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蓝藻和甲藻中麻痹性贝类毒素的生物合成:分子概述。

Paralytic shellfish toxin biosynthesis in cyanobacteria and dinoflagellates: A molecular overview.

作者信息

Wang Da-Zhi, Zhang Shu-Fei, Zhang Yong, Lin Lin

机构信息

State Key Laboratory of Marine Environmental Science/College of the Environment and Ecology, Xiamen University, Xiamen 361005, China.

State Key Laboratory of Marine Environmental Science/College of the Environment and Ecology, Xiamen University, Xiamen 361005, China.

出版信息

J Proteomics. 2016 Mar 1;135:132-140. doi: 10.1016/j.jprot.2015.08.008. Epub 2015 Aug 25.

Abstract

UNLABELLED

Paralytic shellfish toxins (PSTs) are a group of water soluble neurotoxic alkaloids produced by two different kingdoms of life, prokaryotic cyanobacteria and eukaryotic dinoflagellates. Owing to the wide distribution of these organisms, these toxic secondary metabolites account for paralytic shellfish poisonings around the world. On the other hand, their specific binding to voltage-gated sodium channels makes these toxins potentially useful in pharmacological and toxicological applications. Much effort has been devoted to the biosynthetic mechanism of PSTs, and gene clusters encoding 26 proteins involved in PST biosynthesis have been unveiled in several cyanobacterial species. Functional analysis of toxin genes indicates that PST biosynthesis in cyanobacteria is a complex process including biosynthesis, regulation, modification and export. However, less is known about the toxin biosynthesis in dinoflagellates owing to our poor understanding of the massive genome and unique chromosomal characteristics [1]. So far, few genes involved in PST biosynthesis have been identified from dinoflagellates. Moreover, the proteins involved in PST production are far from being totally explored. Thus, the origin and evolution of PST biosynthesis in these two kingdoms are still controversial. In this review, we summarize the recent progress on the characterization of genes and proteins involved in PST biosynthesis in cyanobacteria and dinoflagellates, and discuss the standing evolutionary hypotheses concerning the origin of toxin biosynthesis as well as future perspectives in PST biosynthesis.

SCIENTIFIC QUESTION

Paralytic shellfish toxins (PSTs) are a group of potent neurotoxins which specifically block voltage-gated sodium channels in excitable cells and result in paralytic shellfish poisonings (PSPs) around the world. Two different kingdoms of life, cyanobacteria and dinoflagellates are able to produce PSTs. However, in contrast with cyanobacteria, our understanding of PST biosynthesis in dinoflagellates is extremely limited owing to their unique features. The origin and evolution of PST biosynthesis in these two kingdoms are still controversial.

TECHNICAL SIGNIFICANCE

High-throughput omics technologies, such as genomics, transcriptomics and proteomics provide powerful tools for the study of PST biosynthesis in cyanobacteria and dinoflagellates, and have shown their powerful potential with regard to revealing genes and proteins involved in PST biosynthesis in two kingdoms.

SCIENTIFIC SIGNIFICANCE

This review summarizes the recent progress in PST biosynthesis in cyanobacteria and dinoflagellates with focusing on the novel insights from omics technologies, and discusses the evolutionary relationship of toxin biosynthesis genes between these two kingdoms.

摘要

未标注

麻痹性贝类毒素(PSTs)是一类水溶性神经毒性生物碱,由原核蓝藻和真核甲藻这两个不同的生物界产生。由于这些生物分布广泛,这些有毒次生代谢产物导致了全球范围内的麻痹性贝类中毒事件。另一方面,它们与电压门控钠通道的特异性结合使这些毒素在药理学和毒理学应用中具有潜在用途。人们对PSTs的生物合成机制投入了大量精力,并且在几种蓝藻物种中已经揭示了编码参与PST生物合成的26种蛋白质的基因簇。毒素基因的功能分析表明,蓝藻中的PST生物合成是一个复杂的过程,包括生物合成、调控、修饰和输出。然而,由于我们对甲藻庞大的基因组和独特的染色体特征了解不足,对甲藻中毒素生物合成的了解较少[1]。到目前为止,从甲藻中鉴定出的参与PST生物合成的基因很少。此外,参与PST产生的蛋白质远未得到充分研究。因此,这两个生物界中PST生物合成的起源和进化仍然存在争议。在本综述中,我们总结了蓝藻和甲藻中参与PST生物合成的基因和蛋白质表征的最新进展,并讨论了关于毒素生物合成起源的现有进化假说以及PST生物合成的未来前景。

科学问题

麻痹性贝类毒素(PSTs)是一类强效神经毒素,它们特异性阻断可兴奋细胞中的电压门控钠通道,并导致全球范围内的麻痹性贝类中毒(PSP)。原核蓝藻和真核甲藻这两个不同的生物界能够产生PSTs。然而,与蓝藻相比,由于甲藻的独特特征,我们对其PST生物合成的了解极其有限。这两个生物界中PST生物合成的起源和进化仍然存在争议。

技术意义

高通量组学技术,如基因组学、转录组学和蛋白质组学,为研究蓝藻和甲藻中的PST生物合成提供了强大的工具,并且在揭示这两个生物界中参与PST生物合成的基因和蛋白质方面显示出了强大的潜力。

科学意义

本综述总结了蓝藻和甲藻中PST生物合成的最新进展,重点关注组学技术的新见解,并讨论了这两个生物界中毒素生物合成基因的进化关系。

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