Homogeneity among glyphosate-resistant Amaranthus palmeri in geographically distant locations

Since the initial report of glyphosate-resistant (GR) Amaranthus palmeri S. Watson in 2006, resistant populations have been reported in 28 states. The mechanism of resistance is amplification of a 399-kb extrachromosomal circular DNA, called the EPSPS replicon, and is unique to glyphosate-resistant...

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Published in:PLoS ONE
Main Authors: William T. Molin, Eric L. Patterson, Christopher A. Saski, Dean E. Riechers
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7480871/?tool=EBI
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author William T. Molin
Eric L. Patterson
Christopher A. Saski
Dean E. Riechers
author_facet William T. Molin
Eric L. Patterson
Christopher A. Saski
Dean E. Riechers
author_sort William T. Molin
collection DOAJ
container_title PLoS ONE
description Since the initial report of glyphosate-resistant (GR) Amaranthus palmeri S. Watson in 2006, resistant populations have been reported in 28 states. The mechanism of resistance is amplification of a 399-kb extrachromosomal circular DNA, called the EPSPS replicon, and is unique to glyphosate-resistant plants. The replicon contains a single copy of the 10-kb 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) gene which causes the concomitant increased expression of EPSP synthase, the target enzyme of glyphosate. It is not known whether the resistance by this amplification mechanism evolved once and then spread across the country or evolved independently in several locations. To compare genomic representation and variation across the EPSPS replicon, whole genome shotgun sequencing (WGS) and mapping of sequences from both GR and susceptible (GS) biotypes to the replicon consensus sequence was performed. Sampling of GR biotypes from AZ, KS, GA, MD and DE and GS biotypes from AZ, KS and GA revealed complete contiguity and deep representation with sequences from GR plants, but lack of homogeneity and contiguity with breaks in coverage were observed with sequences from GS biotypes. The high sequence conservation among GR biotypes with very few polymorphisms which were widely distributed across the USA further supports the hypothesis that glyphosate resistance most likely originated from a single population. We show that the replicon from different populations was unique to GR plants and had similar levels of amplification.
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spelling doaj-art-e4e582a25e764a2b8323a31eb4d4c3a62025-08-19T20:13:40ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-01159Homogeneity among glyphosate-resistant Amaranthus palmeri in geographically distant locationsWilliam T. MolinEric L. PattersonChristopher A. SaskiDean E. RiechersSince the initial report of glyphosate-resistant (GR) Amaranthus palmeri S. Watson in 2006, resistant populations have been reported in 28 states. The mechanism of resistance is amplification of a 399-kb extrachromosomal circular DNA, called the EPSPS replicon, and is unique to glyphosate-resistant plants. The replicon contains a single copy of the 10-kb 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) gene which causes the concomitant increased expression of EPSP synthase, the target enzyme of glyphosate. It is not known whether the resistance by this amplification mechanism evolved once and then spread across the country or evolved independently in several locations. To compare genomic representation and variation across the EPSPS replicon, whole genome shotgun sequencing (WGS) and mapping of sequences from both GR and susceptible (GS) biotypes to the replicon consensus sequence was performed. Sampling of GR biotypes from AZ, KS, GA, MD and DE and GS biotypes from AZ, KS and GA revealed complete contiguity and deep representation with sequences from GR plants, but lack of homogeneity and contiguity with breaks in coverage were observed with sequences from GS biotypes. The high sequence conservation among GR biotypes with very few polymorphisms which were widely distributed across the USA further supports the hypothesis that glyphosate resistance most likely originated from a single population. We show that the replicon from different populations was unique to GR plants and had similar levels of amplification.https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7480871/?tool=EBI
spellingShingle William T. Molin
Eric L. Patterson
Christopher A. Saski
Dean E. Riechers
Homogeneity among glyphosate-resistant Amaranthus palmeri in geographically distant locations
title Homogeneity among glyphosate-resistant Amaranthus palmeri in geographically distant locations
title_full Homogeneity among glyphosate-resistant Amaranthus palmeri in geographically distant locations
title_fullStr Homogeneity among glyphosate-resistant Amaranthus palmeri in geographically distant locations
title_full_unstemmed Homogeneity among glyphosate-resistant Amaranthus palmeri in geographically distant locations
title_short Homogeneity among glyphosate-resistant Amaranthus palmeri in geographically distant locations
title_sort homogeneity among glyphosate resistant amaranthus palmeri in geographically distant locations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7480871/?tool=EBI
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