Genome mining of Streptomyces xinghaiensis NRRL B-24674T for the discovery of the gene cluster involved in anticomplement activities and detection of novel xiamycin analogs
Marine actinobacterium Streptomyces xinghaiensis NRRL B-24674 T has been characterized as a novel species, but thus far, its biosynthetic potential remains unexplored. In this study, the high-quality genome sequence of S. xinghaiensis NRRL B-24674 T was obtained, and the production of anticomplement...
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Veröffentlicht in: | Applied microbiology and biotechnology 2018-11, Vol.102 (22), p.9549-9562 |
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Sprache: | eng |
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Zusammenfassung: | Marine actinobacterium
Streptomyces xinghaiensis
NRRL B-24674
T
has been characterized as a novel species, but thus far, its biosynthetic potential remains unexplored. In this study, the high-quality genome sequence of
S. xinghaiensis
NRRL B-24674
T
was obtained, and the production of anticomplement agents, xiamycin analogs, and siderophores was investigated by genome mining. Anticomplement compounds are valuable for combating numerous diseases caused by the abnormal activation of the human complement system. The biosynthetic gene cluster (BGC)
nrps1
resembles that of complestatins, which are potent microbial-derived anticomplement agents. The identification of the
nrps1
BGC revealed a core peptide that differed from that in complestatin; thus, we studied the anticomplement activity of this strain. The culture broth of
S. xinghaiensis
NRRL B-24674
T
displayed good anticomplement activity. Subsequently, the disruption of the genes in the
nrps1
BGC resulted in the loss of anticomplement activity, confirming the involvement of this BGC in the biosynthesis of anticomplement agents. In addition, the mining of the BGC
tep5
, which resembles that of the antiviral pentacyclic indolosesquiterpene xiamycin, resulted in the discovery of nine xiamycin analogs, including three novel compounds. In addition to the BGCs responsible for desferrioxamine B, neomycin, ectoine, and carotenoid, 18 BGCs present in the genome are predicted to be novel. The results of this study unveil the potential of
S. xinghaiensis
as a producer of novel anticomplement agents and provide a basis for further exploration of the biosynthetic potential of
S. xinghaiensis
NRRL B-24674
T
for the discovery of novel bioactive compounds by genome mining. |
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ISSN: | 0175-7598 1432-0614 |
DOI: | 10.1007/s00253-018-9337-2 |