0000000001311266

AUTHOR

Philipp Jung

showing 7 related works from this author

Glycidyltosylat: Die Polymerisation eines “nicht polymerisierbaren” Monomers ermöglicht eine universelle, polymeranaloge Funktionalisierung von Polye…

2019

ChemistryGeneral MedicineAngewandte Chemie
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One-Pot Synthesis of Pyrrole-2-carboxylates and -carboxamides via an Electrocyclization/Oxidation Sequence

2014

An electrocyclic ring closure is the key step of an efficient one-pot method for the synthesis of pyrrole-2-carboxylates and -carboxamides from chalcones and glycine esters or amides. The 3,4-dihydro-2H-pyrrole intermediates generated in situ are oxidized to the corresponding pyrroles by stoichiometric oxidants or by catalytic copper(II) and air in moderate to high yields. A wide range of functional groups are tolerated, and further combination with an in situ bromination gives access to polyfunctional pyrrole scaffolds.

ProlineOrganic ChemistryOne-pot synthesischemistry.chemical_elementHalogenationEstersStereoisomerismStereoisomerismElectrochemistryRing (chemistry)Combinatorial chemistryCopperCatalysisCatalysischemistry.chemical_compoundchemistryCyclizationElectrochemistryPyrrolesOxidation-ReductionCopperPyrroleThe Journal of Organic Chemistry
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Glycidyl Tosylate: Polymerization of a “Non‐Polymerizable” Monomer permits Universal Post‐Functionalization of Polyethers

2019

Abstract Glycidyl tosylate appears to be a non‐polymerizable epoxide when nucleophilic initiators are used because of the excellent leaving group properties of the tosylate. However, using the monomer‐activated mechanism, this unusual monomer can be copolymerized with ethylene oxide (EO) and propylene oxide (PO), respectively, yielding copolymers with 7–25 % incorporated tosylate‐moieties. The microstructure of the copolymers was investigated via in situ 1H NMR spectroscopy, and the reactivity ratios of the copolymerizations have been determined. Quantitative nucleophilic substitution of the tosylate‐moiety is demonstrated for several examples. This new structure provides access to a librar…

Ethylene oxidering-opening polymerization010405 organic chemistryCommunicationLeaving groupEpoxideGeneral Chemistry010402 general chemistry01 natural sciencesRing-opening polymerizationCommunicationsCatalysis0104 chemical scienceschemistry.chemical_compoundMonomerchemistryPolymerizationpolyetherPolymer chemistryCopolymerNucleophilic substitutionRing‐Opening Polymerizationfunctionalizationpoly(ethylene oxide)poly(propylene oxide)Angewandte Chemie International Edition
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Drug Repurposing of the Anthelmintic Niclosamide to Treat Multidrug-Resistant Leukemia

2017

Multidrug resistance, a major problem that leads to failure of anticancer chemotherapy, requires the development of new drugs. Repurposing of established drugs is a promising approach for overcoming this problem. An example of such drugs is niclosamide, a known anthelmintic that is now known to be cytotoxic and cytostatic against cancer cells. In this study, niclosamide showed varying activity against different cancer cell lines. It revealed better activity against hematological cancer cell lines CCRF-CEM, CEM/ADR5000, and RPMI-8226 compared to the solid tumor cell lines MDA-MB-231, A549, and HT-29. The multidrug resistant CEM/ADR5000 cells were similar sensitive as their sensitive counterp…

0301 basic medicineBiologyPharmacologychemotherapy03 medical and health sciences0302 clinical medicinetranscription factorsmedicineoxidative stressCytotoxic T cellPharmacology (medical)NiclosamideOriginal ResearchpharmacogenomicsPharmacologydrug resistanceNFATmedicine.diseaseGlutathione synthetaseMultiple drug resistanceLeukemia030104 developmental biologyCell culture030220 oncology & carcinogenesisCancer cellmedicine.drugFrontiers in Pharmacology
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ChemInform Abstract: One-Pot Synthesis of Pyrrole-2-carboxylates and -carboxamides via an Electrocyclization/Oxidation Sequence.

2015

An electrocyclic ring closure is the key step of an efficient one-pot method for the synthesis of pyrrole-2-carboxylates and -carboxamides from chalcones and glycine esters or amides. The 3,4-dihydro-2H-pyrrole intermediates generated in situ are oxidized to the corresponding pyrroles by stoichiometric oxidants or by catalytic copper(II) and air in moderate to high yields. A wide range of functional groups are tolerated, and further combination with an in situ bromination gives access to polyfunctional pyrrole scaffolds.

chemistry.chemical_compoundChemistryGlycineOne-pot synthesisHalogenationchemistry.chemical_elementOrganic chemistryGeneral MedicineRing (chemistry)CopperStoichiometryPyrroleCatalysisChemInform
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CCDC 1055316: Experimental Crystal Structure Determination

2015

Related Article: Dennis Imbri , Natalie Netz , Murat Kucukdisli , Lisa Marie Kammer , Philipp Jung , Annika Kretzschmann , and Till Opatz|2014|J.Org.Chem.|79|11750|doi:10.1021/jo5021823

Space GroupCrystallographyCrystal SystemCrystal Structure5-(4-Fluorophenyl)-3-(4-methoxyphenyl)-N-(2-methylpropyl)-1H-pyrrole-2-carboxamideCell ParametersExperimental 3D Coordinates
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CCDC 1055315: Experimental Crystal Structure Determination

2015

Related Article: Dennis Imbri , Natalie Netz , Murat Kucukdisli , Lisa Marie Kammer , Philipp Jung , Annika Kretzschmann , and Till Opatz|2014|J.Org.Chem.|79|11750|doi:10.1021/jo5021823

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parametersethyl 5-(4-chlorophenyl)-3-(3-nitrophenyl)-1H-pyrrole-2-carboxylateExperimental 3D Coordinates
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