Key Laboratory of Pesticide & Chemical Biology of Ministry of Education, International Joint Research Center for Intelligent Biosensor Technology and Health, College of Chemistry, Chemical Biology Center, Central China Normal University, Wuhan, P. R. China.
State Key Laboratory of Elemento-Organic Chemistry, Nankai University, Tianjin, P. R. China.
Pest Manag Sci. 2020 Oct;76(10):3403-3412. doi: 10.1002/ps.5739. Epub 2020 Jan 25.
Intensifying weed resistance has challenged the use of existing acetohydroxyacid synthase (AHAS)-inhibiting herbicides. Hence, there is currently an urgent requirement for the discovery of a new AHAS inhibitor to effectively control AHAS herbicide-resistant weed species produced by target mutation.
To combat weed resistance caused by AHAS with P197L mutation, we built a structure library consisting of pyrimidinyl-salicylic acid derivatives. Using the pharmacophore-linked fragment virtual screening (PFVS) approach, hit compound 8 bearing 6-phenoxymethyl substituent was identified as a potential AHAS inhibitor with antiresistance effect. Subsequently, derivatives of compound 8 were synthesized and evaluated for their inhibitory activities. The study of the enzyme-based structure-activity relationship and structure-resistance relationship studies led to the discovery of a qualified candidate, 28. This compound not only significantly inhibited the activity of wild-type Arabidopsis thaliana (At) AHAS and P197L mutant, but also exhibited good antiresistance properties (RF = 0.79). Notably, compared with bispyribac at 37.5-150 g of active ingredient per hectare (g a.i. ha ), compound 27 exhibited higher growth inhibition against both sensitive and resistant Descurainia sophia, CONCLUSION: The title compounds have great potential to be developed as new leads to effectively control herbicide-resistant weeds comprising AHAS with P197L mutation. Also, our study provided a positive case for discovering novel, potent and antiresistance inhibitors using a fragment-based drug design approach.
杂草抗药性的加剧挑战了现有乙酰羟酸合酶(AHAS)抑制剂类除草剂的使用。因此,目前迫切需要发现一种新的 AHAS 抑制剂,以有效控制由靶标突变产生的 AHAS 类除草剂抗性杂草。
为了防治 P197L 突变引起的 AHAS 型杂草抗性,我们构建了一个由嘧啶基水杨酸衍生物组成的结构库。利用基于药效团的片段虚拟筛选(PFVS)方法,鉴定出具有 6-苯氧甲基取代基的命中化合物 8 是一种具有抗药性的潜在 AHAS 抑制剂。随后,合成了化合物 8 的衍生物,并对其抑制活性进行了评价。基于酶的结构-活性关系和结构-抗性关系研究,发现了一种合格的候选化合物 28。该化合物不仅显著抑制了野生型拟南芥(At)AHAS 和 P197L 突变体的活性,而且表现出良好的抗药性(RF = 0.79)。值得注意的是,与双吡氟草酯相比,化合物 27 在 37.5-150 克有效成分/公顷(g a.i. ha)的剂量下,对敏感和抗性播娘蒿均表现出更高的生长抑制作用。
这些标题化合物具有很大的潜力,可作为开发有效控制包含 P197L 突变的 AHAS 型除草剂抗性杂草的新先导化合物。此外,我们的研究为使用基于片段的药物设计方法发现新型、有效和抗药性抑制剂提供了一个积极的案例。