Strain Prioritization and Genome Mining for Enediyne Natural Products

Author:

Yan Xiaohui1,Ge Huiming1,Huang Tingting1,Hindra 1,Yang Dong1,Teng Qihui1,Crnovčić Ivana1,Li Xiuling2,Rudolf Jeffrey D.1,Lohman Jeremy R.1,Gansemans Yannick3,Zhu Xiangcheng45,Huang Yong4,Zhao Li-Xing6,Jiang Yi6,Van Nieuwerburgh Filip3,Rader Christoph27,Duan Yanwen45,Shen Ben178

Affiliation:

1. Department of Chemistry, the Scripps Research Institute, Jupiter, Florida, USA

2. Department of Cancer Biology, the Scripps Research Institute, Jupiter, Florida, USA

3. Laboratory of Pharmaceutical Biotechnology, Ghent University, Ghent, Belgium

4. Xiangya International Academy of Translational Medicine, Central South University, Changsha, Hunan, China

5. Hunan Engineering Research Center of Combinatorial Biosynthesis and Natural Product Drug Discovery, Changsha, Hunan, China

6. Yunnan Institute of Microbiology, Yunnan University, Kunming, Yunnan, China

7. Department of Molecular Therapeutics, the Scripps Research Institute, Jupiter, Florida, USA

8. Natural Products Library Initiative at The Scripps Research Institute, the Scripps Research Institute, Jupiter, Florida, USA

Abstract

ABSTRACT The enediyne family of natural products has had a profound impact on modern chemistry, biology, and medicine, and yet only 11 enediynes have been structurally characterized to date. Here we report a genome survey of 3,400 actinomycetes, identifying 81 strains that harbor genes encoding the enediyne polyketide synthase cassettes that could be grouped into 28 distinct clades based on phylogenetic analysis. Genome sequencing of 31 representative strains confirmed that each clade harbors a distinct enediyne biosynthetic gene cluster. A genome neighborhood network allows prediction of new structural features and biosynthetic insights that could be exploited for enediyne discovery. We confirmed one clade as new C-1027 producers, with a significantly higher C-1027 titer than the original producer, and discovered a new family of enediyne natural products, the tiancimycins (TNMs), that exhibit potent cytotoxicity against a broad spectrum of cancer cell lines. Our results demonstrate the feasibility of rapid discovery of new enediynes from a large strain collection. IMPORTANCE Recent advances in microbial genomics clearly revealed that the biosynthetic potential of soil actinomycetes to produce enediynes is underappreciated. A great challenge is to develop innovative methods to discover new enediynes and produce them in sufficient quantities for chemical, biological, and clinical investigations. This work demonstrated the feasibility of rapid discovery of new enediynes from a large strain collection. The new C-1027 producers, with a significantly higher C-1027 titer than the original producer, will impact the practical supply of this important drug lead. The TNMs, with their extremely potent cytotoxicity against various cancer cells and their rapid and complete cancer cell killing characteristics, in comparison with the payloads used in FDA-approved antibody-drug conjugates (ADCs), are poised to be exploited as payload candidates for the next generation of anticancer ADCs. Follow-up studies on the other identified hits promise the discovery of new enediynes, radically expanding the chemical space for the enediyne family.

Funder

the Chinese Ministry of Education

National High Technology Joint Research Program of China

National High Technology Research and Development Program of China

HHS | National Institutes of Health

Publisher

American Society for Microbiology

Subject

Virology,Microbiology

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