PO.MCB08.03 · 分子与细胞生物学

采用流动池上杂交捕获的多模态综合基因组分析panel的开发

Development of multimodal comprehensive genomic profiling panel with on-flow cell hybrid capture

海报缩略图:采用流动池上杂交捕获的多模态综合基因组分析panel的开发
编号 3260 展板 25 时间 4/20 02:00–05:00 区域 Section 22 主讲 Helene Bauby, PhD
分会场 Genomic Profiling to Understand Cancer Biology
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作者与单位 Authors & Affiliations

Mariam Ashraf1, Michelle Baird1, Markus Storbeck1, Xiaodong Qi2, June (Junhua) Zhao2, Helene Bauby1, Zhong Wu3, Jonathan M. Shaffer1

1QIAGEN, Inc., Germantown, MD,2Element Biosciences, Inc., San Diego, CA,3QIAGEN, Inc., Frederick, MD

摘要 Abstract

中文摘要
杂交捕获是一种广泛用于综合基因组分析(CGP)的技术,因为它能够靶向大量区域,并允许同时检测多种类型的基因组改变。然而,传统的杂交捕获工作流程往往耗时且技术要求高,需要较长的杂交时间、多个洗涤步骤以及严格控制的温度条件,所有这些都限制了通量和周转时间。 Element Biosciences AVITI™测序仪凭借其Trinity™流动池,引入了一个集成的杂交捕获系统,可在流动池上进行靶标捕获、洗涤,并省去了捕获后扩增。这一创新缩短了总工作流程时间并提高了捕获特异性,但由于对输入量要求较高且缺乏捕获后扩增,也给相对较小的CGP panel应用带来了新的挑战。 为解决这一限制,我们优化了一种基于杂交捕获、使用QIAseq xHYB CGP panel的多模态文库制备工作流程,以兼容AVITI系统和Trinity流动池。这涉及设计AVITI专用接头和index引物,以及修改杂交捕获和文库制备方案以适应Trinity平台。 我们的研究表明,使用AVITI专用接头和index制备的多模态文库与Trinity工作流程完全兼容。此外,通过使用新开发的杂交捕获缓冲液,在71 ℃下最短仅需0.5小时即可实现最佳CGP panel性能,相比之下传统杂交条件为60 ℃下16小时。此外,该工作流程与新鲜DNA和FFPE DNA均兼容。另外,为获得最佳的Trinity输出,我们通过实施增强型扩增模块提高了标准多模态工作流程的产量。这涉及增加引物和高保真聚合酶的用量,以及优化循环条件,使全基因组和全转录组文库的产量均提高了四倍。 这一优化的工作流程能够在Trinity流动池上从低输入量DNA实现稳健的CGP panel杂交捕获测序,支持小样本集,并为低通量实验室扩大了获得杂交捕获测序的机会。
查看英文原文 English abstract
Hybrid capture is a widely used technique for comprehensive genomic profiling (CGP) due to its ability to target large number of regions and allows for the simultaneous detection of multiple types of genomic alterations. Traditional hybrid capture workflows, however, are often time-intensive and technically demanding, requiring long hybridization time, multiple wash steps, and tightly controlled thermal conditions, all of which limit throughput and turnaround time. The Element Biosciences AVITI TM sequencer, featuring its Trinity TM flow cell, introduces an integrated hybrid capture system that performs on-flow cell target capture, washing and eliminates post-capture amplification. This innovation reduces total workflow time and improves capture specificity, but also introduces new challenges for the relatively small CGP panel application due to the higher input requirements and lack of post-capture amplification. To address this limitation, a hybrid capture-based, multimodal library preparation workflow with the QIAseq xHYB CGP panel was optimized for compatibility with the AVITI system and Trinity flow cell. This involved designing AVITI-specific adapters and index primers, as well as modification of hybrid capture and library preparation protocols to suit the Trinity platform. Our study revealed that multimodal libraries prepared with AVITI-specific adapter and index are fully compatible with Trinity workflow. In addition, optimal CGP panel performance can be achieved by using a newly developed hybrid capture buffer at 71 °C for as low as 0.5 hour compared to traditional hybridization conditions of 60 °C for 16 hours. Furthermore, this workflow is compatible with both fresh DNA and FFPE DNA. Additionally, to achieve optimal Trinity output, we increased the yield of the standard multimodal workflow by implementing an enhanced amplification module. This involved increased amounts of primers and high-fidelity polymerase, along with optimized cycling conditions, resulting in a four-fold increase in library yield for both whole genome and whole transcriptome libraries. This optimized workflow enables robust CGP panel hybrid capture sequencing on the Trinity flow cell from low-input DNA, supporting small sample sets and expanding access to hybrid capture sequencing for low-throughput laboratories.
利益披露 Disclosure
M. Ashraf, None.. H. Bauby, None.

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