Division of Organic Chemistry & Biochemistry, Ruđer Bošković Institute, Zagreb, Croatia.
Department of Chemistry, Faculty of Science, University of Zagreb, Zagreb, Croatia.
Enzyme Microb Technol. 2023 Aug;168:110257. doi: 10.1016/j.enzmictec.2023.110257. Epub 2023 May 13.
Within the last decade, the field of bio-nanoengineering has achieved significant advances allowing us to generate, e.g., nanoscaled molecular machineries with arbitrary shapes. To unleash the full potential of novel methods such as DNA origami technology, it is important to functionalise complex molecules and nanostructures precisely. Thus, considerable attention has been given to site-selective modifications of proteins allowing further incorporation of various functionalities. Here, we describe a method for the covalent attachment of oligonucleotides to the glycosylated horseradish peroxidase protein (HRP) with high N-terminus selectivity and significant yield while conserving the enzymatic activity. This two-step process includes a pH-controlled metal-free diazotransfer reaction using imidazole-1-sulfonyl azide hydrogen sulfate, which at pH 8.5 results in an N-terminal azide-functionalized protein, followed by the Cu-free click SPAAC reaction to dibenzocyclooctyne- (DBCO) modified oligonucleotides. The reaction conditions were optimised to achieve maximum yield and the best performance. The resulting protein-oligonucleotide conjugates (HRP-DNA) were characterised by electrophoresis and mass spectrometry (MS). Native-PAGE experiments demonstrated different migration patterns for HRP-DNA and the azido-modified protein allowing zymogram experiments. Structure-activity relationships of novel HRP-DNA conjugates were assessed using molecular dynamics simulations, characterising the molecular interactions that define the structural and dynamical properties of the obtained protein-oligonucleotide conjugates (POC).
在过去的十年中,生物纳米工程领域取得了重大进展,使我们能够生成具有任意形状的纳米级分子机械装置。为了充分发挥 DNA 折纸技术等新方法的潜力,精确地对复杂分子和纳米结构进行功能化是很重要的。因此,人们相当关注对糖基化辣根过氧化物酶蛋白(HRP)进行定点修饰,从而进一步引入各种功能。在这里,我们描述了一种方法,用于将寡核苷酸共价连接到糖基化辣根过氧化物酶蛋白(HRP)上,具有高 N 端选择性和显著产率,同时保持酶活性。该两步法包括 pH 控制的无金属重氮转移反应,使用咪唑-1-磺酰基叠氮氢硫酸盐,在 pH 8.5 下导致 N 端叠氮功能化蛋白,然后进行无铜点击 SPAAC 反应,与二苯并环辛炔(DBCO)修饰的寡核苷酸反应。优化了反应条件以达到最大产率和最佳性能。通过电泳和质谱(MS)对所得蛋白-寡核苷酸缀合物(HRP-DNA)进行了表征。Native-PAGE 实验证明了 HRP-DNA 和叠氮修饰蛋白的不同迁移模式,从而可以进行酶谱实验。通过分子动力学模拟评估了新型 HRP-DNA 缀合物的结构-活性关系,对获得的蛋白-寡核苷酸缀合物(POC)的结构和动力学性质进行了分子相互作用的特征化。