BACKGROUND
Lung adenocarcinoma (LUAD) is a leading cause of cancer-related mortality worldwide, with nonsmokers comprising a notable proportion of cases. The complexity of its molecular pathogenesis poses substantial challenges for the development of effective therapeutic strategies. Traditional Chinese medicine-derived compounds have garnered attention for their multi-target engagement and favorable safety profiles.
OBJECTIVE
This study aimed to characterize the antitumor effects and elucidate the mechanistic basis of 11-oxo-mogroside V, a bioactive triterpenoid saponin from Siraitia grosvenorii, in LUAD.
METHODS
In vitro assays (CCK-8, flow cytometry, wound-healing, metabolic measurements) were performed on lung adenocarcinoma cells. In vivo efficacy was evaluated using a xenograft mouse model with bioluminescent monitoring and TUNEL staining. Transcriptomic profiling, molecular docking, immunoblotting, and co-immunoprecipitation elucidated mechanistic pathways.
RESULTS
11-oxo-mogroside V (800 μg/mL, 72 h) significantly reduced cell viability, induced G0/G1 arrest, and promoted apoptosis (apoptotic rate increased from 3.01% to 12.00%, P < 0.0001). Migration was suppressed (wound closure reduced from 77.66% to 43.98%, P < 0.0001). Metabolic disruption was evidenced by decreased intracellular ATP, glucose uptake, and LDH activity. In vivo, 11-oxo-mogroside V (100 mg/kg, daily) markedly inhibited tumor growth (photon flux reduced from 2.65 × 10¹⁰ to 1.50 × 10¹⁰, P < 0.0001) and increased apoptosis (TUNEL-positive cells from 0.40% to 5.97%, P < 0.0001). Mechanistically, RNA-seq analysis and molecular docking suggested TGFB2, HDAC1, and c-Myc as potential molecular targets, with docking simulations indicating favorable binding affinities. Western blot confirmed downregulation of TGFB2, Smad2/3, TGIF, HDAC1, c-Myc, and Bcl2, alongside upregulation of Bax, with co-IP demonstrating HDAC1-TGIF1 interaction.
CONCLUSION
11-oxo-mogroside V exerts potent anti-LUAD activity by disrupting metabolic homeostasis and suppressing TGFβ2/HDAC1/c-Myc signaling, positioning it as a promising lead compound for therapeutic development.
Xin-Yu Chen, Li-Hua Yang, Jiao Li et al.· Translational Oncology· 0 citations
Tyrosine kinase inhibitor (TKI) resistance severely limits clinical outcomes in hepatocellular carcinoma (HCC), highlighting the urgent need to elucidate its underlying molecular mechanisms. In this study, an unbiased genome‐wide CRISPR/Cas9 screening identified novel key factors related to the therapeutic responsiveness of TKI in HCC. By integrating data from 20 datasets encompassing 322 samples, a comprehensive TKI therapeutic response landscape for HCC was constructed. GO and Reactome enrichment analyses revealed that dysregulated RNA splicing, ubiquitination, endocytosis/exocytosis, and cell cycle pathways modulate TKI sensitivity, with close links to antitumor immunity. This study identified GPATCH4, CCT3, C19orf53, UACA, PPM1M, and LIN37 as key genes mediating TKI resistance in HCC. These six genes were found to be highly expressed in HCC and significantly associated with HCC patient prognosis. Drug sensitivity assays identified a significant association between their expression and responsiveness to TKI agents. In‐house quantitative real‐time PCR validated their differential expression levels in normal hepatocytes, parental HCC cells, and TKI‐resistant HCC sublines. ssGSEA, TIMER2, and ESTIMATE analysis revealed that their expression modulates HCC immune infiltration. Bibliometric analysis revealed a growing focus on immunotherapy‐based combination regimens to overcome TKI resistance. Ferroptosis, epithelial‐mesenchymal transition and hypoxia were new research directions, which were closely related to the pathways investigated in this study. In conclusion, this study identified RNA splicing, ubiquitination, endocytosis/exocytosis, and cell cycle pathways, as well as GPATCH4, CCT3, C19orf53, UACA, PPM1M, and LIN37, as novel directions and targets for TKI–immunotherapy combination strategies, providing new insights for overcoming TKI resistance in HCC.
Siyi Chen, Li-Hua Yang, Zi-Qian Liang et al.· Cancer Medicine· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.