Department of Chemistry, University of Zürich, Winterthurerstrasse 190, 8057, Zurich, Switzerland.
Institute of Plant and Microbial Biology, University of Zürich, Zollikerstrasse 107, 8008, Zürich, Switzerland.
Chemistry. 2019 Feb 1;25(7):1722-1726. doi: 10.1002/chem.201805693. Epub 2019 Jan 9.
The plant Psychotria kirkii hosts an obligatory bacterial symbiont, Candidatus Burkholderia kirkii, in nodules on their leaves. Recently, a glucosylated derivative of (+)-streptol, (+)-streptol glucoside, was isolated from the nodulated leaves and was found to possess a plant growth inhibitory activity. To establish a structure-activity relationship study, a convergent strategy was developed to obtain several pseudosugars from a single synthetic precursor. Furthermore, the glucosylation of streptol was investigated in detail and conditions affording specifically the α or β glucosidic anomer were identified. Although (+)-streptol was the most active compound, its concentration in P. kirkii plant leaves extract was approximately ten-fold lower than that of (+)-streptol glucoside. These results provide compelling evidence that the glucosylation of (+)-streptol protects the plant host against the growth inhibitory effect of the compound, which might constitute a molecular cornerstone for this successful plant-bacteria symbiosis.
在叶片的结节中,植物Psychotria kirkii 拥有一种必需的细菌共生体,即 Candidatus Burkholderia kirkii。最近,从结节叶片中分离出了 (+)-streptol 的葡糖基衍生物(+)-streptol 葡糖苷,并发现其具有植物生长抑制活性。为了建立构效关系研究,开发了一种从单个合成前体制备多种假糖的收敛策略。此外,还详细研究了 streptol 的葡糖基化,确定了产生特定α或β糖苷异构体的条件。尽管 (+)-streptol 是最具活性的化合物,但它在 P. kirkii 植物叶片提取物中的浓度比 (+)-streptol 葡糖苷低约十倍。这些结果提供了令人信服的证据,证明 (+)-streptol 的葡糖基化保护了植物宿主免受该化合物的生长抑制作用,这可能构成这种成功的植物-细菌共生关系的分子基石。