scholarly journals Do multinuclear 3d metal catalysts achieve O–O bond formation via radical coupling or via water nucleophilic attack? WNA leads the way in [Co4O4]n+

2021 ◽  
Author(s):  
Roman Ezhov ◽  
Alireza Karbakhsh Ravari ◽  
Gabriel Bury ◽  
Paul F. Smith ◽  
Yulia Pushkar
2017 ◽  
Vol 46 (20) ◽  
pp. 6170-6193 ◽  
Author(s):  
David W. Shaffer ◽  
Yan Xie ◽  
Javier J. Concepcion

A review of water oxidation by ruthenium-based molecular catalysts, with emphasis on the mechanism of O–O bond formation.


2017 ◽  
Vol 8 (9) ◽  
pp. 6066-6070 ◽  
Author(s):  
Johnny W. Lee ◽  
Dominique N. Spiegowski ◽  
Ming-Yu Ngai

Synthesis of perfluoroalkoxylated (hetero)arenes (Ar–ORF) from readily available perfluoroalkyl iodides (RF–I) through photocatalytic selective O–RF bond formation.


2019 ◽  
Vol 47 (14) ◽  
pp. 7147-7162 ◽  
Author(s):  
Adele Williamson ◽  
Hanna-Kirsti S Leiros

Abstract DNA ligases join adjacent 5′ phosphate (5′P) and 3′ hydroxyl (3′OH) termini of double-stranded DNA via a three-step mechanism requiring a nucleotide cofactor and divalent metal ion. Although considerable structural detail is available for the first two steps, less is known about step 3 where the DNA-backbone is joined or about the cation role at this step. We have captured high-resolution structures of an adenosine triphosphate (ATP)-dependent DNA ligase from Prochlorococcus marinus including a Mn-bound pre-ternary ligase–DNA complex poised for phosphodiester bond formation, and a post-ternary intermediate retaining product DNA and partially occupied AMP in the active site. The pre-ternary structure unambiguously identifies the binding site of the catalytic metal ion and confirms both its role in activating the 3′OH terminus for nucleophilic attack on the 5′P group and stabilizing the pentavalent transition state. The post-ternary structure indicates that DNA distortion and most enzyme-AMP contacts remain after phosphodiester bond formation, implying loss of covalent linkage to the DNA drives release of AMP, rather than active site rearrangement. Additionally, comparisons of this cyanobacterial DNA ligase with homologs from bacteria and bacteriophage pose interesting questions about the structural origin of double-strand break joining activity and the evolution of these ATP-dependent DNA ligase enzymes.


Synthesis ◽  
2020 ◽  
Author(s):  
Mei Guan ◽  
Yong Wu ◽  
Hua He ◽  
Kaichuan Yan ◽  
Jianglian Li ◽  
...  

Carbenoid-based N–H insertions have undergone significant development with respect to C–N bond formation in recent years. However, the existing methods suffer from unstable starting materials, expensive metal catalysts and organic solvents. Herein, insertion of sulfoxonium ylides into arylamines under metal-free conditions has been developed. The method employs water as solvent at mild temperature and is amenable to the late-stage modification of structurally complex bioactive compounds.


2018 ◽  
Vol 140 (42) ◽  
pp. 13538-13541 ◽  
Author(s):  
Yulia Pushkar ◽  
Yuliana Pineda-Galvan ◽  
Alireza K. Ravari ◽  
Tatiana Otroshchenko ◽  
Daniel A. Hartzler

Synthesis ◽  
2020 ◽  
Author(s):  
Wing-Yiu Yu ◽  
Chun-Ming Chan ◽  
Yip-Chi Chow

Catalytic C–N bond formation is one of the major research topics in synthetic chemistry owing to the ubiquity of amino groups in natural products, synthetic intermediates and pharmaceutical agents. In parallel with well-established metal-catalyzed C–N bond coupling protocols, photocatalytic reactions have recently emerged as efficient and selective alternatives for the construction of C–N bonds. In this review, the progress made on photocatalytic C–N bond coupling reactions between 2012 and February 2020 is summarized.1 Introduction1.1 General Mechanisms for Photoredox Catalysis1.2 Pioneering Work2 C(sp2)–N Bond Formation2.1 Protocols Involving an External Oxidant2.2 Oxidant-Free Protocols3 C(sp3)–N Bond Formation3.1 Direct Radical–Radical Coupling3.2 Addition Reactions to Alkenes3.3 Reductive Amination of Carbonyl Compounds3.4 Decarboxylative Amination4 Cyclization Reactions4.1 C(sp2)–N Heterocycle Formation4.2 C(sp3)–N Heterocycle Formation5 Other Examples6 Conclusion and Outlook


2018 ◽  
Vol 16 (18) ◽  
pp. 3314-3327 ◽  
Author(s):  
Shekh Sabir ◽  
Ganesh Kumar ◽  
Jawahar L. Jat

Reagents derived from oxygen-substituted hydroxylamine facilitate stereo- and regioselective C–N, N–N, O–N, and S–N bond-formation reactions and intra-molecular cyclizations without any expensive metal catalysts. These remarkable transformations are discussed in this review.


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