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1.
Dalton Trans ; 53(19): 8315-8327, 2024 May 14.
Artigo em Inglês | MEDLINE | ID: mdl-38666341

RESUMO

The development of coordination compounds with antineoplastic therapeutic properties is currently focused on non-covalent interactions with deoxyribonucleic acid (DNA). Additionally, the interaction profiles of these compounds with globular plasma proteins, particularly serum albumin, warrant thorough evaluation. In this study, we report on the interactions between biomolecules and complexes featuring hydrazone-type imine ligands coordinated with vanadium. The potential to enhance the therapeutic efficiency of these compounds through mitochondrial targeting is explored. This targeting is facilitated by the derivatization of ligands with triphenylphosphonium groups. Thus, this work presents the synthesis, characterization, interactions, and cytotoxicity of dioxidovanadium(V) complexes (C1-C5) with a triphenylphosphonium moiety. These VV-species are coordinated to hydrazone-type iminic ligands derived from (3-formyl-4-hydroxybenzyl)triphenylphosphonium chloride ([AH]Cl) and aromatic hydrazides ([H2L1]Cl-[H2L5]Cl). The structures of the five complexes were elucidated through single-crystal X-ray diffraction and vibrational spectroscopies, confirming the presence of dioxidovanadium(V) species in various geometries with degrees of distortion (τ = 0.03-0.50) and highlighting their zwitterionic characteristics. The molecular structural stability of C1-C5 in solution was ascertained using 1H, 19F, 31P, and 51V-nuclear magnetic resonance. Moreover, their interactions with biomolecules were evaluated using diverse spectroscopic methodologies and molecular docking, indicating moderate interactions (Kb ≈ 104 M-1) with calf thymus DNA in the minor groove and with human serum albumin, predominantly in the superficial IB subdomain. Lastly, the cytotoxic potentials of these complexes were assessed in keratinocytes of the HaCaT lineage, revealing that C1-C5 induce a reduction in metabolic activity and cell viability through apoptotic pathways.


Assuntos
Antineoplásicos , Complexos de Coordenação , DNA , Compostos Organofosforados , Vanádio , Humanos , Vanádio/química , Vanádio/farmacologia , Complexos de Coordenação/farmacologia , Complexos de Coordenação/química , Complexos de Coordenação/síntese química , Antineoplásicos/farmacologia , Antineoplásicos/química , Antineoplásicos/síntese química , Compostos Organofosforados/química , Compostos Organofosforados/farmacologia , DNA/metabolismo , DNA/química , Sobrevivência Celular/efeitos dos fármacos , Hidrazinas/química , Hidrazinas/farmacologia , Animais , Simulação de Acoplamento Molecular , Albumina Sérica Humana/química , Albumina Sérica Humana/metabolismo , Estrutura Molecular , Ligantes , Linhagem Celular Tumoral , Ensaios de Seleção de Medicamentos Antitumorais
2.
J Inorg Biochem ; 239: 112070, 2023 02.
Artigo em Inglês | MEDLINE | ID: mdl-36450221

RESUMO

With the increasing development of metallopharmaceuticals, coordination compounds become viable alternatives for therapeutic uses. Despite the importance of platinum derivatives in this area, first-row transition metals complexes are welcome due to their characteristics. Vanadium is a promising metal in this context, as it has a range of compounds with different biological applications, including anticancer therapeutic effects. In this effort, the study of interactions between coordination compounds with deoxyribonucleic acid and with human serum albumin is fundamental. In this way, ten iminic ligands were synthesized by condensing p-substituted aromatic benzohydrazides (OH, CH3, H, NO2, and NH2) with salicylaldehyde (L1As-L5As) or pyridoxal hydrochloride (L1P-L5P). These ligands have characteristics that allow the tridentate coordination of vanadium cations, leading to the formation of ten vanadium(V) complexes (C1As-C5As and C1P-C5P) with different structural features, all characterized by single-crystal X-ray diffraction, UV-Vis and infrared spectroscopies, and cyclic voltammetry. In addition, the complexes were tested for their interactions with calf thymus deoxyribonucleic acid and human serum albumin by spectroscopic assays and molecular docking calculations. These new results can contribute to further research and provide different ways to design new vanadium complexes with biological applications.


