Howlett Thomas S, Kumari Sneha, Ehrman Ryanne N, Masson Jesse, Izzo Linda, Wang Trixie, Gull Humera, Trashi Ikeda, Tang Wendy, Trashi Orikeda, Satish Neha, Wijesundara Yalini H, Herbert Fabian C, Izzo Angelo A, Gassensmith Jeremiah J
Department of Chemistry and Biochemistry, The University of Texas at Dallas, 800 West Campbell Road, Richardson, Texas, 75080, USA.
Centenary Institute/University of Sydney, Royal Prince Alfred Hospital, Building 93, Missenden Road, Camperdown, New South Wales, 2050, Australia.
Adv Healthc Mater. 2024 Dec 8:e2402358. doi: 10.1002/adhm.202402358.
A first-in-class vaccine adjuvant delivery system, Mn-ZIF, is developed by incorporating manganese (Mn) into the zinc-containing zeolitic-imidazolate framework-8 (ZIF-8). The mixed metal approach, which allowed for tunable Mn doping, is made possible by including a mild reducing agent in the reaction mixture. This approach allows up to 50% Mn, with the remaining 50% Zn within the ZIF. This multivariate approach exhibits significantly decreased cytotoxicity compared to ZIF-8. The porous structure of Mn-ZIF enables the co-delivery of the STING agonist cyclic di-adenosine monophosphate (CDA) through post-synthetic loading, forming CDA@Mn-ZIF. The composite demonstrated enhanced cellular uptake and synergistic activation of the cGAS-STING pathway, producing proinflammatory cytokines and activating antigen-presenting cells (APCs). In a preclinical Mycobacterium tuberculosis (Mtb) model, CDA@Mn-ZIF formulates with the CysVac2 fusion protein elicited a potent antigen-specific T-cell response and significantly reduced the mycobacterial burden in the lungs of infected mice. These findings highlight the potential of CDA@Mn-ZIF as a promising adjuvant for subunit vaccines, offering a novel approach to enhancing vaccine efficacy and protection against infectious diseases such as tuberculosis.
一种一流的疫苗佐剂递送系统——锰-沸石咪唑酯骨架材料(Mn-ZIF),是通过将锰(Mn)掺入含锌的沸石咪唑酯骨架-8(ZIF-8)中而开发的。通过在反应混合物中加入一种温和的还原剂,实现了允许可调谐锰掺杂的混合金属方法。这种方法可使ZIF中锰含量高达50%,其余为50%的锌。与ZIF-8相比,这种多变量方法表现出显著降低的细胞毒性。Mn-ZIF的多孔结构能够通过合成后加载共同递送干扰素基因刺激蛋白(STING)激动剂环二磷酸腺苷(CDA),形成CDA@Mn-ZIF。该复合材料表现出增强的细胞摄取和cGAS-STING途径的协同激活,产生促炎细胞因子并激活抗原呈递细胞(APC)。在临床前结核分枝杆菌(Mtb)模型中,CDA@Mn-ZIF与CysVac2融合蛋白配制后引发了强烈的抗原特异性T细胞反应,并显著降低了感染小鼠肺部的分枝杆菌负荷。这些发现突出了CDA@Mn-ZIF作为亚单位疫苗有前景的佐剂的潜力,为提高疫苗效力和预防结核病等传染病提供了一种新方法。