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Noscapine-Amino Acid Conjugates Suppress the Progression of Cancer Cells
Amardeep Awasthi1, Neeraj Kumar2, Abhijeet Mishra3
1Department of Chemistry, University of Delhi, Delhi-110007, India.
Abstract:
Lung cancer is the leading cause of cancer deaths globally; 1 in 16 people are diagnosed with lung cancer in their lifetime. Microtubules, a critical cytoskeletal assembly, have an essential role in cell division. Interference with the microtubule assembly leads to genetic instability during mitosis and cancer cell death. Currently, available antimitotic drugs such as vincas and taxanes are limited due to side effects such as alopecia, myelosuppression, and drug resistance. Noscapine, an opium alkaloid, is a tubulin-binding agent and can alter the microtubule assembly, causing cancer cell death. Amino acids are fundamental building blocks for protein synthesis, making them essential for the biosynthesis of cancer cells. However, the ability of amino acids in drug transportation has yet to be exploited in developing noscapine analogues as a potential drug candidate for cancer. Hence, in the present study, we have explored the ninth position of noscapine by introducing a hydroxymethylene group using the Blanc reaction and further coupled it with a series of amino acids to construct five target conjugates in good yields. The synthesized amino acid conjugate molecules were biologically evaluated against the A549 lung cancer cell line, among which the noscapine-tryptophan conjugate showed IC50 = 32 μM, as compared to noscapine alone (IC50 = 73 μM). Morphological changes in cancer cells, cell cycle arrest in the G1 phase, and ethidium bromide/acridine orange staining indicated promising anticancer properties. Molecular docking confirmed strong binding to tubulin, with a score of -41.47 kJ/mol with all 3D coordinates and significant involvement of molecular forces, including the hydrogen bonds and hydrophobic interactions. Molecular dynamics simulations demonstrated a stable binding of noscapine-tryptophan conjugate for a prolonged time (100 ns) with the involvement of free energy through the reaction coordinates analyses, solving the bioavailability of parent noscapine to the body.
Insights
Researchers developed novel noscapine-amino acid conjugates to combat lung cancer. The noscapine-tryptophan conjugate demonstrated enhanced anticancer activity and improved bioavailability compared to noscapine alone.
Area of Science:
- Medicinal Chemistry
- Molecular Pharmacology
- Cancer Biology
Background:
- Lung cancer remains a leading cause of cancer mortality worldwide.
- Current antimitotic drugs (vincas, taxanes) have limitations including side effects and drug resistance.
- Noscapine, an opium alkaloid, exhibits anticancer properties by targeting microtubules but requires improved drug delivery.
Purpose of the Study:
- To synthesize novel noscapine-amino acid conjugates to enhance anticancer efficacy.
- To investigate the potential of amino acids in improving noscapine's drug delivery and bioavailability.
- To evaluate the anticancer activity of these conjugates against lung cancer cell lines.
Main Methods:
- Synthesis of five noscapine-amino acid conjugates using the Blanc reaction and amino acid coupling.
- Biological evaluation of conjugates against the A549 lung cancer cell line.
- Molecular docking and molecular dynamics simulations to assess tubulin binding and stability.
Main Results:
- The noscapine-tryptophan conjugate exhibited superior efficacy (IC50 = 32 μM) compared to noscapine (IC50 = 73 μM).
- Conjugates induced morphological changes, G1 phase cell cycle arrest, and showed promising anticancer properties.
- Molecular docking revealed strong tubulin binding (-41.47 kJ/mol) with favorable interactions; simulations confirmed stable binding and improved bioavailability.
Conclusions:
- Noscapine-amino acid conjugation represents a viable strategy to develop potent lung cancer therapeutics.
- The noscapine-tryptophan conjugate shows significant potential as an improved anticancer agent.
- This approach addresses noscapine's bioavailability limitations, paving the way for clinical development.
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