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Improving the Chromosome-Level Genome Assembly of the Siamese Fighting Fish (Betta splendens) in a University Master’s Course

机译:在大学硕士课程中改进暹罗斗鱼(Betta splendens)的染色体水平基因组装配

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摘要

Ever decreasing costs along with advances in sequencing and library preparation technologies enable even small research groups to generate chromosome-level assemblies today. Here we report the generation of an improved chromosome-level assembly for the Siamese fighting fish ( ) that was carried out during a practical university master’s course. The Siamese fighting fish is a popular aquarium fish and an emerging model species for research on aggressive behavior. We updated the current genome assembly by generating a new long-read nanopore-based assembly with subsequent scaffolding to chromosome-level using previously published Hi-C data. The use of ∼35x nanopore-based long-read data sequenced on a MinION platform (Oxford Nanopore Technologies) allowed us to generate a baseline assembly of only 1,276 contigs with a contig N50 of 2.1 Mbp, and a total length of 441 Mbp. Scaffolding using the Hi-C data resulted in 109 scaffolds with a scaffold N50 of 20.7 Mbp. More than 99% of the assembly is comprised in 21 scaffolds. The assembly showed the presence of 96.1% complete BUSCO genes from the Actinopterygii dataset indicating a high quality of the assembly. We present an improved full chromosome-level assembly of the Siamese fighting fish generated during a university master’s course. The use of ∼35× long-read nanopore data drastically improved the baseline assembly in terms of continuity. We show that relatively in-expensive high-throughput sequencing technologies such as the long-read MinION sequencing platform can be used in educational settings allowing the students to gain practical skills in modern genomics and generate high quality results that benefit downstream research projects.
机译:不断降低的成本以及测序和文库制备技术的进步使当今的小型研究小组也能够生成染色体级装配体。在这里,我们报告了在实际的大学硕士课程中为暹罗斗鱼()改进了染色体级装配的过程。暹罗斗鱼是一种流行的水族馆鱼,是一种研究侵略性行为的新兴典范物种。我们通过使用以前发布的Hi-C数据生成一个新的长读取的基于纳米孔的组件并随后将其支架扩展到染色体水平来更新当前的基因组组件。在MinION平台(Oxford Nanopore Technologies)上使用约35倍基于纳米孔的长读数据,使我们能够生成仅1,276个重叠群的基线装配,其重叠群N50为2.1 Mbp,总长度为441 Mbp。使用Hi-C数据进行的支架研究产生了109个支架,其N50值为20.7 Mbp。超过99%的组件包含在21个支架中。该组装显示出来自放线放线菌数据集的96.1%完整BUSCO基因的存在,表明组装的质量很高。我们提出了在大学硕士课程中产生的暹罗斗鱼的改进的全染色体级装配。在连续性方面,使用约35倍长读取的纳米孔数据可大大改善基线装配。我们表明,相对便宜的高通量测序技术(如长读MinION测序平台)可用于教育环境,使学生能够获得现代基因组学的实践技能,并产生有益于下游研究项目的高质量结果。

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