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Well-Defined Protein-Polymer Conjugates via in Situ RAFT Polymerization

机译:定义明确的蛋白质-聚合物通过原位RAFT聚合结合

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摘要

Biotechnology, biomedicine, and nanotechnology applications would benefit from methods generating well-defined, monodisperse protein-polymer conjugates, avoiding time-consuming and difficult purification steps. Herein, we report the in situ synthesis of protein—polymer conjugates via reversible addition-fragmentation chain transfer polymerization (RAFT) as an efficient method to generate well-defined, homogeneous protein-polymer conjugates in one step, eliminating major postpolymerization purification steps. A water soluble RAFT agent was conjugated to a model protein, bovine serum albumin (BSA), via its free thiol group at Cys-34 residue. The conjugation of the RAFT agent to BSA was confirmed by UV-visible spectroscopy, matrix-assisted laser desorption ionization - time of flight (MALDI-TOF), and ~1H NMR. BSA-macroRAFT agent was then used to control the polymerization of two different water soluble monomers, N-isopropylacrylamide (NIPAAm) and hydroxyethyl acrylate (HEA), in aqueous medium at 25 ℃. The growth of the polymer chains from BSA-macroRAFT agent was characterized by size exclusion chromatography (SEC), ~1H NMR, MALDI-TOF, and polyacrylamide gel electrophoresis (PAGE) analyses. The controlled character of the RAFT polymerizations was confirmed by the linear evolution of molecular weight with monomer conversion. The SEC analyses showed no detectable free, nonconjugated polymer formation during the in situ polymerization. The efficiency of BSA-macroRAFT agent to generate BSA-polymer conjugates was found to be ca. 1 by deconvolution of the SEC traces of the polymerization mixtures. The structural integrity and the conformation-related esterase activity of BSA were found to be unaffected by the polymerization conditions and the conjugation of the polymer chain. BSA—poly(NIPAAm) conjugates showed hybrid temperature-dependent phase separation and aggregation behavior. The lower critical solution temperature values of the conjugates were found to increase with the decrease in molecular weight of poly(NIPAAm) block conjugated to BSA.
机译:生物技术,生物医学和纳米技术的应用将受益于生成定义明确的,单分散的蛋白质-聚合物结合物的方法,从而避免了耗时且困难的纯化步骤。本文中,我们报告了通过可逆加成-断裂链转移聚合(RAFT)原位合成蛋白质-聚合物共轭物的一种有效方法,可在一个步骤中生成明确定义的均质蛋白质-聚合物共轭物,从而消除了主要的后聚合纯化步骤。水溶性RAFT剂通过其在Cys-34残基上的游离硫醇基团与模型蛋白牛血清白蛋白(BSA)缀合。通过紫外可见光谱,基质辅助激光解吸电离-飞行时间(MALDI-TOF)和〜1H NMR证实了RAFT试剂与BSA的结合。然后使用BSA-macroRAFT试剂控制两种不同的水溶性单体N-异丙基丙烯酰胺(NIPAAm)和丙烯酸羟乙酯(HEA)在25℃的水性介质中的聚合。来自BSA-macroRAFT试剂的聚合物链的生长通过尺寸排阻色谱(SEC),〜1H NMR,MALDI-TOF和聚丙烯酰胺凝胶电泳(PAGE)分析进行了表征。分子量随单体转化率的线性变化证实了RAFT聚合反应的受控特性。 SEC分析表明,在原位聚合过程中没有可检测到的游离非共轭聚合物形成。发现BSA-macroRAFT剂产生BSA-聚合物共轭物的效率约为。通过对聚合混合物的SEC痕迹进行反卷积可以得到图1所示的结果。发现BSA的结构完整性和构象相关的酯酶活性不受聚合条件和聚合物链缀合的影响。 BSA-poly(NIPAAm)共轭物表现出混杂的温度依赖性相分离和聚集行为。发现共轭物的较低的临界溶液温度值随着与BSA共轭的聚(NIPAAm)嵌段的分子量的降低而增加。

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