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Published on: February 9, 2021
Imidazole-Functionalized Thieno[3,2-c]Quinoline Hybrids in Aggressive Medullary Thyroid Cancer Cell Models:
Gabriele La Monica1, Alessia Bono1,2, Federica Alamia1
1Dipartimento di Scienze e Tecnologie Biologiche Chimiche e Farmaceutiche "STEBICEF", University of Palermo, 90123 Palermo, Italy.
Abstract:
Background/Objectives: Medullary thyroid carcinoma (MTC) is a rare and aggressive endocrine malignancy frequently associated with RET alterations and dysregulation of RET-associated signaling pathways. In previous studies, first-generation nitro-substituted thieno[3,2-c]quinolines 1 showed promising antiproliferative activity in TT(RETC634R) cells, while subsequent imidazole-based optimization generated second-generation derivatives 2 with broad-spectrum antiproliferative activity in the NCI-60 human tumor cell line panel. Since thyroid cancer models are not included in the NCI-60 platform, the present study aimed to evaluate the antiproliferative potential of these optimized derivatives in clinically relevant MTC cellular models. Methods: Imidazole-functionalized thieno[3,2-c]quinoline derivatives (2a-j) were evaluated against TT(RETC634R) and MZ-CRC-1(RETM918T) cells. The most active compounds were further characterized through induced fit docking (IFD), MM-GBSA calculations, and molecular dynamics (MD) simulations on representative molecular targets. In silico ADME/Toxicity profiling was also performed to assess their developability. Results: Several derivatives exhibited potent activity in both MTC cell models, with multiple compounds achieving submicromolar potency. Compounds 2b and 2g emerged as the most active derivatives in TT(RETC634R) cells, whereas compounds 2d and 2i displayed the most favorable profile in the aggressive MZ-CRC-1(RETM918T) model, thereby extending the biological applicability of the scaffold to an additional clinically relevant RET-mutant context. Computational studies supported RET as the most plausible molecular target for all selected lead compounds, while favorable PI3Kα interaction profiles were predicted for selected derivatives, suggesting distinct target engagement profiles within the series. The most promising derivatives also exhibited an overall favorable predicted ADME/Toxicity profile. Conclusions: The present findings support the success of imidazole-based optimization of the thieno[3,2-c]quinoline scaffold and identify thieno[3,2-c]quinolines 2 as promising lead structures for the future development of novel anti-MTC agents. Further biological and mechanistic investigations will be necessary to better clarify the molecular mechanisms underlying their antiproliferative activity and to guide future lead optimization studies.
Insights
New thieno[3,2-c]quinoline derivatives show potent antiproliferative activity against medullary thyroid carcinoma (MTC) cell models. These imidazole-optimized compounds, targeting RET mutations, represent promising leads for developing novel anti-MTC agents.
Area of Science:
- Medicinal Chemistry
- Oncology
- Endocrinology
Background:
- Medullary thyroid carcinoma (MTC) is an aggressive endocrine cancer often linked to RET alterations.
- Previous thieno[3,2-c]quinoline derivatives showed antiproliferative effects, prompting further optimization.
- Existing cancer cell line panels lack specific thyroid cancer models for drug screening.
Purpose of the Study:
- To evaluate the antiproliferative potential of optimized imidazole-functionalized thieno[3,2-c]quinoline derivatives.
- To assess these compounds in clinically relevant medullary thyroid carcinoma (MTC) cellular models.
- To investigate the molecular targets and developability of the most active derivatives.
Main Methods:
- Synthesis and evaluation of imidazole-functionalized thieno[3,2-c]quinoline derivatives (2a-j) in TT(RETC634R) and MZ-CRC-1(RETM918T) MTC cells.
- Computational studies including induced fit docking (IFD), MM-GBSA, and molecular dynamics (MD) simulations.
- In silico ADME/Toxicity profiling for developability assessment.
Main Results:
- Several derivatives demonstrated potent submicromolar antiproliferative activity in both MTC cell lines.
- Compounds 2b and 2g were most active in TT(RETC634R) cells; 2d and 2i showed high efficacy in MZ-CRC-1(RETM918T) cells.
- Computational analysis identified RET as a likely target, with some derivatives showing favorable PI3Kα interactions and predicted ADME/Toxicity profiles.
Conclusions:
- Imidazole-based optimization successfully enhanced the thieno[3,2-c]quinoline scaffold's antiproliferative activity.
- The identified thieno[3,2-c]quinolines (2) are promising lead structures for novel anti-MTC drug development.
- Further research is needed to elucidate molecular mechanisms and guide lead optimization for anti-MTC agents.
