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Published on: November 10, 2013
Multifaceted Sulfonamide-Derived Thiosemicarbazones: Combining Metal Chelation and Carbonic Anhydrases Inhibition in
Mónica Martínez-Montiel1,2, Giulia Arrighi1,3, Paloma Begines1,3
1Departamento de Química Orgánica, Facultad de Química, Universidad de Sevilla, Apartado 1203, E-41071 Seville, Spain.
Abstract:
The selective inhibition of key enzymes, such as carbonic anhydrases (CAs IX and XII), which are overexpressed in cancer tissues, has emerged as a promising strategy in cancer research. However, a multitarget approach is often preferred to achieve enhanced therapeutic outcomes. In this study, aryl sulfonamides were conjugated with a thiosemicarbazone moiety to enable dual functionality: the inhibition of CAs and the chelation of metal cations. Several structural factors were systematically modified, including the position of the sulfonamido group, the length of the linker, the nature of the aromatic residue, and the type of substituents. Tumor-associated CAs IX and XII inhibition was evaluated using the stopped-flow CO2 hydrase assay, and the inhibition constants (K) were determined. The most promising compounds were further analyzed through molecular docking simulations. Metal chelation capabilities were evaluated using UV-Vis spectroscopy, while antiproliferative activities were measured using the sulforhodamine B (SBR) assay. Additionally, holotomographic 3D microscopy was employed to investigate the mechanisms of cell death. Sulfonamido-derived Schiff bases were synthesized through a three-step procedure that did not require column chromatography purification: (1) isothiocyanation of amino-sulfonamides, (2) nucleophilic addition of hydrazine, and (3) acid-promoted condensation with different aldehydes (benzaldehydes or pyridine-2-carboxaldehyde). The synthesized compounds exhibited inhibition of CAs in the low nanomolar to submicromolar range, with selectivity largely influenced by structural features. Notably, the m-sulfonamide derivative 5b, bearing a pyridin-2-yl residue, demonstrated potent and selective inhibition of CA IX (Ki = 4.9 nM) and XII (Ki = 5.6 nM). Additionally, it efficiently chelated Fe2+, Fe3+, and Cu2+ and showed promising antiproliferative activity (GI50 4.5-10 µM). Mechanistic studies revealed that apoptosis was involved in its mode of action. Therefore, the synergistic integration of sulfonamides and thiosemicarbazones represents an effective strategy for the development of multimodal anticancer agents.
Insights
New dual-action anticancer agents combine sulfonamides and thiosemicarbazones to inhibit carbonic anhydrases (CAs) and chelate metals. Compound 5b shows potent, selective inhibition of CAs IX and XII, demonstrating promising anticancer activity.
Area of Science:
- Medicinal Chemistry
- Oncology
- Biochemistry
Background:
- Selective inhibition of carbonic anhydrases (CAs IX and XII) overexpressed in cancer is a promising therapeutic strategy.
- Multitarget approaches are often preferred for enhanced therapeutic outcomes in cancer treatment.
- Aryl sulfonamides conjugated with thiosemicarbazone moieties offer dual functionality for cancer therapy.
Purpose of the Study:
- To design and synthesize novel aryl sulfonamide-thiosemicarbazone conjugates as potential multimodal anticancer agents.
- To evaluate the inhibitory activity against tumor-associated carbonic anhydrases IX and XII.
- To assess metal chelation capabilities and antiproliferative effects against cancer cells.
Main Methods:
- Synthesis of sulfonamido-derived Schiff bases through a three-step procedure.
- Evaluation of CA IX and XII inhibition using the stopped-flow CO2 hydrase assay.
- Assessment of metal chelation via UV-Vis spectroscopy and antiproliferative activity using the sulforhodamine B assay.
- Molecular docking simulations and holotomographic 3D microscopy for mechanistic studies.
Main Results:
- Synthesized compounds exhibited CA inhibition in the low nanomolar to submicromolar range.
- The *m*-sulfonamide derivative 5b showed potent and selective inhibition of CA IX (Ki = 4.9 nM) and XII (Ki = 5.6 nM).
- Compound 5b effectively chelated Fe2+, Fe3+, and Cu2+ and displayed promising antiproliferative activity (GI50 4.5–10 µM).
- Mechanistic studies indicated that apoptosis is involved in the mode of action of compound 5b.
Conclusions:
- The synergistic integration of sulfonamides and thiosemicarbazones is an effective strategy for developing multimodal anticancer agents.
- Compound 5b represents a promising lead candidate for further investigation as a targeted cancer therapeutic.
- Structural modifications significantly influence CA inhibition selectivity and overall anticancer efficacy.
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