人工microrna介导的基因沉默在植物生物技术中的新应用

IF 3.6 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Luis Alberto Bravo-Vázquez, Ana Marta Castro-Pacheco, Rodrigo Pérez-Vargas, Joceline Fernanda Velázquez-Jiménez, Sujay Paul
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引用次数: 0

摘要

在不断变化和充满挑战的环境中,提高作物产量潜力对于满足快速增长的全球人口日益增长的需求至关重要。因此,在过去的几十年里,人们提出了不同的技术方法来加速植物育种。其中,人工微rna (amiRNAs)是一种具有显著潜力的创新工具。MicroRNAs (miRNAs)是一组内源性的小分子(20-24个核苷酸)非编码RNA分子,在基因调控中起着至关重要的作用。它们与植物的大多数生物过程有关,包括繁殖、发育、细胞分化、生物和非生物胁迫反应、代谢和植物结构。在这种情况下,amiRNAs是一种人工合成分子,旨在模仿内源性miRNAs的结构和功能,从而实现对特定核酸的靶向沉默。本文综述了amirna在植物生物学和农业领域的应用,如传染病和害虫的管理、植物代谢工程、增强植物对非生物胁迫的抵御能力等。此外,我们还讨论了基于amirna的植物基因沉默策略的未来前景,强调需要进一步研究以充分理解该技术的潜力,并将其范围转化为广泛采用基于amirna的植物育种策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Emerging Applications of Artificial MicroRNA-Mediated Gene Silencing in Plant Biotechnology.

Improving crop yield potential is crucial to meet the increasing demands of a rapidly expanding global population in an ever-changing and challenging environment. Therefore, different technological approaches have been proposed over the last decades to accelerate plant breeding. Among them, artificial microRNAs (amiRNAs) represent an innovative tool with remarkable potential to assist plant improvement. MicroRNAs (miRNAs) are a group of endogenous, small (20-24 nucleotides), non-coding RNA molecules that play a crucial role in gene regulation. They are associated with most biological processes of a plant, including reproduction, development, cell differentiation, biotic and abiotic stress responses, metabolism, and plant architecture. In this context, amiRNAs are synthetic molecules engineered to mimic the structure and function of endogenous miRNAs, allowing for the targeted silencing of specific nucleic acids. The current review explores the diverse applications of amiRNAs in plant biology and agriculture, such as the management of infectious agents and pests, the engineering of plant metabolism, and the enhancement of plant resilience to abiotic stress. Moreover, we address future perspectives on plant amiRNA-based gene silencing strategies, highlighting the need for further research to fully comprehend the potential of this technology and to translate its scope toward the widespread adoption of amiRNA-based strategies for plant breeding.

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来源期刊
Non-Coding RNA
Non-Coding RNA Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
6.70
自引率
4.70%
发文量
74
审稿时长
10 weeks
期刊介绍: Functional studies dealing with identification, structure-function relationships or biological activity of: small regulatory RNAs (miRNAs, siRNAs and piRNAs) associated with the RNA interference pathway small nuclear RNAs, small nucleolar and tRNAs derived small RNAs other types of small RNAs, such as those associated with splice junctions and transcription start sites long non-coding RNAs, including antisense RNAs, long ''intergenic'' RNAs, intronic RNAs and ''enhancer'' RNAs other classes of RNAs such as vault RNAs, scaRNAs, circular RNAs, 7SL RNAs, telomeric and centromeric RNAs regulatory functions of mRNAs and UTR-derived RNAs catalytic and allosteric (riboswitch) RNAs viral, transposon and repeat-derived RNAs bacterial regulatory RNAs, including CRISPR RNAS Analysis of RNA processing, RNA binding proteins, RNA signaling and RNA interaction pathways: DICER AGO, PIWI and PIWI-like proteins other classes of RNA binding and RNA transport proteins RNA interactions with chromatin-modifying complexes RNA interactions with DNA and other RNAs the role of RNA in the formation and function of specialized subnuclear organelles and other aspects of cell biology intercellular and intergenerational RNA signaling RNA processing structure-function relationships in RNA complexes RNA analyses, informatics, tools and technologies: transcriptomic analyses and technologies development of tools and technologies for RNA biology and therapeutics Translational studies involving long and short non-coding RNAs: identification of biomarkers development of new therapies involving microRNAs and other ncRNAs clinical studies involving microRNAs and other ncRNAs.
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