Implications of Endogenous Small Regulatory RNAs Survey in Mollusks on Gene Silencing Approaches

IF 2.8 3区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Cory Von Eiff, Beatriz Schueng Zancanela, Megan Gima, Kevin Quito, Manitejus Kotikalapudi, Sergio Valdivia, Yulica Santos-Ortega, Alex Sutton Flynt
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Abstract

Mollusks are an abundant group of animals, with many ecologically and economically important members that are phylogenetically distinct from nearly all genetic model organisms. This study provides a clade-wide evaluation of small RNA biogenesis pathways, with emphasis on the eastern oyster, Crassostrea virginica. A more thorough characterization of these molecules supports rationale design of RNA interference (RNAi) approaches for manipulation of mollusk genetics. Like other animal groups, mollusks have conserved microRNAs (miRNAs), with some shared with ecdysozoans and deuterostomes; however, there was no evidence of a dedicated endogenous small-interfering RNA (siRNA) pathway. These findings suggest that alternatives to long double-stranded RNA (dsRNA)-mediated knockdown, specifically short-hairpin RNAs or small duplex RNAs, are likely more appropriate for gene silencing in mollusks. The study also finds abundant Piwi-interacting RNAs (piRNAs) in both soma and gonads with some mollusk-specific aspects. Many invertebrates exhibit somatic piRNAs; however, mollusk piRNAs appear to be restricted to a subset of cells, suggesting that the potential of piRNA-based RNAi is also limited. Further, individual animals also express a unique collection of piRNAs that seem to be only partially determined through inheritance from parents. Together, this work defines the RNAi mechanisms in mollusks and provides insights into the phenotypic diversity seen in this group.

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软体动物内源性小调控rna研究对基因沉默方法的启示。
软体动物是数量众多的一组动物,有许多生态和经济上重要的成员,在系统发育上与几乎所有遗传模式生物不同。本研究提供了小RNA生物发生途径的进化系范围内的评估,重点是东部牡蛎,Crassostrea virginica。更彻底的表征这些分子支持基本原理设计的RNA干扰(RNAi)方法,以操纵软体动物遗传学。与其他动物类群一样,软体动物具有保守的microRNAs (miRNAs),其中一些与外生动物和后口动物共享;然而,没有证据表明存在专门的内源性小干扰RNA (siRNA)途径。这些发现表明,替代长双链RNA (dsRNA)介导的敲除,特别是短发夹RNA或小双链RNA,可能更适合于软体动物的基因沉默。该研究还发现,在软体动物的躯体和性腺中都存在丰富的piwi相互作用rna (pirna)。许多无脊椎动物表现出体细胞pirna;然而,软体动物的pirna似乎仅限于细胞的一个子集,这表明基于pirna的RNAi的潜力也是有限的。此外,个体动物还表达了一组独特的pirna,这些pirna似乎只是部分由父母遗传决定的。总之,这项工作定义了软体动物中的RNAi机制,并提供了对这一群体中所见表型多样性的见解。
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来源期刊
Marine Biotechnology
Marine Biotechnology 工程技术-海洋与淡水生物学
CiteScore
4.80
自引率
3.30%
发文量
95
审稿时长
2 months
期刊介绍: Marine Biotechnology welcomes high-quality research papers presenting novel data on the biotechnology of aquatic organisms. The journal publishes high quality papers in the areas of molecular biology, genomics, proteomics, cell biology, and biochemistry, and particularly encourages submissions of papers related to genome biology such as linkage mapping, large-scale gene discoveries, QTL analysis, physical mapping, and comparative and functional genome analysis. Papers on technological development and marine natural products should demonstrate innovation and novel applications.
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