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Biosynthesis and Structure-Activity Relationship Studies of Okaramines That Target Insect Glutamate-Gated Chloride Channels.
Kato, Naoki; Furutani, Shogo; Otaka, Junnosuke; Noguchi, Akira; Kinugasa, Kiyomi; Kai, Kenji; Hayashi, Hideo; Ihara, Makoto; Takahashi, Shunji; Matsuda, Kazuhiko; Osada, Hiroyuki.
Afiliação
  • Kato N; Natural Product Biosynthesis Research Unit , RIKEN Center for Sustainable Resource Science , Wako , Saitama 351-0198 , Japan.
  • Furutani S; Natural Product Biosynthesis Research Unit , RIKEN Center for Sustainable Resource Science , Wako , Saitama 351-0198 , Japan.
  • Otaka J; Department of Applied Biological Chemistry, Faculty of Agriculture , Kindai University , Nara , Nara 631-8505 , Japan.
  • Noguchi A; Chemical Biology Research Group , RIKEN Center for Sustainable Resource Science , Wako , Saitama 351-0198 , Japan.
  • Kinugasa K; Department of Applied Biological Chemistry, Faculty of Agriculture , Kindai University , Nara , Nara 631-8505 , Japan.
  • Kai K; Natural Product Biosynthesis Research Unit , RIKEN Center for Sustainable Resource Science , Wako , Saitama 351-0198 , Japan.
  • Hayashi H; Graduate School of Life and Environmental Sciences , Osaka Prefecture University , Sakai , Osaka 599-8531 , Japan.
  • Ihara M; Graduate School of Life and Environmental Sciences , Osaka Prefecture University , Sakai , Osaka 599-8531 , Japan.
  • Takahashi S; Department of Applied Biological Chemistry, Faculty of Agriculture , Kindai University , Nara , Nara 631-8505 , Japan.
  • Matsuda K; Natural Product Biosynthesis Research Unit , RIKEN Center for Sustainable Resource Science , Wako , Saitama 351-0198 , Japan.
  • Osada H; Department of Applied Biological Chemistry, Faculty of Agriculture , Kindai University , Nara , Nara 631-8505 , Japan.
ACS Chem Biol ; 13(3): 561-566, 2018 03 16.
Article em En | MEDLINE | ID: mdl-29384650
ABSTRACT
Prenylated indole alkaloid okaramines selectively target insect glutamate-gated chloride channels (GluCls). Because of their highly complex structures, including azocine and azetidine rings, total synthesis of okaramine A or B has not been achieved, preventing evaluation of the biological activities of okaramines. Biosynthetic approaches provide alternatives to accessing structurally diverse derivatives and enabling the elucidation of structure-activity relationships. To explore the biosynthetic potential of okaramines, gene knockout experiments of an okaramine-producer fungus were performed. The deletion mutants of the oxygenase genes okaB, okaD, okaE, and okaG provided analogues that were unlikely to be accumulated in the normal biosynthetic process of the wild-type strain. Analysis of the structure-activity relationships of okaramines collected from the fungal cultures revealed that 1,4-dihydroazocine and N-aliphatic group attached to the indole were crucial for GluCl-activating activity. This provided insights into further derivatization of the complex structure of okaramines in order to facilitate the development of new insecticides.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Canais de Cloreto / Alcaloides Indólicos / Inseticidas / Insetos Limite: Animals Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Canais de Cloreto / Alcaloides Indólicos / Inseticidas / Insetos Limite: Animals Idioma: En Ano de publicação: 2018 Tipo de documento: Article