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Fast and accurate estimation of lipophilicity for organofluorine molecules is in great demand for accelerating drug and materials discovery. A lipophilicity data set of organofluorine molecules (OFL data set), containing 1907 samples, is constructed through density functional theory (DFT) calculations and experimental measurements. An efficient and interpretable model, called PoLogP, is developed to predict the -octanol/water partition coefficient, log , of organofluorine molecules on the basis of the descriptors of polarization, which is a combination of polarity descriptors, including the molecular polarity index and molecular polarizability (α), and hydrogen bond (HBs) index, consisting of the number of donors () and acceptors ( and ). The present PoLogP with a combination of polarity descriptors is demonstrated to perform better than the dipole moment (μ) alone for the F-contained molecules. With the aid of a multilevel attention graph convolutional neural network model, the fast generation of polarity descriptors of organofluorine molecules could be achieved with the DFT accuracy based only on a topological molecular graph structure. The performance of PoLogP is further validated on synthesized organofluorine molecules and 2626 non-fluorinated molecules with satisfactory accuracy, highlighting the potential usage of PoLogP in high-throughput screening of the functional molecules with the desired solubility in various solvent media.
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http://dx.doi.org/10.1021/acs.jcim.2c01201 | DOI Listing |
ACS Cent Sci
August 2025
Key Laboratory of Molecular Synthesis and Functionalization Discovery, College of Chemistry, Fuzhou University, Fuzhou, 350108, China.
Glycosylseleno scaffolds exhibit wide-ranging applications in multidisciplinary fields, particularly in drug discovery and biophysical chemistry, where they serve as valuable tools for biomolecular structural analysis. However, efficient methods toward glycosylseleno scaffolds remain underexplored. Herein, we present the design of a novel class of bench-stable reagents, glycosylseleno-sulfonates, which uniquely integrate radical reactivity with electrophilic properties, thereby facilitating the straightforward incorporation of glycosylseleno moieties under mild reaction conditions.
View Article and Find Full Text PDFJACS Au
July 2025
Pritzker School of Molecular Engineering, The University of Chicago, Chicago, Illinois 60637, United States.
Designing organic fluorescent molecules with tailored optical properties has been a long-standing challenge. Recently, statistical models have opened new avenues for tackling this problem. Inverse design has attracted considerable attention in organic materials science; however, most existing approaches focus on arbitrary design or theoretical properties.
View Article and Find Full Text PDFJ Med Chem
July 2025
State Key Laboratory of Drug Research, Drug Discovery and Design Center, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai 201203, China.
Fluorination is common in drug design and may significantly enhance bioactivity, although the underlying mechanism is not elucidated. We noticed a coexisting interaction pattern, viz., F···H and F···O/N/S interactions between organofluorines and protein binding pockets via fluorine atoms.
View Article and Find Full Text PDFJ Org Chem
July 2025
College of Material, Chemistry and Chemical Engineering, Key Laboratory of Organosilicon Chemistry and Material Technology of Ministry of Education, Hangzhou Normal University, Hangzhou, Zhejiang 311121, People's Republic of China.
We report a Zn-mediated reductive cross-coupling of alkyl sulfonates with -sulfenylsuccinimides or thiosulfonates for the efficient construction of C()-enriched sulfides. This method provides rapid access to structurally diverse unsymmetrical alkyl sulfides with broad functional group tolerance. The synthetic utility of this protocol is further demonstrated through scalable synthesis, late-stage modification of complex bioactive molecules, and downstream derivatizations.
View Article and Find Full Text PDFAcc Chem Res
July 2025
Department of Chemistry, Biochemistry and Pharmaceutical Sciences, University of Bern, Freiestrasse 3, 3012 Bern, Switzerland.
ConspectusFluorine is an essential element in pharmaceuticals, agrochemicals, and material sciences, significantly enhancing the bioactivity, metabolic stability, and physicochemical properties of organic molecules. In medicinal chemistry, nearly 20% of marketed drugs contain at least one fluorine atom within their core structure. Despite its widespread importance, naturally occurring organofluorine compounds are exceedingly rare, necessitating the development of productive synthetic strategies for fluorine incorporation.
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