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选择性剪接变异:在作物改良计划中的获取和利用。

Alternative Splicing Variation: Accessing and Exploiting in Crop Improvement Programs.

机构信息

Independent Researcher, Hyderabad 500016, India.

Agriculture and Bioeconomy Research Centre, Ryan Institute, University of Galway, University Road, H91 REW4 Galway, Ireland.

出版信息

Int J Mol Sci. 2023 Oct 15;24(20):15205. doi: 10.3390/ijms242015205.

DOI:10.3390/ijms242015205
PMID:37894886
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10607462/
Abstract

Alternative splicing (AS) is a gene regulatory mechanism modulating gene expression in multiple ways. AS is prevalent in all eukaryotes including plants. AS generates two or more mRNAs from the precursor mRNA (pre-mRNA) to regulate transcriptome complexity and proteome diversity. Advances in next-generation sequencing, omics technology, bioinformatics tools, and computational methods provide new opportunities to quantify and visualize AS-based quantitative trait variation associated with plant growth, development, reproduction, and stress tolerance. Domestication, polyploidization, and environmental perturbation may evolve novel splicing variants associated with agronomically beneficial traits. To date, pre-mRNAs from many genes are spliced into multiple transcripts that cause phenotypic variation for complex traits, both in model plant and field crops. Cataloguing and exploiting such variation may provide new paths to enhance climate resilience, resource-use efficiency, productivity, and nutritional quality of staple food crops. This review provides insights into AS variation alongside a gene expression analysis to select for novel phenotypic diversity for use in breeding programs. AS contributes to heterosis, enhances plant symbiosis (mycorrhiza and rhizobium), and provides a mechanistic link between the core clock genes and diverse environmental clues.

摘要

可变剪接(AS)是一种基因调控机制,通过多种方式调节基因表达。AS 在所有真核生物中都很普遍,包括植物。AS 从前体 mRNA(pre-mRNA)产生两个或更多的 mRNA,以调节转录组的复杂性和蛋白质组的多样性。下一代测序、组学技术、生物信息学工具和计算方法的进步为定量和可视化与植物生长、发育、繁殖和抗逆性相关的基于 AS 的数量性状变异提供了新的机会。驯化、多倍体化和环境干扰可能会进化出与农艺有益性状相关的新型剪接变体。迄今为止,许多基因的 pre-mRNA 被剪接成多个转录本,导致复杂性状的表型变异,无论是在模式植物还是大田作物中都是如此。对这种变异进行编目和利用,可能为提高主要粮食作物的气候适应能力、资源利用效率、生产力和营养价值提供新途径。本综述提供了关于 AS 变异的见解,以及基因表达分析,以选择用于育种计划的新型表型多样性。AS 有助于杂种优势,增强植物共生(菌根和根瘤菌),并为核心时钟基因与各种环境线索之间提供了一种机制联系。

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Evidence for the role of transcription factors in the co-transcriptional regulation of intron retention.转录因子在内含子保留的共转录调控中的作用证据。
Genome Biol. 2023 Mar 22;24(1):53. doi: 10.1186/s13059-023-02885-1.
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Rock, scissors, paper: How RNA structure informs function.石头、剪刀、布:RNA 结构如何影响其功能。
Plant Cell. 2023 May 29;35(6):1671-1707. doi: 10.1093/plcell/koad026.
4
SpliceVault predicts the precise nature of variant-associated mis-splicing.SpliceVault 预测了变体相关的错误剪接的确切性质。
Nat Genet. 2023 Feb;55(2):324-332. doi: 10.1038/s41588-022-01293-8. Epub 2023 Feb 6.
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Alternative Splicing of Is Involved in the Improvement of Thermotolerance in Wheat.可变剪接参与了小麦耐热性的提高。
Int J Mol Sci. 2023 Jan 5;24(2):1014. doi: 10.3390/ijms24021014.
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FungiExp: a user-friendly database and analysis platform for exploring fungal gene expression and alternative splicing.FungiExp:一个用户友好的数据库和分析平台,用于探索真菌基因表达和可变剪接。
Bioinformatics. 2023 Jan 1;39(1). doi: 10.1093/bioinformatics/btad042.
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Do not panic: An intron-centric guide to alternative splicing.不要惊慌:内含子为中心的可变剪接指南。
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