Meinig School of Biomedical Engineering, College of Engineering, Cornell University, Ithaca, NY 14853, USA.
Sibley School of Mechanical and Aerospace Engineering, College of Engineering, Cornell University, Ithaca, NY 14853, USA.
Sci Adv. 2019 Mar 27;5(3):eaav9788. doi: 10.1126/sciadv.aav9788. eCollection 2019 Mar.
Biomaterials-based nanovaccines, such as those made of poly(lactic-co-glycolic acid) (PLGA), can induce stronger immunity than soluble antigens in healthy wild-type mouse models. However, whether metabolic syndrome can influence the immunological responses of nanovaccines remains poorly understood. Here, we first show that alteration in the sensing of the gut microbiome through Toll-like receptor 5 (TLR5) and the resulting metabolic syndrome in mice diminish the germinal center immune response induced by PLGA nanovaccines. The PLGA nanovaccines, unexpectedly, further changed gut microbiota. By chronically treating mice with antibiotics, we show that disrupting gut microbiome leads to poor vaccine response in an obesity-independent manner. We next demonstrate that the low immune response can be rescued by an immunomodulatory Pyr-pHEMA nanogel vaccine, which functions through TLR2 stimulation, enhanced trafficking, and induced stronger germinal center response than alum-supplemented PLGA nanovaccines. The study highlights the potential for immunomodulation under gut-mediated metabolic syndrome conditions using advanced nanomaterials.
基于生物材料的纳米疫苗,如聚(乳酸-共-乙醇酸)(PLGA)制成的纳米疫苗,在健康的野生型小鼠模型中比可溶性抗原能诱导更强的免疫反应。然而,代谢综合征是否会影响纳米疫苗的免疫反应尚不清楚。在这里,我们首先表明,通过 Toll 样受体 5(TLR5)改变对肠道微生物组的感知,以及由此导致的小鼠代谢综合征,会降低 PLGA 纳米疫苗诱导的生发中心免疫反应。出乎意料的是,PLGA 纳米疫苗进一步改变了肠道微生物组。通过长期用抗生素处理小鼠,我们表明,破坏肠道微生物组会导致肥胖独立的疫苗反应不佳。我们接下来证明,通过免疫调节 Pyr-pHEMA 纳米凝胶疫苗可以挽救低免疫反应,该疫苗通过 TLR2 刺激、增强的运输以及比添加明矾的 PLGA 纳米疫苗诱导更强的生发中心反应来发挥作用。该研究强调了在肠道介导的代谢综合征条件下使用先进的纳米材料进行免疫调节的潜力。