategy for hepatocellular carcinoma.