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Published on: June 23, 2019
Discovery of Two Novel Pyrazole Derivatives as Anticancer Agents Targeting Tubulin Polymerization and MAPK Signaling
Denisse A Gutierrez1, Elisa Robles-Escajeda1, Jose A Lopez-Saenz1
1Border Biomedical Research Center and Department of Biological Sciences, The University of Texas at El Paso, El Paso, TX, USA.
Objectives:
Drug resistance is the major determinant of chemotherapy failure, leading to relapse and tumor progression, demonstrating the urgent need for novel antineoplastic drugs. This study aimed to evaluate the anticancer potential of two novel pyrazole derivatives, P3C.1 and P3C.2, and to elucidate their mechanism of action in cancer cells.
Methods:
The cytotoxicity of the compounds was evaluated across 27 different cancer cell lines via a nuclear staining assay. Subsequent flow cytometric and biochemical analyses were performed to assess reactive oxygen species (ROS) generation, apoptosis induction, mitochondrial integrity, and cell cycle progression. Additional studies included transcriptome analyses and immunoassays to characterize the molecular mechanisms underlying drug activity.
Results:
Two novel pyrazole derivatives, P3C.1 and P3C.2, were identified with potent cytotoxicity on a variety of cancer cell lines. Among the adherent cell lines tested, the triple-negative breast cancer (TNBC) cell line MDA-MB-231 exhibited the highest sensitivity to both compounds and was therefore selected for further experimentation. In vitro assays demonstrated that both compounds induced ROS generation, mitochondrial membrane depolarization, cell cycle arrest and apoptosis. Whole-transcriptome sequencing of P3C.1 and P3C.2-treated MDA-MB-231 and two lymphoblastic leukemia cell lines revealed four genes in common associated with cell signaling and membrane dynamics. Connectivity Map (CMAP) database comparisons of shared genes for each cancer subtype revealed a strong similarity between the two compounds with tubulin inhibitors, and subsequent assays confirmed that these compounds act as microtubule-disrupting agents. Moreover, protein phosphorylation analysis indicated that both compounds induced hyperphosphorylation of JNK, and ERK1/2, along with hypophosphorylation of p38 kinases.
Conclusions:
P3C.1 and P3C.2 emerged as promising anti-breast cancer agents with dual mechanisms of action involving microtubule disruption and altered kinase signaling, leading to induction of apoptosis.
Insights
Two novel pyrazole derivatives, P3C.1 and P3C.2, show potent anticancer activity by disrupting microtubules and altering kinase signaling, leading to apoptosis. These compounds are promising agents for treating breast cancer and other malignancies.
Area of Science:
- Medicinal Chemistry
- Molecular Biology
- Cancer Research
Background:
- Drug resistance is a major challenge in chemotherapy, necessitating the development of novel antineoplastic drugs.
- Pyrazole derivatives represent a class of compounds with potential anticancer properties.
Purpose of the Study:
- To evaluate the anticancer potential of two novel pyrazole derivatives, P3C.1 and P3C.2.
- To elucidate the mechanism of action of these compounds in cancer cells.
Main Methods:
- Cytotoxicity was assessed across 27 cancer cell lines using nuclear staining assays.
- Flow cytometry and biochemical analyses were used to evaluate reactive oxygen species (ROS) generation, apoptosis, mitochondrial integrity, and cell cycle progression.
- Whole-transcriptome sequencing and immunoassays were performed to characterize molecular mechanisms.
Main Results:
- P3C.1 and P3C.2 exhibited potent cytotoxicity against various cancer cell lines, with high sensitivity observed in the triple-negative breast cancer (TNBC) cell line MDA-MB-231.
- Both compounds induced ROS generation, mitochondrial membrane depolarization, cell cycle arrest, and apoptosis.
- Transcriptome analysis revealed that P3C.1 and P3C.2 act as microtubule-disrupting agents and alter kinase signaling pathways (JNK, ERK1/2, p38).
Conclusions:
- P3C.1 and P3C.2 are promising anticancer agents, particularly for breast cancer.
- These compounds possess dual mechanisms of action, involving microtubule disruption and modulation of kinase signaling.
- The induction of apoptosis is a key outcome of their anticancer activity.
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