Nitrones are widely used as 1,3-dipoles in organic synthesis, but control of their reactions is not always easy. This review outlines our efforts to make the reactions of nitrones more predictable and easier to use. These efforts can be categorized into (1) 1,3-nucleophilic addition reaction of ketene silyl acetals to nitrones, (2) geometry-controlled cycloaddition of C-alkoxycarbonyl nitrones, (3) stereo-controlled cycloaddition using double asymmetric induction, and (4) generation of nitrones by N-selective modification of oximes.


The gastric stability of eight barbiturates (BARs) (barbital, primidone, allobarbital, phenobarbital, cyclobarbital, pentobarbital, secobarbital, and thiobutabarbital (TBB)) was examined in artificial gastric juice using LC/UV detection. Among the eight BARs, only TBB was degraded at higher temperatures. Furthermore, the degradation product of TBB was isolated, structurally analyzed, and finally identified as 5-butan-2-yl-5-ethyl-1,3-diazinane-2,4,6-trione, also known as butabarbital. The study elucidated that butabarbital was formed by substituting the sulfur atom of the carbonyl group at the 2-position of TBB with an oxygen atom under acidic condition.

This report clarified
that thiobutabarbital was degraded accompanying with desulfurization reaction
in artificial gastric juice, producing
5-butan-2-yl-5-ethyl-1,3-diazinane-2,4,6-trione, which is known as
butabarbital. The authors have found a chemical oxidative desulfurization
reaction of thiobutabarbital to occur in vitro. That is, this is the first
paper to show that thiobutabarbital degrades to butabarbital in artificial
gastric juice assuming in the stomach. This research is expected to be useful
in the fields of clinical chemistry and forensic science, particularly in cases
of drug poisoning attributed to barbitals overdose, and in drug estimation
during judicial autopsies.

Gout is the second largest metabolic disease worldwide after diabetes, with acute gouty arthritis as most common symptom. Xanthine oxidase (XOD) and the NOD like receptor-3 (NLRP3) inflammasome are the key targets for acute gout treatment. Chlorogenic acid has been reported with a good anti-inflammatory activity, and Apigenin showed an excellent potential in XOD inhibition. Therefore, a series of chlorogenic acid–apigenin (CA) conjugates with varying linkers were designed and synthesized as dual XOD/NLRP3 inhibitors, and their activities both in XOD and NLRP3 inhibition were evaluated. An in vitro study of XOD inhibitory activity revealed that the majority of CA conjugates exhibited favorable XOD inhibitory activity. Particularly, the effects of compounds 10c and 10d, with an alkyl linker on the apigenin moiety, were stronger than that of allopurinol. The selected CA conjugates also demonstrated a favorable anti-inflammatory activity in RAW264.7 cells. Furthermore, compound 10d, which showed the optimal activity both in XOD inhibition and anti-inflammatory, was chosen and its inhibitory ability on NLRP3 and related proinflammatory cytokines was further tested. Compound 10d effectively reduced NLRP3 expression and the secretion of interluekin-1β (IL-1β) and tumor necrosis factor-α (TNF-α) with an activity stronger than the positive control isoliquiritigenin (ISL). Based on these findings, compound 10d exhibits dual XOD/NLRP3 inhibitory activity and, therefore, the therapeutic effects on acute gout is worthy of further study.


The new chalcogenylation of phosphines using nBu4N‧XCN (X = S, Se) is described. The reaction in 1,2-dichloroethane at 120 °C provided the corresponding phosphine sulfides in good to high yields. The protocol could be extended to the synthesis of phosphinic acid derivatives as well as sulfurization of poly(styrene-co-4-styryldiphenylphosphine).

Phosphine
chalcogenides have a wide range of important applications such as ligands for
transition metal catalysts, organocatalysis,
sulfurization/selenization agents of transition metal phosphides and molecular
junction units for electronic devices. The authors have herein developed a concise
and efficient method for chalcogenylation of phosphines using
tetrabutylammonium chalcogenocyanates. The reaction in heating 1,2-dichloroethane
provides the corresponding phosphine sulfides or selenides in good to high
yields. This protocol could be applicable to the various phosphines with good
functional group tolerance. In the case of electron deficient phosphines and
diphenylphosphine, the use of copper(I) iodide as an additive proved to be
effective.

α-Alkoxy bridgehead radicals enable intermolecular construction of sterically congested C–C bonds due to their sterically accessible nature. We implemented these radical species into total syntheses of various densely oxygenated natural products and demonstrated their exceptional versatility. Herein, we employed different precursors to generate the same α-alkoxy bridgehead radical and compared the efficacy of the precursors for coupling reactions. Specifically, the bridgehead radical of the trioxaadamantane structure was formed from α-alkoxy carboxylic acid, selenide/telluride, and acyl selenide/acyl telluride, and reacted with 4-((tert-butyldimethylsilyl)oxy)cyclopent-2-en-1-one and 5-oxo-1-cyclopentene-1-carbonitrile. The efficiency of the bridgehead radical formation and subsequent coupling reaction significantly depended on the structures of the precursors and acceptors as well as the reaction conditions. Our findings provide new insights for selecting the appropriate substrates of key coupling reactions in the total synthesis of complex natural products.

[Highlighted Paper selected by Editor-in-Chief]
α-Alkoxy bridgehead radicals enable intermolecular construction of
sterically congested C–C bonds due to their sterically accessible nature. The authors demonstrated their exceptional
versatility by implementing these radical species into total syntheses of
various densely oxygenated natural products.
Herein, the authors employed five different radical precursors to
generate the same α-alkoxy bridgehead radical and systematically compared the
efficacy of the precursors for coupling reactions with two acceptors. The findings provide new insights for
selecting the appropriate substrates of key coupling reactions in the total
synthesis of complex natural products.

We report chemoselective hydrogenation of α,β-unsaturated anilides catalyzed by the palladium-polymethylhydrosiloxane (hydrosilane) system. Under this condition, C–C double bonds are selectively reduced while other reducible groups such as acetyl groups, nitro groups, nitriles, benzyl ethers, and halogens are largely tolerated. This chemoselective hydrogenation is promising for the development of efficient synthetic routes for multi-functional compounds.

The chemoselective hydrogenation of alkenes
is an important and challenging theme in synthetic organic chemistry. The
authors developed the palladium-catalyzed chemoselective hydrogenation of α,β-unsaturated
anilides using polymethylhydrosiloxane (PMHS) as a reducing agent. The
hydrogenation selectively reduced C-C double bonds of activated alkenes while
tolerating various reducible functionalities such as acetyl, nitro, nitrile,
benzyloxy, and halogen groups. Overall, the hydrogenation of substrates with
electron-donating and electron-withdrawing groups on the aromatic ring was achieved
in high yield. This reaction is expected to be useful for establishing
efficient synthetic routes for compounds with multi-functional groups.