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As the carrier of the inheritable information in cells, DNA has been the target of metal complexes for over 40 years. In this chapter, the focus will be on non-covalent recognition of the highly structured DNA surface by substitutionally inert metal complexes capable of either sliding in between the normal base pairs as metallointercalators or flipping out thermodynamically destabilized mispaired nucleobases as metalloinsertors. While most of the compounds discussed are based on ruthenium(II) and rhodium(III) due to their stable octahedral coordination environment and low-spin 4d6 electronic configuration, most recent developments of alternative metal complexes, based on both transition metals and main group elements, will also be highlighted. A particular focus of the coverage is on structural data from X-ray structure analysis, which now provides details of the interaction at unprecedented details and will enable development of novel DNA binding probes for fundamental studies as well as new anticancer drug candidates.
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http://dx.doi.org/10.1515/9783110470734-020 | DOI Listing |
Front Chem
December 2024
Department of Chemistry and Biochemistry, Auburn University, Auburn, AL, United States.
High-level quantum chemical calculations are performed for the (NH)MO and (NH)MO species (M = Ti-Cu), extending our previous work on the bare MO ions. The potential energy curves along the M-O distance are constructed for the ground and multiple excited electronic states of (NH)MO and are compared to those of MO. We see that ammonia stabilizes the oxo states (MO) over the oxyl (MO) ones.
View Article and Find Full Text PDFBMC Res Notes
December 2024
Laboratory of New Substances and Materials, JSC Scientific Center for Anti-Infectious Drugs, Almaty, 050060, Kazakhstan.
Objective: The objective of this study is to synthesize and comprehensively characterize a novel iodine-containing coordination compound, di-aminopropionic acid hydrogen tri-iodide. This involves determining its structural, physicochemical, and thermal properties, as well as evaluating its antimicrobial activity against a range of bacterial strains, including multidrug-resistant pathogens. The aim is to explore the potential of this compound as a candidate for developing new antibacterial agents to address the challenge of antibiotic resistance.
View Article and Find Full Text PDFInorg Chem
December 2024
Department of Medicinal and Applied Chemistry, Kaohsiung Medical University, Kaohsiung 80708, Taiwan.
Density functional theory (DFT) calculations indicate that [Co(HO)] reacts with two HO molecules to form [(HO)Co(OOH)(HO)] reactant complexes, which decompose through three distinct pathways depending on the relative orientation between the coordinated OOH and HO ligands. The reactive intermediates produced via these activation pathways include hydroperoxyl (OOH)/superoxide (O) radicals, singlet oxygen (O), and Co(III) species [(HO)Co(O)], [(HO)Co(OH)], and [(HO)Co(OH)]. The Co(III) species display from moderate to strong oxidizing abilities that have long been overlooked.
View Article and Find Full Text PDFJ Immunother Cancer
December 2024
Department of Medicine, Division of Hematology and Medical Oncology, Columbia University Irving Medical Center, Herbert Irving Comprehensive Cancer Center, New York, New York, USA
Introduction: Neoadjuvant chemoimmunotherapy has achieved overall survival (OS) benefit for patients with resectable non-small cell lung cancer (NSCLC). Here, we present outcomes after 3 years of follow-up from the first reported study of neoadjuvant atezolizumab+chemotherapy.
Methods: This open-label, multicenter single-arm investigator-initiated phase II study conducted at three US hospitals tested up to four cycles of atezolizumab, carboplatin, and nab-paclitaxel prior to surgery.
Huan Jing Ke Xue
January 2025
College of Environmental and Resource Sciences, Zhejiang A&F University, Lin'an 311300, China.
Cadmium (Cd) and arsenic (As) often coexist in water and agricultural soils around mining areas, and it is difficult to remove them at the same time due to their opposite chemical behaviors. Therefore, this study employed a co-precipitation-pyrolysis method to synthesize silica-based magnetic biochar (SMB) materials for the remediation of water contaminated with both Cd and As. The optimization of preparation conditions involved introducing three different types of silicates (NaSiO, CaSiO,and SiO) into the biomass-magnetite mixture, followed by pyrolysis at various temperatures (300℃, 500℃, and 700℃), and the optimal preparation conditions were determined based on the composite batch experiments.
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