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Published on: September 28, 2021
First report of PST-producing Microseira wollei from China reveals its novel toxin profile
Youxin Chen1, Yongguang Jiang2, Zhongshi He3
1CAS Key Laboratory of Algal Biology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
Abstract:
Microseira wollei, a globally distributed freshwater bloom-forming benthic cyanobacterium, is known for its production of cyanotoxins and taste and odor (T&O). While CYN (Cylindrospermopsin)-producing populations of M. wollei are confined to Australia, PST (Paralytic shellfish toxins)-producing populations have been exclusively documented in North America. In this study, four benthic cyanobacterial strains, isolated from West Lake in China, were identified as M. wollei based on morphological and phylogenetic analyses. Detection of sxtA gene and UPLC-MS/MS analysis conclusively confirmed the PST-producing capability of M. wollei CHAB5998. In the phylogenetic tree of 16S rDNA, M. wollei strains formed a monophyletic group with two subclades. Notably, non-PST-producing Chinese strains clustered with Australian strains in Clade II, while all other strains, including PST-producing ones, clustered in Clade I. Additionally, CHAB5998 contains ten PST variants, of which STX, NEO, GTX2, GTX3, GTX5 and C1 were identified for the first time in M. wollei. Sequence analysis of PST biosynthetic gene cluster (sxt) genes indicated potential base variations, gene rearrangements, insertions, and deletions in the strain CHAB5998. Also, sxt gene has a longer evolutionary history in M. wollei than that in cyanobacteria from Nostocales. Multiple recombination breakpoints detected in sxt genes and the inconsistency in the topology of the phylogenetic trees between sxt and 16S rDNA suggested that multiple horizontal gene transfers (HGT) have occurred. Overall, the present study marks the first documented occurrence of PST-producing M. wollei outside of North America and identifies it as the first toxic freshwater benthic cyanobacterium in China. This revelation implies that benthic cyanobacteria may pose a higher environmental risk in China than previously acknowledged.
Insights
Paralytic shellfish toxins (PST)-producing Microseira wollei, a bloom-forming cyanobacterium, has been identified in China for the first time. This discovery highlights a new environmental risk from toxic benthic cyanobacteria in the region.
Area of Science:
- Environmental Microbiology
- Cyanobacterial Toxinology
- Aquatic Ecology
Background:
- Microseira wollei is a globally distributed, bloom-forming benthic cyanobacterium known for producing cyanotoxins and causing taste and odor issues.
- PST-producing M. wollei populations were previously documented only in North America, while CYN-producing populations are confined to Australia.
Purpose of the Study:
- To identify and characterize benthic cyanobacterial strains from West Lake, China.
- To investigate the toxin-producing capabilities and phylogenetic relationships of M. wollei strains found in China.
Main Methods:
- Morphological and phylogenetic analyses (16S rDNA) were used for strain identification.
- Detection of the sxtA gene and Liquid Chromatography-Tandem Mass Spectrometry (UPLC-MS/MS) were employed to confirm PST production.
- Sequence analysis of the PST biosynthetic gene cluster (sxt) was performed.
Main Results:
- Four benthic cyanobacterial strains from West Lake, China, were identified as M. wollei.
- Strain CHAB5998 was confirmed as PST-producing, containing ten PST variants, including six novel ones for M. wollei.
- Phylogenetic analysis revealed distinct clades for PST-producing and non-PST-producing strains, suggesting horizontal gene transfer (HGT) events in sxt genes.
Conclusions:
- This study reports the first occurrence of PST-producing M. wollei outside North America and identifies it as China's first toxic freshwater benthic cyanobacterium.
- The findings indicate that benthic cyanobacteria may represent a greater environmental risk in China than previously understood.
- Evidence suggests that horizontal gene transfer has played a significant role in the evolution of PST biosynthesis in M. wollei.
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