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Asymmetric syntheses of sceptrin and massadine and evidence for biosynthetic enantiodivergence.


ABSTRACT: Cycloaddition is an essential tool in chemical synthesis. Instead of using light or heat as a driving force, marine sponges promote cycloaddition with a more versatile but poorly understood mechanism in producing pyrrole-imidazole alkaloids sceptrin, massadine, and ageliferin. Through de novo synthesis of sceptrin and massadine, we show that sponges may use single-electron oxidation as a central mechanism to promote three different types of cycloaddition. Additionally, we provide surprising evidence that, in contrast to previous reports, sceptrin, massadine, and ageliferin have mismatched chirality. Therefore, massadine cannot be an oxidative rearrangement product of sceptrin or ageliferin, as is commonly believed. Taken together, our results demonstrate unconventional chemical approaches to achieving cycloaddition reactions in synthesis and uncover enantiodivergence as a new biosynthetic paradigm for natural products.

SUBMITTER: Ma Z 

PROVIDER: S-EPMC4205478 | biostudies-literature | 2014 Oct

REPOSITORIES: biostudies-literature

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Asymmetric syntheses of sceptrin and massadine and evidence for biosynthetic enantiodivergence.

Ma Zhiqiang Z   Wang Xiaolei X   Wang Xiao X   Rodriguez Rodrigo A RA   Moore Curtis E CE   Gao Shuanhu S   Tan Xianghui X   Ma Yuyong Y   Rheingold Arnold L AL   Baran Phil S PS   Chen Chuo C  

Science (New York, N.Y.) 20141001 6206


Cycloaddition is an essential tool in chemical synthesis. Instead of using light or heat as a driving force, marine sponges promote cycloaddition with a more versatile but poorly understood mechanism in producing pyrrole-imidazole alkaloids sceptrin, massadine, and ageliferin. Through de novo synthesis of sceptrin and massadine, we show that sponges may use single-electron oxidation as a central mechanism to promote three different types of cycloaddition. Additionally, we provide surprising evid  ...[more]

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