The New Zealand Institute for Plant and Food Research Ltd, Motueka 7198, New Zealand.
The New Zealand Institute for Plant and Food Research Ltd, Auckland 1025, New Zealand.
G3 (Bethesda). 2023 Sep 30;13(10). doi: 10.1093/g3journal/jkad170.
Reliable and high-throughput genotyping platforms are of immense importance for identifying and dissecting genomic regions controlling important phenotypes, supporting selection processes in breeding programs, and managing wild populations and germplasm collections. Amongst available genotyping tools, single nucleotide polymorphism arrays have been shown to be comparatively easy to use and generate highly accurate genotypic data. Single-species arrays are the most commonly used type so far; however, some multi-species arrays have been developed for closely related species that share single nucleotide polymorphism markers, exploiting inter-species cross-amplification. In this study, the suitability of a multiplexed plant-animal single nucleotide polymorphism array, including both closely and distantly related species, was explored. The performance of the single nucleotide polymorphism array across species for diverse applications, ranging from intra-species diversity assessments to parentage analysis, was assessed. Moreover, the value of genotyping pooled DNA of distantly related species on the single nucleotide polymorphism array as a technique to further reduce costs was evaluated. Single nucleotide polymorphism performance was generally high, and species-specific single nucleotide polymorphisms proved suitable for diverse applications. The multi-species single nucleotide polymorphism array approach reported here could be transferred to other species to achieve cost savings resulting from the increased throughput when several projects use the same array, and the pooling technique adds another highly promising advancement to additionally decrease genotyping costs by half.
可靠且高通量的基因分型平台对于鉴定和剖析控制重要表型的基因组区域、支持育种计划中的选择过程以及管理野生种群和种质资源收集具有重要意义。在现有的基因分型工具中,单核苷酸多态性芯片被证明是比较容易使用的,并且可以生成高度准确的基因型数据。单物种芯片是迄今为止最常用的类型;然而,一些多物种芯片已经为具有单核苷酸多态性标记的密切相关物种开发,利用种间交叉扩增。在这项研究中,探索了一种包括密切和远缘物种的多路复用动植物单核苷酸多态性芯片的适用性。评估了单核苷酸多态性芯片在不同应用中的性能,从种内多样性评估到亲子关系分析。此外,评估了对远缘物种混合 DNA 进行基因分型的价值,作为进一步降低成本的技术。单核苷酸多态性的性能通常很高,物种特异性的单核苷酸多态性证明适用于各种应用。这里报告的多物种单核苷酸多态性芯片方法可以转移到其他物种,以实现由于多个项目使用相同的芯片而增加的通量所带来的成本节约,而混合技术则通过将基因分型成本降低一半提供了另一种极具前景的进展。