Institute of Physiology II, University Hospital Jena, Kollegiengasse 9, 07743, Jena, Germany.
Institute for Pharmaceutical and Medicinal Chemistry, Heinrich Heine University Düsseldorf, Universitätsstrasse 1, 40225, Düsseldorf, Germany.
Chembiochem. 2020 Aug 17;21(16):2311-2320. doi: 10.1002/cbic.202000116. Epub 2020 May 4.
High-affinity fluorescent derivatives of cyclic adenosine and guanosine monophosphate are powerful tools for investigating their natural targets. Cyclic nucleotide-regulated ion channels belong to these targets and are vital for many signal transduction processes, such as vision and olfaction. The relation of ligand binding to activation gating is still challenging, and there is a need for fluorescent probes that enable the process to be broken down to the single-molecule level. This inspired us to prepare fluorophore-labeled cyclic nucleotides, which are composed of a bright dye and a nucleotide derivative with a thiophenol motif at position 8 that has already been shown to enable superior binding affinity. These bioconjugates were prepared by a novel cross-linking strategy that involves substitution of the nucleobase with a modified thiophenolate in good yield. Both fluorescent nucleotides are potent activators of different cyclic nucleotide-regulated ion channels with respect to the natural ligand and previously reported substances. Molecular docking of the probes excluding the fluorophore reveals that the high potency can be attributed to additional hydrophobic and cation-π interactions between the ligand and the protein. Moreover, the introduced substances have the potential to investigate related target proteins, such as cAMP- and cGMP-dependent protein kinases, exchange proteins directly activated by cAMP or phosphodiesterases.
高亲和力的环腺苷酸和鸟苷酸单磷酸的荧光衍生物是研究其天然靶标的有力工具。环核苷酸调节的离子通道属于这些靶标,对于许多信号转导过程(如视觉和嗅觉)至关重要。配体结合与激活门控的关系仍然具有挑战性,因此需要荧光探针来将该过程分解到单分子水平。这启发我们制备荧光标记的环核苷酸,它们由一个明亮的染料和一个在 8 位具有噻吩酚基序的核苷酸衍生物组成,该基序已被证明可以提高结合亲和力。这些生物缀合物是通过一种新的交联策略制备的,该策略涉及用修饰的噻吩盐替代碱基,收率良好。与天然配体和以前报道的物质相比,这两种荧光核苷酸都是不同的环核苷酸调节的离子通道的有效激活剂。排除荧光团的探针的分子对接表明,高活性可归因于配体与蛋白质之间的额外疏水和阳离子-π 相互作用。此外,引入的物质有可能研究相关的靶标蛋白,如 cAMP 和 cGMP 依赖性蛋白激酶、cAMP 直接激活的交换蛋白或磷酸二酯酶。