Plant species identification by genome skimming across the vascular plant tree of life
Chun‐Xia Zeng, Meng‐Yuan Zhou, Alex D. Twyford, Lian‐Ming Gao, Zhi‐Yong Zhang, Yun‐Heng Ji, Hong‐Tao Li, Peng‐Fei Ma, Wen‐Bin Yu, Zhi‐Qiong Mo, Zheng‐Yu Zuo, Wu Huang, Ting‐Shuang Yi, Jun‐Bo Yang, Peter M. Hollingsworth, De‐Zhu LiSummary
Accurate species identification is essential for biodiversity conservation and sustainable use, yet standard plant DNA barcoding often fails to achieve species‐level resolution. We present a large‐scale empirical evaluation of genome skimming as a tool to improve plant species discrimination. Using standardised data from 1969 individuals representing 475 species from 32 genera across major lineages of the vascular plant tree of life, we compare conventional plastid + internal transcribed spacer (ITS) barcodes with genome skimming approaches.
Standard barcoding using
rbcL
,
matK
,
trnH‐psbA
and ITS resolved about half of species (49.3%), with six genera showing < 25% species discrimination. By contrast, genome skimming enabled the recovery of complete plastid genomes, yielding 57.6% species discrimination. It also generated sufficient nuclear genomic data for additional resolution from k‐mer analysis, achieving 66.8% species discrimination – an average gain of 17.5% over standard barcodes – while eliminating cases of extreme failure (< 25% resolution). The recovery of complete plastomes and ribosomal DNAs from genome skims also ensures backward compatibility with existing barcode datasets.
Our results demonstrate that genome skimming provides data that substantially improves species‐level resolution across diverse plant lineages and offers a scalable, high‐throughput approach for building comprehensive reference resources to support global biodiversity initiatives.