Mitochondrial plastid DNA can cause DNA barcoding paradox in plants

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作者
Hyun-Seung Park
Murukarthick Jayakodi
Sae Hyun Lee
Jae-Hyeon Jeon
Hyun-Oh Lee
Jee Young Park
Byeong Cheol Moon
Chang-Kug Kim
Rod A. Wing
Steven G. Newmaster
Ji Yeon Kim
Tae-Jin Yang
机构
[1] Department of Plant Science,
[2] Plant Genomics and Breeding Institute,undefined
[3] and Research Institute of Agriculture and Life Sciences,undefined
[4] College of Agriculture and Life Sciences,undefined
[5] Seoul National University,undefined
[6] Phyzen Genomics Institute,undefined
[7] Herbal Medicine Research Division,undefined
[8] Korea Institute of Oriental Medicine,undefined
[9] 1672 Yuseong-daero,undefined
[10] Yuseong-gu,undefined
[11] Genomics Division,undefined
[12] National Institute of Agricultural Sciences,undefined
[13] Arizona Genomics Institute,undefined
[14] School of Plant Sciences,undefined
[15] The University of Arizona,undefined
[16] NHP Research Alliance,undefined
[17] College of Biological Sciences,undefined
[18] University of Guelph,undefined
[19] Department of Food Science and Technology,undefined
[20] Seoul National University of Science and Technology,undefined
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摘要
The transfer of ancestral plastid genomes into mitochondrial genomes to generate mitochondrial plastid DNA (MTPT) is known to occur in plants, but its impacts on mitochondrial genome complexity and the potential for causing a false-positive DNA barcoding paradox have been underestimated. Here, we assembled the organelle genomes of Cynanchum wilfordii and C. auriculatum, which are indigenous medicinal herbs in Korea and China, respectively. In both species, it is estimated that 35% of the ancestral plastid genomes were transferred to mitochondrial genomes over the past 10 million years and remain conserved in these genomes. Some plastid barcoding markers co-amplified the conserved MTPTs and caused a barcoding paradox, resulting in mis-authentication of botanical ingredients and/or taxonomic mis-positioning. We identified dynamic and lineage-specific MTPTs that have contributed to mitochondrial genome complexity and might cause a putative barcoding paradox across 81 plant species. We suggest that a DNA barcoding guidelines should be developed involving the use of multiple markers to help regulate economically motivated adulteration.
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