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Open AccessJournal ArticleDOI

Chemical ecology of antibiotic production by actinomycetes

TLDR
The environmental triggers and cues that control natural product formation by actinomycetes are reviewed and pointers as to how these insights may be harnessed for drug discovery are provided.
Abstract
Actinomycetes are a diverse family of filamentous bacteria that produce a plethora of natural products relevant for agriculture, biotechnology and medicine, including the majority of the antibiotics we use in the clinic. Rather than as free-living bacteria, many actinomycetes have evolved to live in symbiosis with among others plants, fungi, insects and sponges. As a common theme, these organisms profit from the natural products and enzymes produced by the actinomycetes, for example, for protection against pathogenic microbes, for growth promotion or for the degradation of complex natural polymers such as lignocellulose. At the same time, the actinomycetes benefit from the resources of the hosts they interact with. Evidence is accumulating that these interactions control the expression of biosynthetic gene clusters and have played a major role in the evolution of the high chemical diversity of actinomycete-produced secondary metabolites. Many of the biosynthetic gene clusters for antibiotics are poorly expressed under laboratory conditions, but they are likely expressed in response to host-specific demands. Here, we review the environmental triggers and cues that control natural product formation by actinomycetes and provide pointers as to how these insights may be harnessed for drug discovery.

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antiSMASH 5.0: updates to the secondary metabolite genome mining pipeline

TL;DR: AntiSMASH 5 adds detection rules for clusters encoding the biosynthesis of acyl-amino acids, β-lactones, fungal RiPPs, RaS-Ri PPs, polybrominated diphenyl ethers, C-nucleosides, PPY-like ketones and lipolanthines and provides more detailed predictions for type II polyketide synthase-encoding gene clusters.
Journal ArticleDOI

Antibiotics: past, present and future

TL;DR: It is argued that the future of antibiotic discovery looks bright as new technologies such as genome mining and editing are deployed to discover new natural products with diverse bioactivities.
Journal ArticleDOI

Competition for iron drives phytopathogen control by natural rhizosphere microbiomes.

TL;DR: This study establishes a causal mechanistic link between microbiome-level competition for iron and plant protection and opens promising avenues to use siderophore-mediated interactions as a tool for microbiome engineering and pathogen control.
Journal ArticleDOI

Regulation of antibiotic production in Actinobacteria: new perspectives from the post-genomic era.

TL;DR: An update of the review of the Streptomycetaceae, a family of Gram-positive bacteria that inhabit both soil and aquatic sediments, focuses on recent developments in the understanding of the underlying regulatory networks, ecological triggers of natural product biosynthesis, contributions from comparative genomics and approaches to awaken the biosynthesis of otherwise silent or cryptic natural products.
References
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Journal ArticleDOI

The Role of Root Exudates in Rhizosphere Interactions with Plants and Other Organisms

TL;DR: Recent advances in elucidating the role of root exudates in interactions between plant roots and other plants, microbes, and nematodes present in the rhizosphere are described.
Book

Isolation and characterization

TL;DR: Animal Models and Therapy, Directed Differentiation and Characterization of Genetically Modified Embryonic Stem Cells for Therapy, and Use of Differentiating Embryonics Stem cells in the Parkinsonian Mouse Model are reviewed.
Journal ArticleDOI

Two-component signal transduction

TL;DR: Detailed analyses of a relatively small number of representative proteins provide a foundation for understanding this large family of signaling proteins, which consists of two conserved components, a histidine protein kinase and a response regulator protein.
Journal ArticleDOI

Bioactive microbial metabolites.

TL;DR: The short history, specific features and future prospects of research of microbial metabolites, including antibiotics and other bioactive metabolites, are summarized.
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