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灵活通用的功能化磷酸异戊烯基化合物合成方法,用于体内和体外的prenylation 研究。

Flexible and general synthesis of functionalized phosphoisoprenoids for the study of prenylation in vivo and in vitro.

机构信息

Department of Chemical Biology, Max-Planck Institute of Molecular Physiology, Otto Hahn Strasse 11, 44227 Dortmund, Germany.

出版信息

Chembiochem. 2012 Mar 19;13(5):674-83. doi: 10.1002/cbic.201100733. Epub 2012 Feb 20.

DOI:10.1002/cbic.201100733
PMID:22351497
Abstract

Protein modification with isoprenoid lipids affects hundreds of signaling proteins in eukaryotic cells. Modification of isoprenoids with reporter groups is the main approach for the creation of probes for the analysis of protein prenylation in vitro and in vivo. Here, we describe a new strategy for the synthesis of functionalized phosphoisoprenoids that uses an aminederivatized isoprenoid scaffold as a starting point for the synthesis of functionalized phosphoisoprenoid libraries. This overcomes a long-standing problem in the field, where multistep synthesis had to be carried out for each individual isoprenoid analogue. The described approach enabled us to synthesize a range of new compounds, including two novel fluorescent isoprenoids that previously could not be generated by conventional means. The fluorescent probes that were developed using the described approach possess significant spectroscopic advantages to all previously generated fluorescent isoprenoid analogue. Using these analogues for flow cytometry and cell imaging, we analyzed the uptake of isoprenoids by mammalian cells and zebrafish embryos. Furthermore, we demonstrate that derivatization of the scaffold can be coupled in a one-pot reaction to enzymatic incorporation of the resulting isoprenoid group into proteins. This enables rapid evaluation of functional groups for compatibility with individual prenyltransferases and identification of the prenyltransferase specific substrates.

摘要

异戊烯脂质的蛋白质修饰会影响真核细胞中的数百种信号蛋白。用报告基团修饰异戊烯是体外和体内分析蛋白质类异戊二烯化的探针创建的主要方法。在这里,我们描述了一种新的合成功能化磷酸异戊烯的策略,该策略使用氨衍生的异戊烯支架作为合成功能化磷酸异戊烯文库的起点。这克服了该领域长期存在的问题,即必须对每个单独的异戊烯类似物进行多步合成。所描述的方法使我们能够合成一系列新的化合物,包括两种以前无法通过常规手段生成的新型荧光异戊烯。使用所描述的方法开发的荧光探针与所有以前生成的荧光异戊烯类似物相比具有显著的光谱优势。使用这些类似物进行流式细胞术和细胞成像,我们分析了哺乳动物细胞和斑马鱼胚胎对异戊烯的摄取。此外,我们证明可以将支架的衍生化在一锅反应中与酶促将所得异戊烯基团掺入蛋白质中偶联。这可以快速评估功能基团与单个prenyltransferase 的兼容性,并确定 prenyltransferase 的特异性底物。

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