Metabolite induction via microorganism co-culture: A potential way to enhance chemical diversity for drug discovery

微生物 药物发现 基因组 计算生物学 生物 代谢组学 代谢物 鉴定(生物学) 生物技术 基因 细菌 遗传学 生物化学 生物信息学 生态学
作者
Samuel Bertrand,Nadine Bohni,Sylvain Schnée,Olivier Schumpp,Katia Gindro,Jean‐Luc Wolfender
出处
期刊:Biotechnology Advances [Elsevier BV]
卷期号:32 (6): 1180-1204 被引量:465
标识
DOI:10.1016/j.biotechadv.2014.03.001
摘要

Microorganisms have a long track record as important sources of novel bioactive natural products, particularly in the field of drug discovery. While microbes have been shown to biosynthesize a wide array of molecules, recent advances in genome sequencing have revealed that such organisms have the potential to yield even more structurally diverse secondary metabolites. Thus, many microbial gene clusters may be silent under standard laboratory growth conditions. In the last ten years, several methods have been developed to aid in the activation of these cryptic biosynthetic pathways. In addition to the techniques that demand prior knowledge of the genome sequences of the studied microorganisms, several genome sequence-independent tools have been developed. One of these approaches is microorganism co-culture, involving the cultivation of two or more microorganisms in the same confined environment. Microorganism co-culture is inspired by the natural microbe communities that are omnipresent in nature. Within these communities, microbes interact through signaling or defense molecules. Such compounds, produced dynamically, are of potential interest as new leads for drug discovery. Microorganism co-culture can be achieved in either solid or liquid media and has recently been used increasingly extensively to study natural interactions and discover new bioactive metabolites. Because of the complexity of microbial extracts, advanced analytical methods (e.g., mass spectrometry methods and metabolomics) are key for the successful detection and identification of co-culture-induced metabolites. This review focuses on co-culture studies that aim to increase the diversity of metabolites obtained from microbes. The various strategies are summarized with a special emphasis on the multiple methods of performing co-culture experiments. The analytical approaches for studying these interaction phenomena are discussed, and the chemical diversity and biological activity observed among the induced metabolites are described.
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