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Network pharmacology and experimental insights into STAT3 inhibition by novel isoxazole derivatives of piperic acid in triple negative breast cancer.
Yatoo, G N; Bhat, Basharat A; Asif, Mohammad; Bhat, Sajad A; Gulzar, Farhana; Rashied, Fehmida; Wani, Abdul Haleem; Ahmed, Ishfaq; Zargar, Sajad Majeed; Mir, Mushtaq A; Banday, Javid A.
Affiliation
  • Yatoo GN; Department of Chemistry, National Institute of Technology Srinagar, J & K, India. Electronic address: yatoogn@gmail.com.
  • Bhat BA; Department of Bio-Resources, Amar Singh College Campus, Cluster University Srinagar, J&K, India.
  • Zubaid-Ul-Khazir; Department of Chemistry, National Institute of Technology Srinagar, J & K, India.
  • Asif M; Department of Chemistry, National Institute of Technology Srinagar, J & K, India.
  • Bhat SA; Department of Chemistry, National Institute of Technology Srinagar, J & K, India.
  • Gulzar F; Department of Chemistry, National Institute of Technology Srinagar, J & K, India.
  • Rashied F; Department of Chemistry, National Institute of Technology Srinagar, J & K, India.
  • Wani AH; Department of Chemistry, National Institute of Technology Srinagar, J & K, India; Department of Chemistry, Sri Pratap College Campus, Cluster University Srinagar, J&K, India.
  • Ahmed I; Department of Chemistry, National Institute of Technology Srinagar, J & K, India.
  • Zargar SM; Proteomics Laboratory, Division of Plant Biotechnology, SKUAST-K, Shalimar, J&K, India.
  • Mir MA; Department of Clinical Laboratory Sciences, College of Applied Medical Science, King Khalid University, Abha, Saudi Arabia.
  • Banday JA; Department of Chemistry, National Institute of Technology Srinagar, J & K, India. Electronic address: javidbanday@nitsri.net.
Fitoterapia ; 175: 105927, 2024 Jun.
Article in En | MEDLINE | ID: mdl-38548028
ABSTRACT
STAT3 is a crucial member within a family of seven essential transcription factors. Elevated STAT3 levels have been identified in various cancer types, notably in breast cancer (BC). Consequently, inhibiting STAT3 is recognized as a promising and effective strategy for therapeutic intervention against breast cancer. We herein synthesize a library of isoxazole (PAIs) from piperic acid [2E, 4E)-5-(2H-1,3-Benzodioxol-5-yl) penta-2,4-dienoic acid] on treatment with propargyl bromide followed by oxime under prescribed reaction conditions. Piperic acid was obtained by hydrolysis of piperine extracted from Piper nigrum. First, we checked the binding potential of isoxazole derivatives with breast cancer target proteins by network pharmacology, molecular docking, molecular dynamic (MD) simulation and cytotoxicity analysis as potential anti-breast cancer (BC) agents. The multi-source databases were used to identify possible targets for isoxazole derivatives. A network of protein-protein interactions (PPIs) was generated by obtaining 877 target genes that overlapped gene symbols associated with isoxazole derivatives and BC. Molecular docking and MD modelling demonstrated a strong affinity between isoxazole derivatives and essential target genes. Further, the cell viability studies of isoxazole derivatives on the human breast carcinoma cell lines showed toxicity in all breast cancer cell lines. In summary, our study indicated that the isoxazole derivative showed the significant anticancer activity. The results highlight the prospective utility of isoxazole derivatives as new drug candidates for anticancer chemotherapy, suggesting route for the continued exploration and development of drugs suitable for clinical applications.
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Full text: 1 Database: MEDLINE Main subject: STAT3 Transcription Factor / Fatty Acids, Unsaturated / Molecular Docking Simulation / Triple Negative Breast Neoplasms / Isoxazoles Language: En Journal: Fitoterapia Year: 2024 Type: Article

Full text: 1 Database: MEDLINE Main subject: STAT3 Transcription Factor / Fatty Acids, Unsaturated / Molecular Docking Simulation / Triple Negative Breast Neoplasms / Isoxazoles Language: En Journal: Fitoterapia Year: 2024 Type: Article