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Published on: October 27, 2020
Ginseng-derived nanoparticles inhibit lung cancer cell epithelial mesenchymal transition by repressing pentose
Lan Yang1, Wen-Qi Jin1, Xiao-Lei Tang1
1Research Center of Traditional Chinese Medicine, The Affiliated Hospital to Changchun University of Chinese Medicine, Changchun, China.
Abstract:
It is unclear whether ginseng-derived nanoparticles (GDNPs) can prevent tumor cell epithelial-mesenchymal transition (EMT). Here, we describe typical characteristics of GDNPs and possible underlying mechanisms for GDNP antitumor activities. First, GDNPs particle sizes and morphology were determined using nanoparticle tracking analysis (NTA) and transmission electron microscopy (TEM), respectively, while cellular uptake of PKH67-labeled GDNPs was also assessed. Next, we evaluated GDNPs antitumor effects by determining whether GDNPs inhibited proliferation and migration of five tumor cell lines derived from different cell types. The results indicated that GDNPs most significantly inhibited proliferation and migration of lung cancer-derived tumor cells (A549, NCI-H1299). Moreover, GDNPs treatment also inhibited cell migration, invasion, clonal formation, and adhesion tube formation ability and reduced expression of EMT-related markers in A549 and NCI-H1299 cells in a dose-dependent manner. Meanwhile, Kaplan-Meier analysis of microarray data revealed that high-level thymidine phosphorylase (TP) production, which is associated with poor lung cancer prognosis, was inhibited by GDNPs treatment, as reflected by decreased secretion of overexpressed TP and downregulation of TP mRNA-level expression. In addition, proteomic analysis results indicated that GDNPs affected pentose phosphate pathway (PPP) activity, with ELISA results confirming that GDNPs significantly reduced levels of PPP metabolic intermediates. Results of this study also demonstrated that GDNPs-induced downregulation of TP expression led to PPP pathway inhibition and repression of lung cancer cell metastasis, warranting further studies of nano-drugs as a new and promising class of anti-cancer drugs.
Insights
Ginseng-derived nanoparticles (GDNPs) show significant potential in combating lung cancer by inhibiting tumor cell proliferation, migration, and metastasis. GDNPs effectively reduce key markers associated with cancer progression and impact metabolic pathways, highlighting their promise as anti-cancer nano-drugs.
Area of Science:
- Nanomedicine
- Cancer Biology
- Pharmacology
Background:
- Ginseng-derived nanoparticles (GDNPs) are being investigated for their therapeutic potential.
- The role of GDNPs in preventing tumor cell epithelial-mesenchymal transition (EMT) remains unclear.
- Understanding GDNP characteristics and antitumor mechanisms is crucial for developing novel cancer therapies.
Purpose of the Study:
- To characterize ginseng-derived nanoparticles (GDNPs).
- To investigate the underlying mechanisms of GDNP antitumor activities, particularly in lung cancer.
- To evaluate the potential of GDNPs as anti-cancer nano-drugs.
Main Methods:
- Nanoparticle characterization using nanoparticle tracking analysis (NTA) and transmission electron microscopy (TEM).
- Assessment of cellular uptake of labeled GDNPs.
- Evaluation of GDNP effects on proliferation, migration, invasion, and EMT markers in various tumor cell lines (A549, NCI-H1299).
- Analysis of thymidine phosphorylase (TP) expression and pentose phosphate pathway (PPP) activity.
Main Results:
- GDNPs significantly inhibited proliferation and migration of lung cancer cells (A549, NCI-H1299).
- GDNPs suppressed EMT, invasion, clonal formation, and adhesion tube formation in a dose-dependent manner.
- GDNPs downregulated thymidine phosphorylase (TP) expression and inhibited the pentose phosphate pathway (PPP), reducing lung cancer cell metastasis.
Conclusions:
- GDNPs exhibit potent antitumor effects against lung cancer cells by inhibiting EMT and metastasis.
- GDNP-induced downregulation of TP expression and PPP inhibition are key mechanisms for their anti-cancer activity.
- GDNPs represent a promising new class of nano-drugs for cancer therapy, warranting further investigation.

