| Title : Genetic Mechanism of Non-Targeted-Site Resistance to Diquat in Spirodela polyrhiza - Hofer_2024_Plants.(Basel)_13_ |
| Author(s) : Hofer M , Schafer M , Wang Y , Wink S , Xu S |
| Ref : Plants (Basel) , 13 : , 2024 |
|
Abstract :
Understanding non-target-site resistance (NTSR) to herbicides represents a pressing challenge as NTSR is widespread in many weeds. Using giant duckweed (Spirodela polyrhiza) as a model, we systematically investigated genetic and molecular mechanisms of diquat resistance, which can only be achieved via NTSR. Quantifying the diquat resistance of 138 genotypes, we revealed an 8.5-fold difference in resistance levels between the most resistant and most susceptible genotypes. Further experiments suggested that diquat uptake and antioxidant-related processes jointly contributed to diquat resistance in S. polyrhiza. Using a genome-wide association approach, we identified several candidate genes, including a homolog of dienelactone hydrolase, that are associated with diquat resistance in S. polyrhiza. Together, these results provide new insights into the mechanisms and evolution of NTSR in plants. |
| PubMedSearch : Hofer_2024_Plants.(Basel)_13_ |
| PubMedID: 38592881 |
Hofer M, Schafer M, Wang Y, Wink S, Xu S (2024)
Genetic Mechanism of Non-Targeted-Site Resistance to Diquat in Spirodela polyrhiza
Plants (Basel)
13 :
Hofer M, Schafer M, Wang Y, Wink S, Xu S (2024)
Plants (Basel)
13 :