Deciphering metabolic resistance to multiple herbicides in
Amaranthus palmeri via
transcriptome analysis
Rishabh Singh, Yaiphabi Kumam, Mohit Mahey, Eric Patterson, Sanzhen Liu, Sarah Lancaster, Mithila Jugulam Abstract
Background
Multiple herbicide resistance in Palmer amaranth ( Amaranthus palmeri S. Watson) poses a serious threat to US crop production. A Palmer amaranth population (KCTR) from Kansas was found resistant to herbicides across six sites‐of‐action, including ALS‐, PS II‐, EPSPS‐, PPO‐, HPPD‐inhibitors and synthetic auxins. Previous physiological and metabolic studies suggested that resistance in this population is predominantly associated with enhanced herbicide metabolism, possibly mediated by cytochrome P450 (P450) and/or glutathione S‐transferase (GST) enzyme activity. The aim of this study was to identify candidate genes potentially associated with multiple herbicide resistance in KCTR Palmer amaranth population.
Results
Differential gene expression analysis revealed 414, 129, 529, 152 and 688 genes differentially expressed in resistant plants as compared to susceptible, following chlorsulfuron, 2,4‐D, atrazine, mesotrione and lactofen treatments, respectively. CYP72A219 paralogs, CYP704B1‐like and GST‐ct genes were constitutively up‐regulated in resistant plants as compared to susceptible. Validated by qRT‐PCR, CYP72A219 and CYP704B1‐like were 3.4‐ to 6.6‐fold and 5.9‐ to 12.4‐fold up‐regulated in resistant plants as compared to susceptible without any treatment.
Conclusions
Identifying genes associated with multiple herbicide metabolism is critical for understanding cross‐resistance and evaluating new herbicides for resistance risk. These candidate resistance‐associated genes serve as targets for functional validation studies in future to help develop molecular markers for screening broad‐spectrum herbicide resistance. © 2026 Society of Chemical Industry.