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富含脯氨酸/丙氨酸序列(PAS)的多肽生物物理学:具有类聚乙二醇特性的重组生物聚合物。

The polypeptide biophysics of proline/alanine-rich sequences (PAS): Recombinant biopolymers with PEG-like properties.

作者信息

Breibeck Joscha, Skerra Arne

机构信息

Lehrstuhl für Biologische Chemie, Technische Universität München, 85354, Freising (Weihenstephan), Germany.

XL-protein GmbH, Lise-Meitner-Str. 30, 85354, Freising, Germany.

出版信息

Biopolymers. 2018 Jan;109(1). doi: 10.1002/bip.23069. Epub 2017 Oct 27.

Abstract

PAS polypeptides comprise long repetitive sequences of the small L-amino acids proline, alanine and/or serine that were developed to expand the hydrodynamic volume of conjugated pharmaceuticals and prolong their plasma half-life by retarding kidney filtration. Here, we have characterized the polymer properties both of the free polypeptides and in fusion with the biopharmaceutical IL-1Ra. Data from size exclusion chromatography, dynamic light scattering, circular dichroism spectroscopy and quantification of hydrodynamic and polar properties demonstrate that the biosynthetic PAS polypeptides exhibit random coil behavior in aqueous solution astonishingly similar to the chemical polymer poly-ethylene glycol (PEG). The solvent-exposed PAS peptide groups, in the absence of secondary structure, account for strong hydrophilicity, with negligible contribution by the Ser side chains. Notably, PAS polypeptides exceed PEG of comparable molecular mass in hydrophilicity and hydrodynamic volume while exhibiting lower viscosity. Their uniform monodisperse composition as genetically encoded polymers and their biological nature, offering biodegradability, render PAS polypeptides a promising PEG mimetic for biopharmaceutical applications.

摘要

PAS多肽包含由小的L-氨基酸脯氨酸、丙氨酸和/或丝氨酸组成的长重复序列,其设计目的是通过延缓肾脏过滤来扩大偶联药物的流体力学体积并延长其血浆半衰期。在此,我们对游离多肽以及与生物制药IL-1Ra融合后的聚合物特性进行了表征。来自尺寸排阻色谱、动态光散射、圆二色光谱以及流体力学和极性特性定量分析的数据表明,生物合成的PAS多肽在水溶液中呈现无规卷曲行为,这惊人地类似于化学聚合物聚乙二醇(PEG)。在没有二级结构的情况下,暴露于溶剂中的PAS肽基团具有很强的亲水性,而丝氨酸侧链的贡献可忽略不计。值得注意的是,PAS多肽在亲水性和流体力学体积方面超过了分子量相当的PEG,同时表现出较低的粘度。作为基因编码聚合物,它们具有均匀的单分散组成以及生物特性,具有生物可降解性,这使得PAS多肽成为生物制药应用中一种有前景的PEG模拟物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2411/5813227/a3db2e662e02/BIP-109-na-g001.jpg

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