Questioning the γ-gauche effect: stereoassignment of 1,3-disubstituted-tetrahydro-β-carbolines using 1H–1H coupling constants
文献情報
Kristýna Cagašová, Maryam Ghavami, Zhong-Ke Yao, Paul R. Carlier
The Pictet–Spengler reaction of tryptophan esters and aldehydes has been widely applied in natural product synthesis and medicinal chemistry. To date, the trans- or cis-configuration of 1,3-disubstituted tetrahydro-β-carbolines (THβCs) formed in this reaction has most often been assigned based on the relative 13C chemical shifts of C1 and C3 in the diastereomers. Although the upfield shifts of C1 and C3 in trans-THβCs relative to cis-THβCs has been attributed to steric compression associated with the “γ-gauche” effect, we show that this effect is not borne out experimentally for other carbons that should suffer this same compression. Thus we developed a robust alternative method for stereochemical assignment based on 1H NMR coupling constants (31 examples) and supported by extensive DFT-based conformational analysis and calculation of 1H–1H coupling constants. DFT calculations of 13C NMR chemical shifts also cast doubt upon the role of the “γ-gauche” effect on C1 and C3 chemical shifts in trans-THβCs.
関連文献
Impact of the plasmonic near- and far-field resonance-energy shift on the enhancement of infrared vibrational signals
Jochen Vogt, Christian Huck, Andrea Toma
DOI: 10.1039/C4CP04851B
Magnetic susceptibility of actinide(iii) cations: an experimental and theoretical study
Matthieu Autillo, Laetitia Guerin, Hélène Bolvin, Philippe Moisy, Claude Berthon
DOI: 10.1039/C5CP07456H
Effects of constituent ions of a phosphonium-based ionic liquid on molecular organization of H2O as probed by 1-propanol: tetrabutylphosphonium and trifluoroacetate ions
Takeshi Morita, Kumiko Miki, Ayako Nitta, Hiroyo Ohgi, Peter Westh
DOI: 10.1039/C5CP02329G
Tunable conduction type of solution-processed germanium nanoparticle based field effect transistors and their inverter integration
Zeynep Meric, Christian Mehringer, Nicolas Karpstein, Michael P. M. Jank, Wolfgang Peukert
DOI: 10.1039/C5CP03321G
Phosphorylation promotes Al(iii) binding to proteins: GEGEGSGG as a case study
Rafael Grande-Aztatzi, Elena Formoso, Jon I. Mujika, Jesus M. Ugalde, Xabier Lopez
DOI: 10.1039/C5CP06379E
Structural transition upon hydrogenation of B20 at different charge states: from tubular to disk-like, and to cage-like
Bing Bai, Hui Bai
DOI: 10.1039/C5CP07731A
Negative linear compressibility
Andrew B. Cairns, Andrew L. Goodwin
DOI: 10.1039/C5CP00442J
DFT studies of the bonding mechanism of 8-hydroxyquinoline and derivatives on the (111) aluminum surface
Corinne Lacaze-Dufaure, Hao Tang, Nadine Pébère
DOI: 10.1039/C5CP03095A
Exploiting orientation-selective DEER: determining molecular structure in systems containing Cu(ii) centres
Michael W. Jones, Thembanikosi G. Gaule, Michael J. McPherson, Jonathan R. Dilworth, Christiane R. Timmel
DOI: 10.1039/C5CP06096F
In search of non-conventional surface oxidic motifs of Cu on Au(111)
Taehun Lee, Yonghyuk Lee, Kisung Kang, Aloysius Soon
DOI: 10.1039/C5CP07932B
こちらもおすすめ
2,5-二羧基氟苯の市場動向や研究トレンドはどうですか?
2,5-二羧基氟苯の市場は、主に医薬品および農薬の研究開発において伸長しています。一方、環境への影響や安全性の懸念から、その使用は一定の制限が置かれています。今...
8-甲基-2-噻吩-2-基-喹啉-4-羧酸を含む廃棄物はどのように処理すべきですか?
8-甲基-2-噻吩-2-基-喹啉-4-羧酸を含む廃棄物は専門的な廃棄処理が必要です。具体的には、廃棄物は密閉の容器に収集し、適切な危険物対策を講じて専門業者に引...
2-(1,3-二氧杂烷-2-基)噻唑の物理化学的性質は何ですか?
CAS番号24295-04-3の2-(1,3-二氧杂烷-2-基)噻唑は、結晶形態により白色粉末を呈します。分子量は208.23 g/molであり、水に溶けにくい...
L-beta-高酪氨酸塩酸塩は安全ですか?
L-beta-高酪氨酸塩酸塩自体は毒性は低く、しかし使用する際は適切な個人保護具を使用し、誤飲や皮膚への接触を避けることが推奨されます。
睡茄灯笼草素Cはどのように合成されますか?
睡茄灯笼草素Cは、シクラメンケチャナfromaceaeから抽出する方法や、化学合成法で合成することができます。典型的な化学合成法では、3β,22-二オキシエクス...
4-(嘧啶-2-基)哌嗪-1-羧酸叔丁酯はどのように保存すればよいですか?
4-(嘧啶-2-基)哌嗪-1-羧酸叔丁酯は直射日光を避けて、室温で保存するのが良いです。湿度を避けて密閉容器に入れて保管し、未使用の状態で長期保存することができ...
NBI-74330の主な用途は何ですか?
NBI-74330は主に薬理学研究および医療用途に使用されています。その主な用途は抗がん作用を有するため、がん治療の研究に使用されています。
6-トリフルオロメチル-2-クロロピリジン-4-ボリリック酸はどのように合成されますか?
6-トリフルオロメチル-2-クロロピリジン-4-ボリリック酸は、6-トリフルオロメチル-2-クロロピリジンとボリルリチウムを触媒なしで反応させることで合成するこ...
掲載誌
Organic & Biomolecular Chemistry

Organic & Biomolecular Chemistry (OBC) publishes original and high impact research and reviews in organic chemistry. We welcome research that shows new or significantly improved protocols or methodologies in total synthesis, synthetic methodology or physical and theoretical organic chemistry as well as research that shows a significant advance in the organic chemistry or molecular design aspects of chemical biology, catalysis, supramolecular and macromolecular chemistry, theoretical chemistry, mechanism-oriented physical organic chemistry, medicinal chemistry or natural products. Articles published in the journal should report new work which makes a highly-significant impact in the field. Routine and incremental work is generally not suitable for publication in the journal. More details about key areas of our scope are below. In all cases authors should include in their article clear rationale for why their research has been carried out.













