Cargando…

Strain Prioritization for Natural Product Discovery by a High-Throughput Real-Time PCR Method

[Image: see text] Natural products offer unmatched chemical and structural diversity compared to other small-molecule libraries, but traditional natural product discovery programs are not sustainable, demanding too much time, effort, and resources. Here we report a strain prioritization method for n...

Descripción completa

Detalles Bibliográficos
Autores principales: Hindra, Huang, Tingting, Yang, Dong, Rudolf, Jeffrey D., Xie, Pengfei, Xie, Guangbo, Teng, Qihui, Lohman, Jeremy R., Zhu, Xiangcheng, Huang, Yong, Zhao, Li-Xing, Jiang, Yi, Duan, Yanwen, Shen, Ben
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society and American Society of Pharmacognosy 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4208669/
https://www.ncbi.nlm.nih.gov/pubmed/25238028
http://dx.doi.org/10.1021/np5006168
_version_ 1782341160076836864
author Hindra,
Huang, Tingting
Yang, Dong
Rudolf, Jeffrey D.
Xie, Pengfei
Xie, Guangbo
Teng, Qihui
Lohman, Jeremy R.
Zhu, Xiangcheng
Huang, Yong
Zhao, Li-Xing
Jiang, Yi
Duan, Yanwen
Shen, Ben
author_facet Hindra,
Huang, Tingting
Yang, Dong
Rudolf, Jeffrey D.
Xie, Pengfei
Xie, Guangbo
Teng, Qihui
Lohman, Jeremy R.
Zhu, Xiangcheng
Huang, Yong
Zhao, Li-Xing
Jiang, Yi
Duan, Yanwen
Shen, Ben
author_sort Hindra,
collection PubMed
description [Image: see text] Natural products offer unmatched chemical and structural diversity compared to other small-molecule libraries, but traditional natural product discovery programs are not sustainable, demanding too much time, effort, and resources. Here we report a strain prioritization method for natural product discovery. Central to the method is the application of real-time PCR, targeting genes characteristic to the biosynthetic machinery of natural products with distinct scaffolds in a high-throughput format. The practicality and effectiveness of the method were showcased by prioritizing 1911 actinomycete strains for diterpenoid discovery. A total of 488 potential diterpenoid producers were identified, among which six were confirmed as platensimycin and platencin dual producers and one as a viguiepinol and oxaloterpin producer. While the method as described is most appropriate to prioritize strains for discovering specific natural products, variations of this method should be applicable to the discovery of other classes of natural products. Applications of genome sequencing and genome mining to the high-priority strains could essentially eliminate the chance elements from traditional discovery programs and fundamentally change how natural products are discovered.
format Online
Article
Text
id pubmed-4208669
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher American Chemical Society and American Society of Pharmacognosy
record_format MEDLINE/PubMed
spelling pubmed-42086692015-09-19 Strain Prioritization for Natural Product Discovery by a High-Throughput Real-Time PCR Method Hindra, Huang, Tingting Yang, Dong Rudolf, Jeffrey D. Xie, Pengfei Xie, Guangbo Teng, Qihui Lohman, Jeremy R. Zhu, Xiangcheng Huang, Yong Zhao, Li-Xing Jiang, Yi Duan, Yanwen Shen, Ben J Nat Prod [Image: see text] Natural products offer unmatched chemical and structural diversity compared to other small-molecule libraries, but traditional natural product discovery programs are not sustainable, demanding too much time, effort, and resources. Here we report a strain prioritization method for natural product discovery. Central to the method is the application of real-time PCR, targeting genes characteristic to the biosynthetic machinery of natural products with distinct scaffolds in a high-throughput format. The practicality and effectiveness of the method were showcased by prioritizing 1911 actinomycete strains for diterpenoid discovery. A total of 488 potential diterpenoid producers were identified, among which six were confirmed as platensimycin and platencin dual producers and one as a viguiepinol and oxaloterpin producer. While the method as described is most appropriate to prioritize strains for discovering specific natural products, variations of this method should be applicable to the discovery of other classes of natural products. Applications of genome sequencing and genome mining to the high-priority strains could essentially eliminate the chance elements from traditional discovery programs and fundamentally change how natural products are discovered. American Chemical Society and American Society of Pharmacognosy 2014-09-19 2014-10-24 /pmc/articles/PMC4208669/ /pubmed/25238028 http://dx.doi.org/10.1021/np5006168 Text en Copyright © 2014 American Chemical Society and American Society of Pharmacognosy Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Hindra,
Huang, Tingting
Yang, Dong
Rudolf, Jeffrey D.
Xie, Pengfei
Xie, Guangbo
Teng, Qihui
Lohman, Jeremy R.
Zhu, Xiangcheng
Huang, Yong
Zhao, Li-Xing
Jiang, Yi
Duan, Yanwen
Shen, Ben
Strain Prioritization for Natural Product Discovery by a High-Throughput Real-Time PCR Method
title Strain Prioritization for Natural Product Discovery by a High-Throughput Real-Time PCR Method
title_full Strain Prioritization for Natural Product Discovery by a High-Throughput Real-Time PCR Method
title_fullStr Strain Prioritization for Natural Product Discovery by a High-Throughput Real-Time PCR Method
title_full_unstemmed Strain Prioritization for Natural Product Discovery by a High-Throughput Real-Time PCR Method
title_short Strain Prioritization for Natural Product Discovery by a High-Throughput Real-Time PCR Method
title_sort strain prioritization for natural product discovery by a high-throughput real-time pcr method
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4208669/
https://www.ncbi.nlm.nih.gov/pubmed/25238028
http://dx.doi.org/10.1021/np5006168
work_keys_str_mv AT hindra strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT huangtingting strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT yangdong strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT rudolfjeffreyd strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT xiepengfei strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT xieguangbo strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT tengqihui strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT lohmanjeremyr strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT zhuxiangcheng strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT huangyong strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT zhaolixing strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT jiangyi strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT duanyanwen strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod
AT shenben strainprioritizationfornaturalproductdiscoverybyahighthroughputrealtimepcrmethod