Baillet Julie, Klich John H, Ou Ben S, Meany Emily L, Yan Jerry, Bruun Theodora U J, Utz Ashley, Jons Carolyn K, Lecommandoux Sebastien, Appel Eric A
Department of Material Science and Engineering, Stanford University, Stanford, CA, 94305, USA.
Univ. Bordeaux, CNRS, Bordeaux INP, LCPO, UMR 5629, F-33600 Pessac, France.
Matter. 2025 Apr 2;8(4). doi: 10.1016/j.matt.2025.102006. Epub 2025 Feb 25.
The threat of future coronavirus pandemics requires developing effective vaccine technologies that provide broad and long-lasting protection against circulating and emerging strains. Here we report a multivalent liposomal hydrogel vaccine technology comprising the receptor binding domain (RBD) of up to four SARS and MERS coronavirus strains non-covalently displayed on the surface of the liposomes within the hydrogel structure. The multivalent presentation and sustained exposure of RBD antigens improved the potency, neutralizing activity, durability, and consistency of antibody responses across homologous and heterologous coronavirus strains in a naïve murine model. When administrated in animals pre-exposed to wild-type SARS-CoV-2 antigens, liposomal hydrogels elicited durable antibody responses against the homologous SARS and MERS strains for over six months and elicited neutralizing activity against the immune-evasive SARS-CoV-2 variant Omicron BA.4/BA.5. Overall, the tunable liposomal hydrogel platform we report here generates robust responses against diverse coronaviruses, supporting global efforts to respond to future viral outbreaks.
未来冠状病毒大流行的威胁要求开发有效的疫苗技术,以提供针对流行和新出现毒株的广泛且持久的保护。在此,我们报告了一种多价脂质体水凝胶疫苗技术,该技术由多达四种SARS和MERS冠状病毒毒株的受体结合域(RBD)组成,这些RBD非共价展示在水凝胶结构内脂质体的表面。RBD抗原的多价呈现和持续暴露提高了初免小鼠模型中针对同源和异源冠状病毒毒株的抗体反应的效力、中和活性、持久性和一致性。当给予预先接触过野生型SARS-CoV-2抗原的动物时,脂质体水凝胶引发了针对同源SARS和MERS毒株的持久抗体反应,持续超过六个月,并引发了针对免疫逃逸的SARS-CoV-2变体奥密克戎BA.4/BA.5的中和活性。总体而言,我们在此报告的可调节脂质体水凝胶平台对多种冠状病毒产生了强大的反应,支持全球应对未来病毒爆发的努力。