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首页> 外文期刊>Biomacromolecules >Molecular Design of Squalene/Squalane Countertypes via the Controlled Oligomerization of Isoprene and Evaluation of Vaccine Adjuvant Applications
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Molecular Design of Squalene/Squalane Countertypes via the Controlled Oligomerization of Isoprene and Evaluation of Vaccine Adjuvant Applications

机译:通过异戊二烯的受控低聚反应设计角鲨烯/角鲨烷对型的分子,并评估疫苗佐剂的应用

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The potential to replace shark-derived squalene in vaccine adjuvant applications with synthetic squalene/poly(isoprene) oligomers, synthesized by the controlled oligomerization of isoprene is demonstrated. Following on from our previous work regarding the synthesis of poly(isoprene) oligomers, we demonstrate the ability to tune the molecular weight of the synthetic poly(isoprene) material beyond that of natural squalene, while retaining a final backbone structure that contained a minimum of 75% of 1,4 addition product and an acceptable polydispersity. The synthesis was successfully scaled from the 2 g to the 40 g scale both in the bulk (i.e., solvent free) and with the aid of additional solvent by utilizing catalytic chain transfer polymerization (CCTP) as the control method, such that the target molecular weight, acceptable dispersity levels, and the desired level of 1,4 addition in the backbone structure and an acceptable yield (similar to 60%) are achieved. Moreover, the stability and in vitro bioactivity of nanoemulsion adjuvant formulations manufactured with the synthetic poly(isoprene) material are evaluated in comparison to emulsions made with shark-derived squalene. Emulsions containing the synthetic poly(isoprene) achieved smaller particle size and equivalent or enhanced bioactivity (stimulation of cytokine production in human whole blood) compared to corresponding shark squalene emulsions. However, as opposed to the shark squalene-based emulsions, the poly(isoprene) emulsions demonstrated reduced long-term size stability and induced hemolysis at high concentrations. Finally, we demonstrate that the synthetic oligomeric poly(isoprene) material could successfully be hydrogenated such that >95% of the double bonds were successfully removed to give a representative poly(isoprene)-derived squalane mimic.
机译:证明了在疫苗佐剂应用中用鲨烯/聚(异戊二烯)低聚物合成的鲨鱼角鲨烯的潜力,该合成物是通过异戊二烯的受控低聚而合成的。在我们先前关于聚异戊二烯低聚物合成的工作之后,我们证明了能够调节合成聚异戊二烯材料的分子量超过天然鲨烯的分子量的能力,同时保留了最终骨架结构,该结构至少包含1,4加成产物的75%和可接受的多分散性。通过使用催化链转移聚合(CCTP)作为控制方法,合成在体积(即无溶剂)和其他溶剂的辅助下成功地从2 g缩放到40 g。获得了重量,可接受的分散度水平以及在主链结构中所需的1,4添加量和可接受的收率(约60%)。而且,与用鲨鱼角鲨烯制得的乳液相比,评价了用合成的聚(异戊二烯)材料制得的纳米乳液佐剂制剂的稳定性和体外生物活性。与相应的鲨鲨角鲨烯乳液相比,含有合成聚异戊二烯的乳液可实现更小的粒径和同等或更高的生物活性(刺激人全血中细胞因子的产生)。但是,与鲨鱼角鲨烯基乳液相反,聚异戊二烯乳液的长期尺寸稳定性降低,并在高浓度下引起溶血。最后,我们证明了合成的低聚聚异戊二烯材料可以成功地氢化,从而成功地去除了> 95%的双键,从而得到了代表性的聚异戊二烯衍生的角鲨烷模拟物。

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