Search bioRxiv⌕ Search

Biology subjects

Alvarez Rodriguez, S.

Publications and source records attributed to Alvarez Rodriguez, S..

3 recordsLinked to original sources

Distribution of target-site resistance mechanisms to nicosulfuron and glyphosate in Amaranthus palmeri accessions from two different regions of Turkiye

Palmer amaranth (Amaranthus palmeri S. Watson) is a highly competitive weed that has evolved resistance to several modes of action and has recently become a significant problem in Turkiye. This study was designed to determine the distribution of common target-site resistance (TSR) mechanisms to the acetolactate synthase (ALS)-inhibiting herbicide, nicosulfuron, and the 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS)-inhibiting herbicide, glyphosate, in A. palmeri accessions collected from two agricultural regions of Turkiye; the Cukurova Region and the Gediz Basin. A total of 96 accessions were analyzed for ALS gene mutations and relative EPSPS gene copy number variation. Whole-plant responses were also evaluated based on relative dry weight following treatment with nicosulfuron and glyphosate applied at twice the field rate. The ALS mutations Pro197Ser, Trp574Leu, and Ser653Asn were far more prevalent in plants from the Cukurova Region than those from the Gediz Basin. Elevated relative EPSPS gene copy numbers were more common and higher in the Gediz Basin. Single rate herbicide screening experiments confirmed that accessions from the Cukurova Region exhibited higher dry weight response to nicosulfuron, whereas those from the Gediz Basin had higher to glyphosate Multivariable regression analyses revealed that nicosulfuron response was primarily associated with the Pro197Ser and Trp574Leu mutations, while glyphosate response was correlated with EPSPS gene copy number. These findings reveal distinct regional patterns of TSR mechanisms in A. palmeri in Turkiye that are consistent with differences in herbicide use and/or introduction history, but the roles of local selection, demographic processes, and gene flow remain unclear.

plant biology↗

Characterization of a novel R98Q mutation that confers resistance to sulfentrazone in common ragweed (Ambrosia artemisiifolia) populations from MichiganShort title: PPO resistance in common ragweed

BACKGROUNDIn 2023, soybean growers in Eaton County, Michigan, reported repeated failures to control common ragweed (Ambrosia artemisiifolia L.) with (PPO)-inhibiting herbicides, sulfentrazone and fomesafen, in non-genetically modified soybeans. This study aimed to investigate resistance levels and mechanisms of resistance in two suspected resistant populations (R1 and R2). RESULTSDose-response assays revealed resistance to sulfentrazone in both populations, with LD50 values 24 and 36-fold higher than the susceptible population and reduced sensitivity to fomesafen. Nanopore sequencing identified two PPO2 target-site substitutions at codon 98: Arg- 98-Leu (R98L) and a novel Arg-98-Gln (R98Q) mutation. Both substitutions were associated with reduced herbicide binding affinity in computational modelling simulations. R98Q substitution conferred strong and selective resistance in the PPO2 enzyme inhibition assays, supporting its role as a key resistance mechanism. CONCLUSIONThis study reports the first field occurrence of the R98Q substitution in PPO2 of A. artemisiifolia populations and demonstrates its association with to PPO inhibitor resistance. These findings highlight the rapid evolution of target-site resistance and the need for continued monitoring and rapid diagnostic tools to detect emerging mutations. Further research is needed to clarify the contribution of additional resistance mechanisms.

plant biology↗

Changes in cuticle composition co-regulate drought and herbicide resistance in horseweed (Erigeron canadensis)

Horseweed (Erigeron canadensis) is a widely distributed annual weed that can cause significant yield losses if not properly controlled. Its phenotypic plasticity allows it to rapidly acclimate to new environmental conditions, such as drought and herbicides, such as glyphosate, with the potential for cross stress acclimatization. The objectives of this research were to uncover the physiological and genetic effects at the intersection of drought stress and glyphosate resistance. To this end, we performed greenhouse dose response experiments, RNAseq, 14C glyphosate absorption and translocation, and cuticular lipid profiling via GC/MS. Greenhouse dose-response experiments revealed that, after drought stress, there was a 2.5-3.7 fold reduction in glyphosate sensitivity via a significant reduction in glyphosate absorption, regardless if the starting population was resistant or susceptible to the field use rate already. Cuticular waxes were collected from each population with and without drought stress and were analyzed via GC/MS. When comparing total wax loads of plants grown under WW and DS conditions, we found that drought stress significantly increased total wax loads for all three populations. Additionally drought stress substantial increases the proportion of triterpenoids in the cuticle. By RNAseq, we found serval triterpenoid biosynthesis genes upregulated after drought, which likely drive the changes in cuticle composition and ultimately increased glyphosate resistance following drought. Ultimately, understanding how drought impacts glyphosate resistance is critical for maintaining optimal weed control in the changing climate. HighlightDrought stress induces changes to cuticle composition and gene expression that reduce glyphosate absorption, thereby increasing horseweeds ability to survive glyphosate application.

physiology↗