The University of Tokyo · 생화학·유전·분자생물학
Hajime Sato 교수의 연구실은 자연물 합성의 핵심 반응인 트레피노이드 및 세스터테르펜의 고도로 복잡한 카보카이온 캐스케이드 반응 메커니즘을 이론적 계산과 실험을 융합하여 규명하는 데 주력하고 있습니다. 특히, 다이아몬드형 카보카이온 이동, 수소 이동, 고리 재배열, C-H···π 상호작용 등 다양한 전이 상태와 입체선택성을 제어하는 메커니즘을 밝혀내며, 복잡한 자연물의 생합성 경로를 체계적으로 해명하고자 합니다. 최근에는 스피로-퓨란온 유도체 형성 등 특수한 구조를 가진 생합성 경로의 기작 규명에도 진전을 이루고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Terpene cyclization is orchestrated by terpene cyclases, which are involved in the biosynthesis of various cyclic natural products, but understanding the origin and mechanism of the selectivity of terpene cyclization is challenging. In this work, we describe an in-depth mechanistic study on cyclooctatin biosynthesis by means of theoretical calculations combined with experimental methods. We show that the main framework of cyclooctatin is formed through domino-type carbocation transportation alon
Using molecular and chemotaxonomic techniques, we studied the intraspecific diversity of Oenococcus oeni, a lactic acid bacterium isolated during red wine-making in Japan. The results confirmed high values of DNA-DNA relatedness and strong similarity among 16S rDNA sequences of the isolates with the O. oeni-type strain. Pulsed-field gel electrophoresis (PFGE) by NotI identified four patterns among the strains. Three different patterns of lactate dehydrogenase mobility were seen and there was a s
The cyclization mechanisms involved in the biosynthesis of sesterterpenes are not fully understood. For example, there are two plausible reaction pathways for sesterfisherol biosynthesis, which differ in the order of ring cyclization: A-D-B/C (Path a) and A-B-C/D (Path b). It is difficult to capture intermediates of terpene cyclization, which is a complex, domino-type reaction, and so here we employed a combination of experimental and computational methods. Density functional theory calculations
The results of quantum chemical calculations on the mechanism of the carbocation cascade of reactions in the biosynthetic pathways leading to the pentacyclic sesterterpenes quiannulatene and sesterfisherol provide reasonable answers to several persistent mechanistic questions in sesterterpene biosynthesis, including: 1) the reaction pathways of the multicyclic ring system construction and skeletal rearrangements, 2) the mechanism of triquinane skeleton formation, which requires more complicated
Brasilane-type sesquiterpenes have been known for a long time, but their biosynthetic pathways and mechanisms remain elusive. Recently, two groups independently characterized a <i>Trichoderma</i> terpene cyclase that produces trichobrasilenol, a brasilane-type sesquiterpene, and a plausible biosynthetic pathway was proposed based on isotopic labeling experiments. In the proposed mechanism, the characteristic brasilane-type 5/6 bicyclic skeleton is synthesized from a 5/7/3 tricyclic intermediate
The 3(2<i>H</i>)-furanone unit is observed in many biologically active natural products, as represented by the antifungal medication griseofulvin. Setosusin (<b>1</b>) is a fungal meroditerpenoid featuring a unique spiro-fused 3(2<i>H</i>)-furanone moiety; however, the biosynthetic basis for spirofuranone formation has not been investigated since its isolation. Therefore, in this study we identified the biosynthetic gene cluster of <b>1</b> in the fungus <i>Aspergillus duricaulis</i> CBS 481.65
[Image: see text] Some experimental observations indicate that a sequential formation of secondary (2°) carbocations might be involved in some biosynthetic pathways, including those of verrucosane-type diterpenoids and mangicol-type sesterterpenoids, but it remains controversial whether or not such 2° cations are viable intermediates. Here, we performed comprehensive density functional theory calculations of these biosynthetic pathways. The results do not support previously proposed pathways/mec