Assuntos
Complexos de Coordenação , Vanádio , Humanos , Vanádio/química , Simulação de Acoplamento Molecular , Ligantes , Albumina Sérica Humana/química , DNA/química , Tomografia Computadorizada por Raios X , Complexos de Coordenação/farmacologia , Complexos de Coordenação/química
3.
J Inorg Biochem ; 233: 111854, 2022 08.
Artigo em Inglês | MEDLINE | ID: mdl-35636301

RESUMO

Helical complexes composed of organic ligand strands and metallic centers, called helicates, present interactions with biomacromolecules, such as deoxyribonucleic acid, as one of their main biological applications in bioinorganic chemistry. Despite the potential antineoplastic and antibacterial results of the interactions between helicates and biomacromolecules, there is still a gap of research in the literature, primarily in terms of solubility in aqueous media. In this study, we present the synthesis, structural analysis, and interaction with biomacromolecules of two water-soluble cobalt(II) double-stranded helicates: [CoII2L22][CoII(NCS)4]∙9H2O (C1) and [CoII2L42]Cl2∙11H2O (C2). These complexes are obtained from iminic ligands (L2 and L4) derived from pyridoxal, a vitamin B6 aldehyde derivative. Through spectroscopic assays, these helical complexes were shown to have weak and moderate binding capacities with calf-thymus deoxyribonucleic acid and human serum albumin, respectively. The theoretical assays suggest that C1 and C2 interact with the minor groove of deoxyribonucleic acid and have different main binding sites with human serum albumin. Furthermore, Van der Waals and hydrogen bonds were shown to be the main intermolecular forces for these C1-C2:biomacromolecules interactions.


Assuntos
Cobalto , Piridoxal , Cobalto/química , DNA/química , Humanos , Ligantes , Albumina Sérica Humana , Água/química
4.
J Inorg Biochem ; 200: 110800, 2019 11.
Artigo em Inglês | MEDLINE | ID: mdl-31491736

RESUMO

The present study reports the biological evaluation of vanadium(V) complexes (1-3) against three different proteins: tyrosinase, acetylcholinesterase (AChE), and human serum albumin (HSA), which were studied by spectroscopic techniques and molecular docking. Despite the synthesis and characterization of complexes 1 and 2 having already previously described, complex 3 is a novel dioxidovanadium(V) derivative. Complex 1 can activate both tyrosinase and AChE enzymes in about 11.5 and 47.0%, respectively. On the other hand, complexes 2 and 3 inhibited the same enzymes (1.30 and 46.0% for tyrosinase and 20.0 and 21.9% for AChE, respectively). Molecular docking calculations suggested that the presence of the hydroxyl group in complex 1 is essential to activate tyrosinase enzymes. According to theoretical analysis, hydrogen bonding, van der Waals, and hydrophobic forces are the main binding interactions for each V(V) complex and AChE. Moreover, the interaction between HSA and vanadium(V) complexes occurs via ground-state association, being only enthalpically driven for complexes 1 and 2 and entropically and enthalpically driven for complex 3. The interaction is spontaneous for all samples and the binding modes do not perturb significantly the secondary and surface structures of the albumin. As there are few reported cases in the literature that explore vanadium complexes against these three proteins, the present results may contribute to future studies by offering different scaffolds to design new vanadium(V) complexes in the hyperpigmentation process and Alzheimer's disease.


Assuntos
Acetilcolinesterase/química , Simulação de Acoplamento Molecular , Monofenol Mono-Oxigenase/química , Albumina Sérica Humana/química , Compostos de Vanádio/química , Humanos
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