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Synthesis and evaluation of the mutagenicity of 3-alkylpyridine marine alkaloid analogues with anticancer potential. | LitMetric

AI Article Synopsis

  • Theonella sp is a source of biologically-active 3-alkylpyridine alkaloids (3-APAs) that have shown potential as antimalarial agents.
  • Two new 3-APA analogues, designed with the thiocyanate group, were synthesized and tested against Plasmodium falciparum, revealing good antimalarial activity but high cytotoxicity towards human cells.
  • Further testing on human cancer cell lines showed one compound had selective toxicity, inducing chromosomal mis-segregation and triggering apoptosis, suggesting its potential as an anticancer agent.

Article Abstract

Theonella sp is an important source of biologically-active 3-alkylpyridine alkaloids (3-APAs) that has shown a wide variety of promising biological effects. In the present work, two new 3-APAs analogues were synthesized based on molecular modeling studies to act as potential antimalarial agents. These theoneladin C analogues, containing the thiocyanate group in their chemical structures, were synthesized and evaluated against Plasmodium falciparum (IC values ranging from 2.3 to 5.5μM). The structural and energetic analysis demonstrated a high chemical affinity of the two analogues for their target, the heme group. However, despite the good antimalarial activity, the compounds exhibited high cytotoxicity and a lack of selectivity for human cell lines. These findings prompted us to evaluate the cytotoxicity of these compounds against human cancer cell lines. In order to better understand the mechanisms responsible for the toxicity, a variety of genotoxicity assays were performed in vitro. One of the compounds assayed presented an interesting selectivity and high toxicity to the human colon cancer cell line RKO-AS45-1. In addition, the results of the micronucleus assay, comet assay, Ames assay and annexin-V/propidium iodide staining showed that the synthetic alkaloids were able to induce chromosomal mis-segregation and trigger cell death by apoptosis. These results demonstrate that the compounds assessed herein may be promising prototypes of anticancer chemotherapeutic agents.

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http://dx.doi.org/10.1016/j.mrgentox.2017.11.006DOI Listing

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