Department of Bio-Organic Synthesis, Leiden Institute of Chemistry, Leiden University, Einsteinweg 55, 2333 CC, Leiden, The Netherlands.
Department of Molecular Physiology, Leiden Institute of Chemistry, Leiden University, Einsteinweg 55, 2333 CC, Leiden, The Netherlands.
Angew Chem Int Ed Engl. 2022 Sep 19;61(38):e202207640. doi: 10.1002/anie.202207640. Epub 2022 Aug 8.
In the field of lipid research, bioorthogonal chemistry has made the study of lipid uptake and processing in living systems possible, whilst minimising biological properties arising from detectable pendant groups. To allow the study of unsaturated free fatty acids in live cells, we here report the use of sterculic acid, a 1,2-cyclopropene-containing oleic acid analogue, as a bioorthogonal probe. We show that this lipid can be readily taken up by dendritic cells without toxic side effects, and that it can subsequently be visualised using an inverse electron-demand Diels-Alder reaction with quenched tetrazine-fluorophore conjugates. In addition, the lipid can be used to identify changes in protein oleoylation after immune cell activation. Finally, this reaction can be integrated into a multiplexed bioorthogonal reaction workflow by combining it with two sequential copper-catalysed Huisgen ligation reactions. This allows for the study of multiple biomolecules in the cell simultaneously by multimodal confocal imaging.
在脂质研究领域,生物正交化学使得在活系统中研究脂质摄取和处理成为可能,同时最大限度地减少了可检测侧基引起的生物学性质。为了能够在活细胞中研究不饱和游离脂肪酸,我们在此报告使用硬脂酸作为生物正交探针,它是一种含有 1,2-环丙烯的油酸类似物。我们表明,这种脂质可以被树突状细胞轻易摄取,而没有毒副作用,并且可以随后使用与猝灭的四嗪荧光团缀合物的逆电子需求 Diels-Alder 反应进行可视化。此外,该脂质可用于鉴定免疫细胞激活后蛋白质的脂酰化变化。最后,通过将其与两个连续的铜催化的 Huisgen 连接反应相结合,该反应可以整合到一个多路复用的生物正交反应工作流程中。这允许通过多模式共聚焦成像同时研究细胞中的多种生物分子。