Department of Bionanoscience, Kavli Institute of Nanoscience , Delft University of Technology , van der Maasweg 9 , 2629 HZ Delft , The Netherlands.
Groningen Biomolecular Sciences and Biotechnology Institute , University of Groningen , 9747 AG Groningen , The Netherlands.
Nano Lett. 2019 Nov 13;19(11):7957-7964. doi: 10.1021/acs.nanolett.9b03134. Epub 2019 Oct 18.
Post-translational modifications (PTMs) of proteins play key roles in cellular processes. Hence, PTM identification is crucial for elucidating the mechanism of complex cellular processes and disease. Here we present a method for PTM detection at the single-molecule level using FraC biological nanopores. We focus on two major PTMs, phosphorylation and glycosylation, that mutually compete for protein modification sites, an important regulatory process that has been implicated in the pathogenic pathways of many diseases. We show that phosphorylated and glycosylated peptides can be clearly differentiated from nonmodified peptides by differences in the relative current blockade and dwell time in nanopore translocations. Furthermore, we show that these PTM modifications can be mutually differentiated, demonstrating the identification of phosphorylation and glycosylation in a label-free manner. The results represent an important step for the single-molecule, label-free identification of proteoforms, which have tremendous potential for disease diagnosis and cell biology.
蛋白质的翻译后修饰(PTMs)在细胞过程中起着关键作用。因此,PTM 的鉴定对于阐明复杂细胞过程和疾病的机制至关重要。在这里,我们使用 FraC 生物纳米孔展示了一种在单分子水平上检测 PTM 的方法。我们专注于两种主要的 PTM,即磷酸化和糖基化,它们相互竞争蛋白质修饰位点,这是一个重要的调节过程,与许多疾病的发病途径有关。我们表明,磷酸化和糖基化肽可以通过在纳米孔转位中相对电流阻断和停留时间的差异,与非修饰肽清楚地区分。此外,我们表明这些 PTM 修饰可以相互区分,证明了在无标记的情况下对磷酸化和糖基化的鉴定。这些结果代表了单分子、无标记的蛋白异构体鉴定的重要一步,这对于疾病诊断和细胞生物学具有巨大的潜力。