塩素化オリゴペプチドの合成 γ-およびδ-選択的水素原子移転 N-クロロペプチド戦略によって可能
Takeshi Nanjo1, Ayaka Matsumoto1, Takuma Oshita1
1Graduate School of Pharmaceutical Sciences, Kyoto University, Yoshida, Sakyo-ku, Kyoto 606-8501, Japan.
Journal of the American Chemical Society
|August 18, 2023
まとめ
研究者は,N-クロロペプチド戦略を用いて,ペプチドのサイト選択的塩素化のための新しい方法を開発した. この画期的な発見により 医学的な用途に役立つ 塩素ペプチド断片の 予測可能な合成が可能になりました
科学分野:
- 有機化学
- ペプチド化学
- 合成化学
背景:
- ペプチドの塩素化は,生物活性と適用性を高めることができます.
- ペプチド内の惰性アリファティックC-H結合の部位選択的塩素化は依然として課題である.
研究 の 目的:
- ペプチドのサイトセレクティブC ((sp3) -H塩素化のための一般的な方法を開発する.
- 塩素を含むペプチド断片の効率的な合成を可能にします.
主な方法:
- N-クロロペプチド戦略を用いて 部位選択的な塩素化を行いました
- 塩素化のために銅の触媒と1,5-水素原子の転送を使用しています.
- 各種のアミノ酸残基で予測可能な塩素化が示されている.
主要な成果:
- オリゴペプチドのサイト選択的なγまたはδ塩素化が達成され,優れた収量が得られる.
- アクイマリンAの塩素化された炭素原子のステレオ化学を成功裏に推定した.
- 様々なアミノ酸残留に対する方法の汎用性を示した.
結論:
- N-クロロペプチド戦略は,サイト選択ペプチド塩素化への効率的な経路を提供します.
- 塩素ペプチドは,合成用および医薬品用として安定性と反応性のバランスをとります.
- この方法は,価値のある,アクセスしやすい塩素ペプチド断片へのアクセスを容易にする.
関連する概念動画
Electrophilic Addition to Alkynes: Hydrohalogenation
10.0K
Electrophilic addition of hydrogen halides, HX (X = Cl, Br or I) to alkenes forms alkyl halides as per Markovnikov's rule, where the hydrogen gets added to the less substituted carbon of the double bond. Hydrohalogenation of alkynes takes place in a similar manner, with the first addition of HX forming a vinyl halide and the second giving a geminal dihalide.
10.0K
α-Halogenation of Carboxylic Acid Derivatives: Overview
3.4K
Unlike aldehydes and ketones, carboxylic acids do not readily participate in α halogenation reactions via enols or enolate intermediates. However, α-halogenated acids are obtained through other methods. One of the approaches is the Hell–Volhard–Zelinsky (HVZ) reaction, wherein the carboxylic acid is treated with halogen in the presence of PBr3. It involves the conversion of acid to acid halide, which exists in equilibrium with its enol form. The enol attacks the...
3.4K
Base-Promoted α-Halogenation of Aldehydes and Ketones
3.5K
α-Halogenation of aldehydes and ketones is a reaction involving the substitution of α hydrogens with halogens in the presence of a base. The reaction begins with the abstraction of α hydrogen by the base to produce a nucleophilic enolate ion. This intermediate undergoes a subsequent nucleophilic substitution with the halogen to produce a monohalogenated carbonyl compound. If the starting substrate has more than one α hydrogen, it is difficult to stop the reaction...
3.5K
Nucleophilic Substitution Reactions
16.5K
Historical perspective
In 1896, the German chemist Paul Walden discovered that he could interconvert pure enantiomeric (+) and (-) malic acids through a series of reactions. This conversion suggested the involvement of optical inversion during the substitution reaction. Further, in 1930, Sir Christopher Ingold described for the first time two different forms of nucleophilic substitution reactions, which are known as SN1 (nucleophilic substitution unimolecular) and SN2 (nucleophilic substitution...
In 1896, the German chemist Paul Walden discovered that he could interconvert pure enantiomeric (+) and (-) malic acids through a series of reactions. This conversion suggested the involvement of optical inversion during the substitution reaction. Further, in 1930, Sir Christopher Ingold described for the first time two different forms of nucleophilic substitution reactions, which are known as SN1 (nucleophilic substitution unimolecular) and SN2 (nucleophilic substitution...
16.5K
Preparation of 1° Amines: Gabriel Synthesis
3.6K
Direct alkylation is not a suitable method for synthesizing amines because it produces polyalkylated products. Gabriel synthesis is the most preferred method to exclusively make primary amines. The method uses phthalimide, which contains a protected form of nitrogen that participates in alkylation only once to predominantly give primary amines.
Strong bases like NaOH or KOH deprotonate the phthalimide to form the corresponding anion, which acts as a nucleophile. Further, the anion attacks an...
Strong bases like NaOH or KOH deprotonate the phthalimide to form the corresponding anion, which acts as a nucleophile. Further, the anion attacks an...
3.6K
Radical Substitution: Allylic Chlorination
2.3K
Typically, when alkenes react with halogens at low temperatures, an addition reaction occurs. However, upon increasing the temperature or under reaction conditions that form radicals, providing a low but steady concentration of halogen radicals, allylic substitution reaction is favored. This is because allylic hydrogens are very reactive as the formed intermediate is resonance stabilized. For example, when propene is treated with chlorine in the gas phase at 400 °C, it undergoes allylic...
2.3K


