Third generation sequencing transforming plant genome research: Current trends and challenges.

IF 2.6 3区 生物学 Q2 GENETICS & HEREDITY Gene Pub Date : 2025-03-10 Epub Date: 2024-12-24 DOI:10.1016/j.gene.2024.149187
Upasana Medhi, Chayanika Chaliha, Archana Singh, Bikash K Nath, Eeshan Kalita
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Abstract

In recent years, third-generation sequencing (TGS) technologies have transformed genomics and transcriptomics research, providing novel opportunities for significant discoveries. The long-read sequencing platforms, with their unique advantages over next-generation sequencing (NGS), including a definitive protocol, reduced operational time, and real-time sequencing, possess the potential to transform plant genomics. TGS optimizes and enhances the efficiency of data analysis by removing the necessity for time-consuming assembly tools. The current review examines the development and application of bioinformatics tools for data analysis and annotation, driven by the rapid advancement of TGS platforms like Oxford Nanopore Technologies and Pacific Biosciences. Transcriptome analysis utilizing TGS has been extensively employed to elucidate complex plant transcriptomes and genomes, particularly those characterized by high frequencies of duplicated genomes and repetitive sequences. As a result, current methodologies that allow for generating transcriptomes and comprehensive whole-genome sequences of complex plant genomes employing tailored hybrid sequencing techniques that integrate NGS and TGS technologies have been emphasized herein. This paper, thus, articulates a vision for a future in which TGS effectively addresses the challenges faced in plant research, offering a comprehensive understanding of its advantages, applications, limitations, and promising prospects.

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第三代测序转化植物基因组研究:当前趋势与挑战。
近年来,第三代测序(TGS)技术已经改变了基因组学和转录组学研究,为重大发现提供了新的机会。与下一代测序(NGS)相比,长读测序平台具有明确的方案、缩短的操作时间和实时测序等独特优势,具有改变植物基因组学的潜力。TGS通过消除耗时的装配工具来优化和提高数据分析的效率。在TGS平台(如Oxford Nanopore Technologies和Pacific Biosciences)快速发展的推动下,目前的综述考察了用于数据分析和注释的生物信息学工具的开发和应用。利用TGS的转录组分析已被广泛用于阐明复杂的植物转录组和基因组,特别是那些具有高频率重复基因组和重复序列的植物。因此,本文强调了目前使用整合NGS和TGS技术的定制杂交测序技术来生成转录组和复杂植物基因组的综合全基因组序列的方法。因此,本文对TGS有效解决植物研究面临的挑战的未来前景进行了展望,并对其优势、应用、局限性和前景进行了全面的了解。
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来源期刊
Gene
Gene 生物-遗传学
CiteScore
6.10
自引率
2.90%
发文量
718
审稿时长
42 days
期刊介绍: Gene publishes papers that focus on the regulation, expression, function and evolution of genes in all biological contexts, including all prokaryotic and eukaryotic organisms, as well as viruses.
期刊最新文献
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