Silencing cryptic specialized metabolism in Streptomyces by the nucleoid-associated protein Lsr2

Lsr2 is a nucleoid-associated protein conserved throughout the actinobacteria, including the antibiotic-producing species encode paralogous Lsr2 proteins (Lsr2 and Lsr2-like, or LsrL), and we show here that of the two, Lsr2 has greater functional significance. We found that Lsr2 binds AT-rich sequen...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:eLife 2019-06, Vol.8
Hauptverfasser: Gehrke, Emma J, Zhang, Xiafei, Pimentel-Elardo, Sheila M, Johnson, Andrew R, Rees, Christiaan A, Jones, Stephanie E, Hindra, Gehrke, Sebastian S, Turvey, Sonya, Boursalie, Suzanne, Hill, Jane E, Carlson, Erin E, Nodwell, Justin R, Elliot, Marie A
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:Lsr2 is a nucleoid-associated protein conserved throughout the actinobacteria, including the antibiotic-producing species encode paralogous Lsr2 proteins (Lsr2 and Lsr2-like, or LsrL), and we show here that of the two, Lsr2 has greater functional significance. We found that Lsr2 binds AT-rich sequences throughout the chromosome, and broadly represses gene expression. Strikingly, specialized metabolic clusters were over-represented amongst its targets, and the cryptic nature of many of these clusters appears to stem from Lsr2-mediated repression. Manipulating Lsr2 activity in model species and uncharacterized isolates resulted in the production of new metabolites not seen in wild type strains. Our results suggest that the transcriptional silencing of biosynthetic clusters by Lsr2 may protect from the inappropriate expression of specialized metabolites, and provide global control over arsenal of signaling and antagonistic compounds.
ISSN:2050-084X
2050-084X
DOI:10.7554/eLife.47691