Yakovlieva Liubov, Wood Thomas M, Kemmink Johan, Kotsogianni Ioli, Koller Franziska, Lassak Jürgen, Martin Nathaniel I, Walvoort Marthe T C
Chemical Biology Group, Stratingh Institute for Chemistry, University of Groningen Groningen The Netherlands
Biological Chemistry Group, Institute of Biology Leiden, Leiden University Leiden The Netherlands
Chem Sci. 2020 Dec 7;12(4):1560-1567. doi: 10.1039/d0sc05823h.
For canonical asparagine glycosylation, the primary amino acid sequence that directs glycosylation at specific asparagine residues is well-established. Here we reveal that a recently discovered bacterial enzyme EarP, that transfers rhamnose to a specific arginine residue in its acceptor protein EF-P, specifically recognizes a β-hairpin loop. Notably, while the rhamnosyltransferase activity of EarP is abolished when presented with linear substrate peptide sequences derived from EF-P, the enzyme readily glycosylates the same sequence in a cyclized β-hairpin mimic. Additional studies with other substrate-mimicking cyclic peptides revealed that EarP activity is sensitive to the method used to induce cyclization and in some cases is tolerant to amino acid sequence variation. Using detailed NMR approaches, we established that the active peptide substrates all share some degree of β-hairpin formation, and therefore conclude that the β-hairpin epitope is the major determinant of arginine-rhamnosylation by EarP. Our findings add a novel recognition motif to the existing knowledge on substrate specificity of protein glycosylation, and are expected to guide future identifications of rhamnosylation sites in other protein substrates.
对于典型的天冬酰胺糖基化作用,指导特定天冬酰胺残基进行糖基化的一级氨基酸序列已得到充分确立。在此我们揭示,一种最近发现的细菌酶EarP,它将鼠李糖转移至其受体蛋白EF-P中的特定精氨酸残基上,该酶特异性识别一个β-发夹环。值得注意的是,当用源自EF-P的线性底物肽序列时,EarP的鼠李糖基转移酶活性会被消除,但该酶能轻易地将相同序列在一个环化的β-发夹模拟物中进行糖基化。对其他模拟底物的环化肽进行的进一步研究表明,EarP活性对用于诱导环化的方法敏感,并且在某些情况下对氨基酸序列变异具有耐受性。使用详细的核磁共振方法,我们确定活性肽底物都具有一定程度的β-发夹结构形成,因此得出结论,β-发夹表位是EarP进行精氨酸-鼠李糖基化的主要决定因素。我们的发现为蛋白质糖基化底物特异性的现有知识增添了一个新的识别基序,并有望指导未来对其他蛋白质底物中鼠李糖基化位点的鉴定。