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Published on: February 9, 2021
Design, Synthesis and Biological Evaluation of Multi-Target Anti-Cancer Agent PYR26
Sirong He1, Peiting He1, Haojing Wu1
1The Joint Research Center of Guangzhou University and Keele University for Gene Interference and Application, School of Life Science, Guangzhou University, Guangzhou 510006, China.
Abstract:
This study investigates the synthesis of a new compound, PYR26, and the multi-target mechanism of PYR26 inhibiting the proliferation of HepG2 human hepatocellular carcinoma cells. PYR26 significantly inhibits the growth of HepG2 cells (p < 0.0001) and this inhibition has a concentration effect. There was no significant change in ROS release from HepG2 cells after PYR26 treatment. The mRNA expressions of CDK4, c-Met and Bak genes in HepG2 cells were significantly inhibited (p < 0.05), while mRNA expression of pro-apoptotic factors such as caspase-3 and Cyt c was significantly increased (p < 0.01). The expression of PI3K, CDK4 and pERK proteins decreased. The expression level of caspase-3 protein was increased. PI3K is a kind of intracellular phosphatidylinositol kinase. PI3K signaling pathway is involved in signal transduction of a variety of growth factors, cytokines and extracellular matrix and plays an important role in preventing cell apoptosis, promoting cell survival and influencing cell glucose metabolism. CDK4 is a catalytic subunit of the protein kinase complex and is important for G1 phase progression of the cell cycle. PERK refers to phosphorylated activated ERK, which is translocated from cytoplasm to the nucleus after activation, and then participates in various biological reactions such as cell proliferation and differentiation, cell morphology maintenance, cytoskeleton construction, cell apoptosis and cell canceration. Compared with the model group and the positive control group, the tumor volume of the nude mice in the low-concentration PYR26 group, the medium-concentration group and the high-concentration group was smaller, and the organ volume was smaller than that in the model group and the positive control group. The tumor inhibition rates of low-concentration group PYR26, medium-concentration group and high-concentration group reached 50.46%, 80.66% and 74.59%, respectively. The results showed that PYR26 inhibited the proliferation of HepG2 cells and induced apoptosis of HepG2 cells by down-regulating c-Met, CDK4 and Bak, up-regulating the mRNA expression of caspase-3 and Cyt c genes, down-regulating PI3K, pERK and CDK4 proteins and up-regulating the protein level of caspase-3. In a certain range, with the increase in PYR26 concentration, the tumor growth was slower and the tumor volume was smaller. Preliminary results showed that PYR26 also had an inhibitory effect on the tumors of Hepa1-6 tumor-bearing mice. These results suggest that PYR26 has an inhibitory effect on the growth of liver cancer cells, therefore it has potential to be developed into a new anti-liver cancer drug.
Insights
The novel compound PYR26 effectively inhibits liver cancer cell growth and promotes apoptosis by targeting key cellular pathways. This research indicates PYR26
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Hepatocellular carcinoma (HCC) remains a significant global health challenge.
- Developing novel therapeutic agents with multi-target mechanisms is crucial for effective cancer treatment.
- Understanding the molecular pathways involved in liver cancer proliferation and apoptosis is essential for drug discovery.
Purpose of the Study:
- To investigate the anti-cancer effects of a newly synthesized compound, PYR26, on HepG2 human hepatocellular carcinoma cells.
- To elucidate the multi-target mechanism by which PYR26 inhibits cancer cell proliferation and induces apoptosis.
- To evaluate the in vivo efficacy of PYR26 in reducing tumor volume in mouse models.
Main Methods:
- Synthesis and characterization of the novel compound PYR26.
- In vitro studies using HepG2 cells to assess proliferation inhibition, apoptosis induction, and gene/protein expression.
- Quantitative real-time PCR (qRT-PCR) to analyze mRNA levels of key genes (e.g., CDK4, c-Met, Bak, caspase-3, Cyt c).
- Western blot analysis to determine protein expression levels (e.g., PI3K, CDK4, pERK, caspase-3).
- In vivo studies using nude mice xenograft models to evaluate tumor growth inhibition and organ volume changes.
Main Results:
- PYR26 significantly inhibited HepG2 cell proliferation in a dose-dependent manner (p < 0.0001).
- PYR26 treatment led to significant down-regulation of CDK4, c-Met, and Bak mRNA, and up-regulation of caspase-3 and Cyt c mRNA.
- Protein analysis revealed decreased levels of PI3K, CDK4, and pERK, with increased caspase-3 protein expression.
- In vivo studies demonstrated significant tumor volume reduction in PYR26-treated mice, with inhibition rates up to 80.66% in the medium-concentration group.
- Preliminary studies showed PYR26 also inhibited Hepa1-6 tumor growth in mice.
Conclusions:
- PYR26 exhibits potent anti-cancer activity against hepatocellular carcinoma cells through a multi-target mechanism.
- The compound effectively inhibits cell proliferation and induces apoptosis by modulating critical signaling pathways and gene expression.
- PYR26 demonstrates significant therapeutic potential as a novel anti-liver cancer drug, warranting further clinical investigation.
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