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7-Azaindole, 2,7-diazaindole, and 1H-pyrazole as core structures for novel anticancer agents with potential
Lukas Gorecki1, Darina Muthna2, Sara Merdita3
1Biomedical Research Centre, University Hospital Hradec Kralove, Sokolska 581, 500 05, Hradec Kralove, Czech Republic.
Abstract:
Chemoresistance of cancer cells is a hallmark of treatment failure and the poor patient prognosis. The mechanism of resistance is often connected to the overexpression of specific kinases involved in DNA damage response cascade. Contrary, selected kinase inhibition can augment cancer cell sensitization to conventional therapy, enabling more efficient treatment. Among those kinases, ataxia-telangiectasia and Rad3-related kinase (ATR), the major responder to replication stress, stands out as one of the most attractive targets. Inspired by clinical candidates targeting ATR, we designed and prepared a small, focused library of 40 novel compounds building on 7-azaindoles, 2,7-diazaindoles, and 1H-pyrazoles as core structures. All the compounds alone or combined with cisplatin (CDDP) were screened against a panel of nine cancer cell lines and one healthy cell line. Three highlighted compounds (3, 22, and 29) were selected for broad oncology panel screening containing 104 kinases. Only compound 29, the 2,7-diazaindole representative, showed ATR inhibitory efficacy with the IC50 around 10 μM. In contrast, the compound 22, 7-azaindole congener with the most pronounced cytotoxicity profile exceeding CDDP alone or in combination with CDDP, expressed the multi-kinase activity. Highlighted representatives, including compound 29, were also effective alone against primary glioblastoma. Overall, we showed that 7-azaindole, and 2,7-diazaindole scaffolds could be considered novel pharmacophores delivering anticancer activity.
Insights
Novel 7-azaindole and 2,7-diazaindole compounds show anticancer activity. Compound 29 inhibits ataxia-telangiectasia and Rad3-related kinase (ATR), while compound 22 exhibits potent cytotoxicity, offering new therapeutic strategies.
Area of Science:
- Medicinal Chemistry
- Cancer Biology
- Drug Discovery
Background:
- Cancer chemoresistance is a major cause of treatment failure.
- Overexpressed kinases in DNA damage response pathways contribute to resistance.
- Targeting kinases like ATR (ataxia-telangiectasia and Rad3-related kinase) is a promising strategy.
Purpose of the Study:
- To design and synthesize novel compounds based on 7-azaindole, 2,7-diazaindole, and 1H-pyrazole scaffolds.
- To evaluate the anticancer activity and kinase inhibitory potential of these novel compounds.
- To identify new pharmacophores for cancer therapy.
Main Methods:
- Synthesis of a focused library of 40 novel compounds.
- Screening of compounds alone and with cisplatin (CDDP) against nine cancer cell lines and one healthy cell line.
- In vitro kinase panel screening (104 kinases) for lead compounds.
- Cytotoxicity and ATR inhibitory assays.
Main Results:
- Compound 29 (2,7-diazaindole) demonstrated ATR inhibitory activity (IC50 ~10 μM).
- Compound 22 (7-azaindole) exhibited significant cytotoxicity, outperforming cisplatin alone.
- Both compounds showed efficacy against primary glioblastoma.
- 7-azaindole and 2,7-diazaindole scaffolds identified as potential anticancer pharmacophores.
Conclusions:
- Novel 7-azaindole and 2,7-diazaindole derivatives possess significant anticancer properties.
- Compound 29 represents a potential ATR inhibitor, while compound 22 shows broad cytotoxic effects.
- These scaffolds offer a promising foundation for developing new cancer therapeutics.
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