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We mapped the hydrophobic floor, an interesting subsite at the active site of DNA gyrase B (GyrB) from . We synthesized three new compounds with pendant groups targeting the hydrophobic floor and evaluated their inhibitory activities on DNA gyrase. A new benzothiazole derivative with a benzyl substituent at position 3 of the benzothiazole ring exhibited strong inhibitory activity against DNA gyrase (IC = 19 ± 3 nM). An exhaustive conformational study using potential energy surfaces (PESs) allowed us to map the new subsite evaluating all critical points on the surface and conformational interconversion pathways. We analyzed the molecular interactions using QTAIM calculations. Our data provide insights into the mechanism of action of these new ligands at the molecular level. Theoretical and experimental data suggest that new ligand optimization strategies should focus on strengthening interactions at the hydrophobic floor while preserving the binding mode of the main scaffold.
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http://dx.doi.org/10.1039/d4md00498a | DOI Listing |
Biochim Biophys Acta Proteins Proteom
July 2025
Interdisciplinary Center for Biochemical Research, University of Mogi das Cruzes, Av Dr. Cândido Xavier de Almeida e Souza, 200, 08780-991, Mogi das Cruzes, Brazil; Technological Research Center, University of Mogi das Cruzes, Av Dr. Cândido Xavier de Almeida e Souza, 200, 08780-991, Mogi das Cruz
Metacaspases are members of the CD clan and share structural similarities with mammalian caspases but possess unique features. This study delves into the Candida albicans metacaspase CaMCA-Ia, a type I metacaspase. CaMCA-Ia demonstrates Ca-dependent autoprocessing and presents a hydrophobic N-terminal, which differs from that of type II metacaspases.
View Article and Find Full Text PDFRice (N Y)
May 2025
Department of Biology, University of Copenhagen, Universitetsparken 4, 3rd floor, Copenhagen, 2100, Denmark.
Direct-seeded rice offers multiple advantages, including lower labour costs and a reduced CO footprint. However, the risk of flooding during germination and at the early seedling and vegetative stages is high. Therefore, the capacity for anaerobic germination in waterlogged soils, as well as tolerance to partial and complete submergence, are both essential.
View Article and Find Full Text PDFSci Total Environ
June 2025
Graduate School of Environmental and Life Science, Okayama University, 3-1-1, Tsushima-Naka, Kita-Ku, Okayama 700-8530, Japan.
Hydrophobic substances in organic matter (OM) produced by various plant materials cause water repellency (WR). Waxy or oily hydrophobic plant materials are highly prone to wildfire, converting plant litter into ash, and altering the chemical composition of OM and WR. This study examined how temperature and exposure durations to heat affect the chemical composition of hydrophobic plant materials and their influence on WR of the respective burnt ash.
View Article and Find Full Text PDFMolecules
March 2025
Shanghai Tekanbio Pharm-Tech Co., Ltd., Room 4001, Floor 4, Unit 3, Building 8, No. 160, Basheng Road, China (Shanghai) Pilot Free Trade Zone, Shanghai 200120, China.
In this study, we constructed a linear antibody-drug conjugate (ADC), 7300-LP1003, by coupling the camptothecin derivative 095 to a linker through an ether bond. In vitro enzyme experiments indicated that LP1003 releases 095 through the action of tissue cathepsin B. Therefore, we introduced lysine pairs with different water-soluble substituents to further modify the linker and synthesized side-chain ADCs 7300-LP3004 and 7300-LP2004, modified by polysarcosine and polyethylene glycol, respectively.
View Article and Find Full Text PDFInt J Biol Macromol
May 2025
Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources and International Innovation Center for Forest Chemicals and Materials, Nanjing Forestry University, Nanjing 210037, China. Electronic address:
Green self-healing coatings, particularly lignin-based coatings, represent a breakthrough solution for sustainable metal protection and serve as a promising alternative to traditional petroleum-derived coatings. However, the practical application of pure lignin coatings is limited by their inherent structural rigidity and low hydrophobicity. To address these challenges, a series of lignin-based hydrophobic self-healing coatings were developed by functionalizing lignin with methacrylate groups, conjugating it with corrosion inhibitors, and subsequently polymerizing it with bis(2-methylacrylyl) oxyethyldisulfide (BMOD) and hydrophobic monomers.
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