Synthesis and Anticancer Activity of Mitotic-Specific 3,4-Dihydropyridine-2(1 H)-thiones

Int J Mol Sci. 2021 Feb 28;22(5):2462. doi: 10.3390/ijms22052462.

Abstract

Most anticancer drugs target mitosis as the most crucial and fragile period of rapidly dividing cancer cells. However the limitations of classical chemotherapeutics drive the search for new more effective and selective compounds. For this purpose structural modifications of the previously characterized pyridine aalog (S1) were incorporated aiming to obtain an antimitotic inhibitor of satisfactory and specific anticancer activity. Structure-activity relationship analysis of the compounds against a panel of cancer cell lines allowed to select a compound with a thiophene ring at C5 of a 3,4-dihydropyridine-2(1H)-thione (S22) with promising antiproliferative activity (IC50 equal 1.71 ± 0.58 µM) and selectivity (SI = 21.09) against melanoma A375 cells. Moreover, all three of the most active compounds from the antiproliferative study, namely S1, S19 and S22 showed better selectivity against A375 cells than reference drug, suggesting their possible lower toxicity and wider therapeutic index. As further study revealed, selected compounds inhibited tubulin polymerization via colchicine binding site in dose dependent manner, leading to aberrant mitotic spindle formation, cell cycle arrest and apoptosis. Summarizing, the current study showed that among obtained mitotic-specific inhibitors analogue with thiophene ring showed the highest antiproliferative activity and selectivity against cancer cells.

Keywords: anticancer agents; colchicine-binding site; dihydropyridine; mitotic spindle; tubulin inhibitors.

MeSH terms

  • Antineoplastic Agents / chemical synthesis*
  • Antineoplastic Agents / pharmacology*
  • Apoptosis
  • Cell Cycle Checkpoints*
  • Cell Proliferation*
  • Dihydropyridines / chemistry*
  • Drug Design
  • Humans
  • Melanoma / drug therapy*
  • Melanoma / pathology
  • Mitosis
  • Molecular Structure
  • Structure-Activity Relationship
  • Thiones / chemistry*
  • Tubulin Modulators / chemical synthesis
  • Tubulin Modulators / pharmacology
  • Tumor Cells, Cultured

Substances

  • Antineoplastic Agents
  • Dihydropyridines
  • Thiones
  • Tubulin Modulators