Shanghai Key Laboratory of Chemical Biology, School of Pharmacy, East China University of Science and Technology, Shanghai 200237, China.
Key Laboratory of Integrated Management of Crop Diseases and Pests (Ministry of Education), College of Plant Protection, Nanjing Agricultural University, 1 Weigang, Nanjing 210095, China.
J Agric Food Chem. 2023 Jul 26;71(29):11048-11055. doi: 10.1021/acs.jafc.3c02624. Epub 2023 Jul 13.
Photopharmacology involving azobenzene or dithienylethene has changed established methods of studying receptor functions, allowing for increasing the spatiotemporal resolution. There are no photopharmacological tools available for the invertebrate nicotinic acetylcholine receptor (nAChR). Here, we report a photochromic ligand, dithienylethene-imidacloprid (DitIMI), using a dithienylethene photoswitch embedded in the nAChR agonist imidacloprid. It was found that DitIMI displayed good photochromism and fluorescence switching behaviors upon irradiation with UV/vis light in aqueous solution. We demonstrated that -DitIMI has low spontaneous in vitro and in vivo activity but can be photoisomerized to a highly active -form. Surprisingly, the photoswitchable DitIMI showed a large difference in insecticidal activity between the and forms, in which the insecticidal activity against of the ring-closed isomers for DitIMI was 355 times that of the corresponding ring-open isomers. This photoisomerization can further be translated to photomodulation of neuron membrane potential and behavioral responses of living mosquito larvae and American cockroaches. The photomanipulation of nACh neurotransmission opens new avenues to understanding inhibitory circuits in intact animals.
光药理学涉及偶氮苯或二噻吩乙烯已经改变了研究受体功能的既定方法,提高了时空分辨率。目前还没有用于无脊椎动物烟碱型乙酰胆碱受体(nAChR)的光药理学工具。在这里,我们报告了一种光致变色配体,二噻吩乙烯-吡虫啉(DitIMI),它使用嵌入烟碱型乙酰胆碱受体激动剂吡虫啉的二噻吩乙烯光开关。结果发现,DitIMI 在水溶液中用紫外/可见光照射时显示出良好的光致变色和荧光开关行为。我们证明 -DitIMI 在体外和体内具有低自发活性,但可以光异构化为高活性的 - 形式。令人惊讶的是,光致变色的 DitIMI 在杀虫活性方面表现出 - 形式和 - 形式之间的巨大差异,其中 DitIMI 的环闭异构体对 的杀虫活性是相应的环开异构体的 355 倍。这种光异构化可以进一步转化为对活蚊子幼虫和美洲蟑螂神经元膜电位和行为反应的光调节。nACh 神经递质的光操纵为理解完整动物中的抑制性回路开辟了新途径。