Zhang Ying, Hao Haibin, Lin Jiake, Ma Zaiqiang, Li Huixin, Nie Zihao, Cui Yihao, Guo Zhengxi, Zhang Yaqin, Wang Xiaoyu, Tang Ruikang
Department of Chemistry, Zhejiang University, Hangzhou 310027, China.
Qiushi Academy for Advanced Studies, Zhejiang University, Hangzhou 310027, Zhejiang, China.
ACS Appl Mater Interfaces. 2022 Sep 7;14(35):39873-39884. doi: 10.1021/acsami.2c12065. Epub 2022 Aug 26.
Despite the great potency of vaccines to combat infectious diseases, their global use is hindered by a lack of thermostability, which leads to a constant need for cold-chain storage. Here, aiming at long-term thermostability and eliminating cold-chain requirements of bioactive vaccines, we propose that efforts should focus on tailoring the conformational stability of vaccines. Accordingly, we design a nanocoating composed of histidine (His)-coordinated amorphous Zn and 2-methylimidazolate complex (His-aZn-mIM) on single nanoparticles of viral vaccines to introduce intramolecular coordinated linkage between viruses and the nanocoatings. The coordinated nanocoating enhances the rigidity of proteins and preserves the vaccine's activity. Importantly, integrating His into the original Zn-N coordinative environment symbiotically reinforces its tolerance to biological and hydrothermal solutions, resulting in the augmented thermostability following the Hofmeister effect. Thus, even after storage of His-aZn-mIM encapsulated Human adenovirus type 5 (Ad5@His-aZn-mIM) at 25 °C for 90 d, the potency loss of the coated Ad5 is less than 10%, while the native Ad5 becomes 100% ineffective within one month. Such a nanocoating gains thermostability by forming an ultrastable hydration shell, which prevents viral proteins from unfolding under the attack of hydration ions, providing a conformational stabilizer upon heat exposure. Our findings represent an easy-access biomimetic platform to address the long-term vaccine storage without the requirement of a cold chain.
尽管疫苗在对抗传染病方面具有强大效力,但其全球使用却因缺乏热稳定性而受到阻碍,这导致始终需要冷链储存。在此,为了实现生物活性疫苗的长期热稳定性并消除对冷链的需求,我们提出应致力于调整疫苗的构象稳定性。相应地,我们设计了一种由组氨酸(His)配位的无定形锌和2 - 甲基咪唑络合物(His - aZn - mIM)组成的纳米涂层,用于包裹病毒疫苗的单个纳米颗粒,以在病毒与纳米涂层之间引入分子内配位连接。这种配位纳米涂层增强了蛋白质的刚性并保留了疫苗的活性。重要的是,将His共生地整合到原始的Zn - N配位环境中,增强了其对生物和水热溶液的耐受性,根据霍夫迈斯特效应导致热稳定性增强。因此,即使将His - aZn - mIM包裹的人5型腺病毒(Ad5@His - aZn - mIM)在25℃下储存90天,包膜Ad5的效力损失也小于10%,而天然Ad5在一个月内就会完全失效。这种纳米涂层通过形成超稳定的水合壳获得热稳定性,该水合壳可防止病毒蛋白在水合离子的攻击下展开,在受热时提供构象稳定剂。我们的研究结果代表了一个易于获取的仿生平台,可解决无需冷链的疫苗长期储存问题。