Department of Chemistry, Northwestern University, Evanston, IL, USA.
Department of Medical Microbiology and Immunology and Bacteriology, University of Wisconsin-Madison, Madison, WI, USA.
Nat Prod Rep. 2021 Nov 17;38(11):2041-2065. doi: 10.1039/d1np00036e.
Covering: 2010 to 2021Organisms in nature have evolved into proficient synthetic chemists, utilizing specialized enzymatic machinery to biosynthesize an inspiring diversity of secondary metabolites. Often serving to boost competitive advantage for their producers, these secondary metabolites have widespread human impacts as antibiotics, anti-inflammatories, and antifungal drugs. The natural products discovery field has begun a shift away from traditional activity-guided approaches and is beginning to take advantage of increasingly available metabolomics and genomics datasets to explore undiscovered chemical space. Major strides have been made and now enable -omics-informed prioritization of chemical structures for discovery, including the prospect of confidently linking metabolites to their biosynthetic pathways. Over the last decade, more integrated strategies now provide researchers with pipelines for simultaneous identification of expressed secondary metabolites and their biosynthetic machinery. However, continuous collaboration by the natural products community will be required to optimize strategies for effective evaluation of natural product biosynthetic gene clusters to accelerate discovery efforts. Here, we provide an evaluative guide to scientific literature as it relates to studying natural product biosynthesis using genomics, metabolomics, and their integrated datasets. Particular emphasis is placed on the unique insights that can be gained from large-scale integrated strategies, and we provide source organism-specific considerations to evaluate the gaps in our current knowledge.
2010 年至 2021 年
自然界中的生物已经进化成为熟练的合成化学家,利用专门的酶促机制生物合成出令人惊叹的多种次级代谢产物。这些次级代谢产物通常有助于增强其产生者的竞争优势,它们作为抗生素、消炎药和抗真菌药物对人类有着广泛的影响。天然产物发现领域已经开始从传统的基于活性的方法转变,并开始利用越来越多可用的代谢组学和基因组学数据集来探索未被发现的化学空间。已经取得了重大进展,现在能够基于组学信息优先考虑用于发现的化学结构,包括有信心将代谢物与其生物合成途径联系起来的前景。在过去的十年中,更集成的策略现在为研究人员提供了同时鉴定表达的次级代谢产物及其生物合成机制的途径。然而,需要天然产物界的持续合作,以优化评估天然产物生物合成基因簇的策略,从而加速发现工作。在这里,我们提供了一个评估性指南,介绍了使用基因组学、代谢组学及其综合数据集研究天然产物生物合成的科学文献。特别强调了从大规模综合策略中获得的独特见解,并且我们提供了特定于源生物的考虑因素,以评估我们当前知识的差距。