A multifaceted approach towards understanding the peculiar behavior of (α)-hydroxyiminophosphonates
Literature Information
Thomas Toupy, Christopher Kune, Kristof Van Hecke, Loïc Quinton, Jean-Christophe M. Monbaliu
The peculiar isomer-selective reduction of (α)-hydroxyiminophosphonates (oxime isomers) into (α)-hydroxyaminophosphonate (hydroxylamine) derivatives is presented. A library of 16 (α)-hydroxyiminophosphonates is prepared and studied via a unique multifaceted approach involving the interplay of NMR, XRD, MS, IM-MS and computational chemistry techniques. The combination of NMR, XRD and HPLC enables the seamless separation, identification and quantification of the oxime isomers (E/Z). Tandem MS (MS/MS) enables the determination of the fragmentation patterns for both isomers. Collision energy breakdown curves highlight the order of apparition of the fragments as well as their related energy of fragmentation, demonstrating that the strength of the C–P bond in the Z isomers is much weaker than in the E isomers. Computational chemistry demonstrates that favorable protonation site is isomer-dependent with the phosphonate moiety being the favorable protonation site for the E isomers, while protonation occurs preferentially on the amino moiety for Z isomers regardless of the phosphite source. The combination of these various methods led an unprecedented level of characterization of oxime isomers, providing a better uderstanding of the isomer-dependent behavior of (α)-hydroxyiminophosphonates.
Recommended Journals

Medicinal Chemistry Research

Bioorganic & Medicinal Chemistry Letters

NDT & E International

Journal of Asian Natural Products Research

Topics in Catalysis

Bioorganic & Medicinal Chemistry

Journal of the Indian Institute of Science

Journal of Chemical Sciences

Main Group Chemistry

Chinese Journal of Chemistry
Related Literature
An endoplasmic reticulum-targetable fluorescent probe for highly selective detection of hydrogen sulfide
Jiali Chen, Haiqing Xiong, Yun Zhang, Wenqiang Chen, Jiarong Sheng
DOI: 10.1039/C8OB02998A
Examining the vinyl moiety as a protecting group for hydroxyl (–OH) functionality under basic conditions
Vladimir V. Voronin, Maria S. Ledovskaya
DOI: 10.1039/D0QO00202J
Direct (het)arylation of tetrahydroisoquinolines via a metal and oxidant free C(sp3)–H functionalization enabled three component reaction
Surajit Haldar, Chandan K. Jana
DOI: 10.1039/C8OB02309C
Functional characterization of the halogenase SpmH and discovery of new deschloro-tryptophan dimers
Zhiwen Liu, Liang Ma, Liping Zhang, Wenjun Zhang, Yiguang Zhu, Yuchan Chen, Weimin Zhang, Changsheng Zhang
DOI: 10.1039/C8OB02775G
The key role of protodeauration in the gold-catalyzed reaction of 1,3-diynes with pyrrole and indole to form complex heterocycles
Ioannis Stylianakis, Antonios Kolocouris
DOI: 10.1039/C9QO01544B
Cocatalyst-controlled divergent cascade cycloaddition reaction of arylalkynols and dioxopyrrolidienes: access to spiroketals and oxa-bridged eight-membered cyclic ethers
Hongkai Wang, Tianlong Zeng, Xinhong Li, Songmeng Wang, Weiguo Xiao, Lingyan Liu, Weixing Chang
DOI: 10.1039/D0QO00464B
Synthesis and biological evaluation of fluorinated analogues of ripostatin A
Vladyslav Shenderman
DOI: 10.1039/C8OB02890G
Aromatization-driven deconstruction/refunctionalization of unstrained rings
Fangzhi Hu, Lubin Xu
DOI: 10.1039/D0QO00344A
A fluorogenic C4N4 probe for azide-based labelling
Hidetoshi Noda, Yasuko Asada, Masakatsu Shibasaki, Naoya Kumagai
DOI: 10.1039/C8OB02695E
You might also like
What industries use (1R,3S)-1,3-Cyclopentanediol (CAS: 16326-97-9)?
(1R,3S)-1,3-Cyclopentanediol finds applications in various industries. In the ph...
What precautions should be taken when handling N'-[4-(Dimethylamino)phenyl]-N,N-dimethyl-1,4-benzenediamine (CAS: 637-31-0)?
When handling N'-[4-(Dimethylamino)phenyl]-N,N-dimethyl-1,4-benzenediamine, it i...
Are there alternatives to 5-(2,4-Difluorophenyl)-2-methoxypyrimidine (CAS: 1352318-16-1) in synthesis?
There are several alternatives to 5-(2,4-Difluorophenyl)-2-methoxypyrimidine in ...
What regulatory guidelines apply to 1-(3-Methoxyphenoxy)propan-2-ol (CAS: 382141-68-6)?
1-(3-Methoxyphenoxy)propan-2-ol (CAS: 382141-68-6) must comply with the Globally...
Is Tetrodotoxin Citrate (CAS: 18660-81-6) safe?
Tetrodotoxin Citrate is extremely dangerous and should be handled with extreme c...
What are the main uses of 2-Methyl-2-propanyl [(1R,3S)-3-hydroxycyclopentyl]carbamate (CAS: 225641-84-9)?
2-Methyl-2-propanyl [(1R,3S)-3-hydroxycyclopentyl]carbamate (CAS: 225641-84-9) i...
How should waste containing 4-(2-Hydroxyhexafluoroisopropyl)Benzoic Acid (CAS: 16261-80-6) be handled?
Waste containing 4-(2-Hydroxyhexafluoroisopropyl)Benzoic Acid (CAS: 16261-80-6) ...
How is 2-Methyl-2-proanyl {(2S)-1-[(benzyloxy)amino]-3-hydroxy-3-methyl-1-oxo-2-butanyl}carbamate (CAS: 102507-19-7) typically synthesized?
2-Methyl-2-proanyl {(2S)-1-[(benzyloxy)amino]-3-hydroxy-3-methyl-1-oxo-2-butanyl...
What is Benzeneethanamine, α-ethyl-, hydrochloride (1:1) (CAS: 20735-15-3)?
Benzeneethanamine, α-ethyl-, hydrochloride (1:1) is an organic compound with the...
Are there alternatives to 3-{(E)-[4-(Dimethylamino)phenyl]diazenyl}benzoic acid (CAS: 20691-84-3) in synthesis?
In the synthesis of compounds similar to 3-{(E)-[4-(Dimethylamino)phenyl]diazeny...
Source Journal
Organic Chemistry Frontiers

Organic Chemistry Frontiers publishes high-quality research from across organic chemistry. Emphases are placed on studies that make significant contributions to the field of organic chemistry by reporting either new or significantly improved protocols or methodologies. Topics include, but are not limited to the following: Organic synthesis Development of synthetic methodologies Catalysis Natural products Functional organic materials Supramolecular and macromolecular chemistry Physical and computational organic chemistry




