Pandey Brijesh K, Smith Mason S, Price Joshua L
Department of Chemistry and Biochemistry, Brigham Young University , Provo, Utah 84602, United States.
Biomacromolecules. 2014 Dec 8;15(12):4643-7. doi: 10.1021/bm501546k. Epub 2014 Nov 11.
PEGylation is an important strategy for enhancing the pharmacokinetic properties of protein drugs. Modern chemoselective reactions now enable specific placement of a single PEG at any site on a protein surface. However, few rational structure-based guidelines exist for selecting optimal PEGylation sites. Here, we explore the impact of PEGylation on the conformational stability of α-helices using an α-helical coiled coil as a model system. We find that maleimide-based PEGylation of a solvent-exposed i position Cys can stabilize coiled-coil quaternary structure when Lys residues occupy both the i + 3 and i + 4 positions, due to favorable interactions between the PEG-maleimide and the Lys residues. Applying this Cys(i)-Lys(i+3)-Lys(i+4) triad to a solvent-exposed position within the C-terminal helix of the villin headpiece domain leads to similar PEG-based increases in conformational stability, highlighting the possibility of using the Cys(i)-Lys(i+3)-Lys(i+4) triad as a general strategy for PEG-based stabilization of helical proteins.
聚乙二醇化是增强蛋白质药物药代动力学性质的重要策略。现代化学选择性反应现在能够将单个聚乙二醇特异性地连接到蛋白质表面的任何位点。然而,关于选择最佳聚乙二醇化位点的基于合理结构的指导原则却很少。在这里,我们以α-螺旋卷曲螺旋作为模型系统,探讨聚乙二醇化对α-螺旋构象稳定性的影响。我们发现,当赖氨酸残基同时占据i + 3和i + 4位置时,基于马来酰亚胺的溶剂暴露i位半胱氨酸的聚乙二醇化可以稳定卷曲螺旋四级结构,这是由于聚乙二醇-马来酰亚胺与赖氨酸残基之间的有利相互作用。将这种半胱氨酸(i)-赖氨酸(i + 3)-赖氨酸(i + 4)三联体应用于绒毛蛋白头部结构域C端螺旋内的溶剂暴露位置,会导致基于聚乙二醇的构象稳定性有类似的增加,这突出了使用半胱氨酸(i)-赖氨酸(i + 3)-赖氨酸(i + 4)三联体作为基于聚乙二醇稳定螺旋蛋白的通用策略的可能性。