引起有害藻华的脆性异球藻中的新型毒素生物合成基因簇:洞察麻痹性贝类毒素的起源。

IF 3.2 2区 生物学 Q2 EVOLUTIONARY BIOLOGY Genome Biology and Evolution Pub Date : 2025-01-06 DOI:10.1093/gbe/evae248
David B Stern, R Taylor Raborn, Sean P Lovett, Noelani R Boise, Lakeshia Carrasquilla, Sana Enke, Diana Radune, Dana L Woodruff, Karen L Wahl, M J Rosovitz
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引用次数: 0

摘要

有害藻华(HABs)由真核甲藻和原核蓝藻引起,对生态、经济和公共卫生造成严重后果,近来其发生率越来越高。尽管各方都在努力开展研究,以确定导致有害藻华的生物体的基因组并描述其特征,但对有害藻华产生的麻痹性贝类毒素(PSTs)的基因组基础和进化起源的研究充其量仍是不完整的。麻痹性贝类毒素(PST)的基因组结构特别复杂,系统发育分布也很神秘,横跨甲藻和多个蓝藻属。我们利用过滤和提取技术从非异源培养物中筛选出所需的蓝藻,并结合长短读数测序技术,生成了清脆紫菀UTEX LB 1556 的参考质量混合基因组组装,这种产PST的淡水蓝藻被认为是其门类中已知基因组最大的蓝藻。我们报告了一个完整、新颖的 PST 沙西毒素生物合成基因簇。通过利用该生物合成基因簇,我们发现该假说得到了支持,即 PST 的产生是通过广泛和重复的水平基因转移出现在不同的蓝藻系中的。这项工作证明了长线程测序和元基因组组装在增进我们对 PST 生物合成基因簇多样性的了解方面的作用,并提出了 PST 生物合成基因的起源机制。
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Novel Toxin Biosynthetic Gene Cluster in Harmful Algal Bloom-Causing Heteroscytonema crispum: Insights into the Origins of Paralytic Shellfish Toxins.

Caused by both eukaryotic dinoflagellates and prokaryotic cyanobacteria, harmful algal blooms are events of severe ecological, economic, and public health consequence, and their incidence has become more common of late. Despite coordinated research efforts to identify and characterize the genomes of harmful algal bloom-causing organisms, the genomic basis and evolutionary origins of paralytic shellfish toxins produced by harmful algal blooms remain at best incomplete. The paralytic shellfish toxin saxitoxin has an especially complex genomic architecture and enigmatic phylogenetic distribution, spanning dinoflagellates and multiple cyanobacterial genera. Using filtration and extraction techniques to target the desired cyanobacteria from nonaxenic culture, coupled with a combination of short- and long-read sequencing, we generated a reference-quality hybrid genome assembly for Heteroscytonema crispum UTEX LB 1556, a freshwater, paralytic shellfish toxin-producing cyanobacterium thought to have the largest known genome in its phylum. We report a complete, novel biosynthetic gene cluster for the paralytic shellfish toxin saxitoxin. Leveraging this biosynthetic gene cluster, we find support for the hypothesis that paralytic shellfish toxin production has appeared in divergent Cyanobacteria lineages through widespread and repeated horizontal gene transfer. This work demonstrates the utility of long-read sequencing and metagenomic assembly toward advancing our understanding of paralytic shellfish toxin biosynthetic gene cluster diversity and suggests a mechanism for the origin of paralytic shellfish toxin biosynthetic genes.

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来源期刊
Genome Biology and Evolution
Genome Biology and Evolution EVOLUTIONARY BIOLOGY-GENETICS & HEREDITY
CiteScore
5.80
自引率
6.10%
发文量
169
审稿时长
1 months
期刊介绍: About the journal Genome Biology and Evolution (GBE) publishes leading original research at the interface between evolutionary biology and genomics. Papers considered for publication report novel evolutionary findings that concern natural genome diversity, population genomics, the structure, function, organisation and expression of genomes, comparative genomics, proteomics, and environmental genomic interactions. Major evolutionary insights from the fields of computational biology, structural biology, developmental biology, and cell biology are also considered, as are theoretical advances in the field of genome evolution. GBE’s scope embraces genome-wide evolutionary investigations at all taxonomic levels and for all forms of life — within populations or across domains. Its aims are to further the understanding of genomes in their evolutionary context and further the understanding of evolution from a genome-wide perspective.
期刊最新文献
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