Thordarson Pall, Le Droumaguet Benjamin, Velonia Kelly
School of Chemistry, The University of Sydney, Sydney, NSW 2006, Australia.
Appl Microbiol Biotechnol. 2006 Nov;73(2):243-54. doi: 10.1007/s00253-006-0574-4. Epub 2006 Oct 24.
During the last decades, numerous studies have focused on combining the unique catalytic/functional properties and structural characteristics of proteins and enzymes with those of synthetic molecules and macromolecules. The aim of such multidisciplinary studies is to improve the properties of the natural component, combine them with those of the synthetic, and create novel biomaterials in the nanometer scale. The specific coupling of polymers onto the protein structures has proved to be one of the most straightforward and applicable approaches in that sense. In this article, we focus on the synthetic pathways that have or can be utilized to specifically couple proteins to polymers. The different categories of well-defined protein-polymer conjugates and the effect of the polymer on the protein function are discussed. Studies have shown that the specific conjugation of a synthetic polymer to a protein conveys its physico-chemical properties and, therefore, modifies the biodistribution and solubility of the protein, making it in certain cases soluble and active in organic solvents. An overview of the applications derived from such bioconjugates in the pharmaceutical industry, biocatalysis, and supramolecular nanobiotechnology is presented at the final part of the article.
在过去几十年中,众多研究聚焦于将蛋白质和酶独特的催化/功能特性及结构特征与合成分子和大分子的相关特性相结合。此类多学科研究的目的是改善天然成分的特性,将其与合成成分的特性相结合,并在纳米尺度上创造新型生物材料。从这个意义上讲,将聚合物特异性偶联到蛋白质结构上已被证明是最直接且适用的方法之一。在本文中,我们重点关注已有的或可用于将蛋白质与聚合物特异性偶联的合成途径。讨论了不同类型的明确定义的蛋白质-聚合物共轭物以及聚合物对蛋白质功能的影响。研究表明,合成聚合物与蛋白质的特异性共轭传递了其物理化学性质,因此改变了蛋白质的生物分布和溶解性,使其在某些情况下可溶于有机溶剂并具有活性。本文最后部分概述了此类生物共轭物在制药行业、生物催化和超分子纳米生物技术中的应用。