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Regioselective, Molecular Iodine-Mediated C3 Iodination of Quinolines

A novel and convenient method has been developed for the regioselective iodination of quinolines at their C3 position under metal-free conditions. Iodinated quinolines, which are popular building blocks in organic and medicinal chemistry, can be prepared in gram quantities and good yields using this method and further derivatized to give increasingly complex compounds. Preliminary mechanistic studies have shown that this reaction most likely occurs via a radical intermediate.

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Identification of bacteria-selective threonyl-tRNA synthetase substrate inhibitors by structure-based design

A series of potent and bacteria-selective threonyl-tRNA synthetase (ThrRS) inhibitors have been identified using structure-based drug design. These compounds occupied the substrate binding site of ThrRS and showed excellent binding affinities for all of the bacterial orthologues tested. Some of the compounds displayed greatly improved bacterial selectivity. Key residues responsible for potency and bacteria/human ThrRS selectivity have been identified. Antimicrobial activity has been achieved against wild-type Haemophilus influenzae and efflux-deficient mutants of Escherichia coli and Burkholderia thailandensis.

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A photoredox-mediated direct cross-dehydrogenative coupling reaction to accomplish alpha-aminoalkylation of N-heteroarenes is reported. This mild reaction has a broad substrate scope, offers the first general method for synthesis of aminoalkylated N-heteroarenes without the need for substrate prefunctionalization, and is scalable to the gram level. Furthermore, the reaction was found to be applicable to other hydrogen donors besides amines (i.e., ethers, an aldehyde, a formamide, p-xylene, and alkanes), thus enabling the preparation of N-heteroarenes bearing various types of substituents.

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A novel compound represented by the following formula (1) or a salt thereof [wherein R1, R5, R6, R7, and R8 represent hydrogen atom, a halogen atom, hydroxyl group, an alkyl group, an alkenyl group and the like; X1 . . . X2 represents ?CH(R2)?CH(R3)?, ?CH(R2)?CH(R3)?CH(R4)?, ?C(R2)?C(R3)?, or ?C(R2)?C(R3)?CH(R4)?(R2, R3, and R4 represent hydrogen atom, or an alkyl group); A1, A11, A2, and A21 represent hydrogen atom, or an alkyl group; Y represents ?CH(A3)-, ?CH(A3)-C(A4)(A41)-, ?CH(A3)-C(A4)(A41)-C(A5)(A51)-, or a single bond (A3, A4, A41, A5, and A51 represent hydrogen atom, or an alkyl group), and Z represents hydroxyl group, or ?N(A6)(A61)(A6 represents hydrogen atom, or an alkyl group, and A61 represents hydrogen atom, an alkyl group, a substituted alkyl group and the like)], having an action of potently inhibiting phosphorylation of myosin regulatory light chain. [image]

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A cascade (cyclo)isomerization/elimination process produces novel isoquinoline derivatives of potential interest for pharmaceutical, biomedical, and energy-related research. Mechanistic experiments support a putative allenylpyridine (reminiscent of the Garratt-Braverman cyclization) as a key intermediate in the cascade process.

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Conjugated dienes and polyenes are typically synthesized by sequential introduction of C=C bonds. Here, we report a practical and scalable, catalytic dienylation that is highly regio- and stereoselective for both C=C bonds. The reaction is enabled by a stereoselective palladium-catalyzed cross-coupling that is preceded by a regioselective base-induced ring opening of readily available sulfolenes. The dienylation reaction is particularly useful for the synthesis of synthetically challenging dienes containing cis double bonds. We also show that the reaction can serve as a synthetic platform for the construction of conjugated polyenes.

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(Chemical Equation Presented) Unprecedented activity: Catalysts derived from Pd and bulky dialkylphosphinobiaryl ligands are shown to be highly stable and active in Suzuki-Miyaura reactions of heteroaryl halides and heteroaryl boronic acids/esters (e.g., 3-or 4-pyridine, indole, and N-protected pyrrole derivatives). Furthermore, this catalyst system is not inhibited by the presence of highly basic aminopyridines or aminopyrimidines.

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(Chemical Equation Presented) Gold(III) chloride is found to be an effective catalyst for the addition of alkynes on activated quinoline/ isoquinolines to produce a series of alkynyl-substituted 1,2-dihydroquinolines and isoquinolines in a single-step operation. The easy availability of starting materials, convenient synthetic procedure, operational simplicity, and high regioselectivity makes this strategy very useful for the preparation of enyne derivatives of aza-aromatic compounds.

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Homogeneous conditions for the palladium-catalyzed cyanation of aryl halides were developed. This new system features a broad scope of aryl chlorides and bromides, uses 2-propanol or 1-butanol as solvent, and is readily scalable. The same conditions can also provide simple benzonitriles using the recently developed (TMEDA)NiCl(o-tolyl) precatalyst in conjunction with 1,1?-bis(diphenylphosphino)ferrocene (dppf) as a ligand.

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A highly efficient Cu-catalyzed 1,2-difunctionalization of various N-heteroarenes was developed with ether and alkyl halide at ambient temperature. This transformation involves the combination of oxidative coupling by Cu/TBHP and reduction process by 1,8-diazabicyclo[5.4.0]undec-7-ene. This method provides an efficient method to prepare various substituted dihydroazaarene derivatives via a free-radical process.

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