Molecular evolution of ovothiol biosynthesis in animal life reveals diversity of the natural antioxidant ovothiols in Cnidaria.

IF 7.1 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Annalisa Zuccarotto, Marco Sollitto, Lucas Leclère, Lucia Panzella, Marco Gerdol, Serena Leone, Immacolata Castellano
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Abstract

Sulfoxide synthase OvoA is the key enzyme involved in the biosynthesis of ovothiols (OSHs), secondary metabolites endowed with unique antioxidant properties. Understanding the evolution of such enzymes and the diversity of their metabolites should reveal fundamental mechanisms governing redox signaling and environmental adaptation. "Early-branching" animals such as Cnidaria display unique molecular diversity and symbiotic relationships responsible for the biosynthesis of natural products, however, they have been neglected in previous research on antioxidants and OSHs. In this work, we have integrated genome and transcriptome mining with biochemical analyses to study the evolution and diversification of OSHs biosynthesis in cnidarians. By tracing the history of the ovoA gene, we inferred its loss in the latest common ancestor of Medusozoa, followed by the acquisition of a unique ovoB/ovoA chimaeric gene in Hydrozoa, likely through a horizontal gene transfer from dinoflagellate donors. While Anthozoa (corals and anemones), bearing canonical ovoA genes, produced a striking variety of OSHs (A, B, and C), the multifunctional enzyme in Hydrozoa was related to OSH B biosynthesis, as shown in Clytia hemisphaerica. Surprisingly, the ovoA-lacking jellyfish Aurelia aurita and Pelagia noctiluca also displayed OSHs, and we provided evidence of their incorporation from external sources. Finally, transcriptome mining revealed ovoA conserved expression pattern during larval development from Cnidaria to more evolved organisms and its regulation by external stimuli, such as UV exposure. The results of our study shed light on the origin and diversification of OSH biosynthesis in basal animals and highlight the importance of redox-active molecules from ancient metazoans as cnidarians to vertebrates.

卵硫醇生物合成的分子进化揭示了刺胞菌天然抗氧化剂卵硫醇的多样性。
亚砜合成酶OvoA是参与卵硫醇(OSHs)生物合成的关键酶,卵硫醇是具有独特抗氧化特性的次生代谢产物。了解这些酶的进化及其代谢物的多样性将揭示控制氧化还原信号和环境适应的基本机制。“早期分支”动物如刺胞菌显示出独特的分子多样性和共生关系,负责天然产物的生物合成,然而,它们在以往的抗氧化剂和职业安全与健康研究中被忽视。在这项工作中,我们将基因组和转录组挖掘与生化分析相结合,研究刺胞动物OSHs生物合成的进化和多样化。通过追踪ovoA基因的历史,我们推断其在水母动物最新的共同祖先中丢失,随后在水螅动物中获得了独特的ovoB/ovoA嵌合基因,可能是通过鞭毛虫供体的水平基因转移。而珊瑚虫(珊瑚和海葵),携带典型的ovoA基因,产生惊人的多种OSHs (a, B和C),水螅虫的多功能酶与oshb的生物合成有关,如Clytia hemisphaerica所示。令人惊讶的是,缺乏卵的水母Aurelia aurita和Pelagia noctiluca也显示出OSHs,我们从外部来源提供了它们合并的证据。最后,转录组挖掘揭示了ovoA在刺胞虫到更进化的生物的幼虫发育过程中的保守表达模式及其受外界刺激(如紫外线暴露)的调节。我们的研究结果揭示了基础动物中OSH生物合成的起源和多样化,并强调了来自古老后生动物的氧化还原活性分子对脊椎动物的重要性。
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来源期刊
Free Radical Biology and Medicine
Free Radical Biology and Medicine 医学-内分泌学与代谢
CiteScore
14.00
自引率
4.10%
发文量
850
审稿时长
22 days
期刊介绍: Free Radical Biology and Medicine is a leading journal in the field of redox biology, which is the study of the role of reactive oxygen species (ROS) and other oxidizing agents in biological systems. The journal serves as a premier forum for publishing innovative and groundbreaking research that explores the redox biology of health and disease, covering a wide range of topics and disciplines. Free Radical Biology and Medicine also commissions Special Issues that highlight recent advances in both basic and clinical research, with a particular emphasis on the mechanisms underlying altered metabolism and redox signaling. These Special Issues aim to provide a focused platform for the latest research in the field, fostering collaboration and knowledge exchange among researchers and clinicians.
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