Hester Kirstin, Liu Jing, Flynn Nicholas, Sultatos Lester G, Geng Liyi, Brimijoin Stephen, Ramsey Joshua D, Hartson Steven, Ranjan Ashish, Pope Carey
Department of Physiological Sciences, Oklahoma State University, Stillwater, OK 74078, United States.
School of Chemical Engineering, Oklahoma State University, Stillwater, OK 74078, United States.
Chem Biol Interact. 2017 Sep 25;275:86-94. doi: 10.1016/j.cbi.2017.07.019. Epub 2017 Jul 27.
We previously reported that recombinant human butyrylcholinesterase (rhBChE) complexed with a series of copolymers of poly-l-lysine (PLL) with grafted (polyethylene) glycol (PEG) (i.e., PLL-g-PEG) showed reduced catalytic activity but relatively similar concentration-dependent inactivation of the organophosphorus inhibitor paraoxon. Herein, we compared the kinetics of catalysis (using butyrylthiocholine as the substrate) and inhibition (using four different inhibitors) of free and copolymer-complexed rhBChE. Using scanning electron microscopy, polyionic complexes of rhBChE with three different PLL-g-PEG copolymers (based on PLL size) appeared as spheroid-shaped particles with relatively similar particle sizes (median diameter = 35 nm). Relatively similar particle sizes were also noted using dynamic light scattering (mean = 26-35 nm). The three copolymer-complexed enzymes exhibited reduced k (30-33% reduction), but no significant changes in K. Inhibitory potency (as reflected by the bimolecular rate constant, k) was similar among the free and copolymer-complexed enzymes when paraoxon was the inhibitor, whereas statistically significant reductions in k (16-60%) were noted with the other inhibitors. Sensitivity to inactivation by proteases and heat was also compared. Copolymer-complexed enzymes showed lesser time-dependent inactivation by the proteases trypsin and pronase and by heat compared to the free enzyme. Understanding the unique properties of PLL-g-PEG-BChE complexes may lead to enhanced approaches for use of BChE and other protein bioscavengers.
我们之前报道过,重组人丁酰胆碱酯酶(rhBChE)与一系列聚-L-赖氨酸(PLL)与接枝聚乙二醇(PEG)(即PLL-g-PEG)的共聚物复合后,催化活性降低,但对有机磷抑制剂对氧磷的浓度依赖性失活相对相似。在此,我们比较了游离的和与共聚物复合的rhBChE的催化动力学(以丁酰硫代胆碱为底物)和抑制动力学(使用四种不同的抑制剂)。使用扫描电子显微镜观察,rhBChE与三种不同的PLL-g-PEG共聚物(基于PLL大小)形成的聚离子复合物呈球形颗粒,粒径相对相似(中位直径 = 35 nm)。使用动态光散射也观察到相对相似的粒径(平均值 = 26 - 35 nm)。三种与共聚物复合的酶的k降低(降低30 - 33%),但K无显著变化。当对氧磷作为抑制剂时,游离的和与共聚物复合的酶之间的抑制效力(由双分子速率常数k反映)相似,而使用其他抑制剂时,k有统计学意义的降低(16 - 60%)。还比较了蛋白酶和热对失活的敏感性。与游离酶相比,与共聚物复合的酶对蛋白酶胰蛋白酶和链霉蛋白酶以及热的时间依赖性失活较小。了解PLL-g-PEG-BChE复合物的独特性质可能会带来使用BChE和其他蛋白质生物清除剂的改进方法。