Issue 19, 2024

Metal-polyphenol nanoshells for enhancing the thermostability of a single viral vaccine

Abstract

Vaccines are essential to preventing infectious diseases, but their thermal instability leads to heavy reliance on cold chains. Physical encapsulation is the simplest and most effective strategy to increase the thermostability of vaccines. However, traditional mineralized coatings are strictly dependent on the properties of the substrate surface and synthesis conditions. Considering the instability and low surface charge density of vaccines, we developed a facile and robust approach for the protection of a single viral vaccine, tobacco mosaic virus (TMV), through metal-polyphenol networks of tannic acid (TA) and FeIII, which significantly improved the thermostability of the viral vaccine by strengthening its conformational rigidity. We found that the formed TA-FeIII nanoshells drastically enhanced the thermostability of the viral vaccine at a high temperature of 100 °C and in long-term storage at 37 °C. Additionally, the TA-FeIII nanoshell did not destroy viral RNA, had excellent biocompatibility and was easily synthesized on the vaccine surface within seconds. This easy, low cost and substrate-independent approach makes the TA-FeIII nanoshell a potential candidate for vaccine applications.

Graphical abstract: Metal-polyphenol nanoshells for enhancing the thermostability of a single viral vaccine

Supplementary files

Article information

Article type
Research Article
Submitted
20 Jun 2024
Accepted
20 Jul 2024
First published
24 Jul 2024

Mater. Chem. Front., 2024,8, 3193-3202

Metal-polyphenol nanoshells for enhancing the thermostability of a single viral vaccine

Q. Liu, X. Zhao, Y. Lin and Z. Su, Mater. Chem. Front., 2024, 8, 3193 DOI: 10.1039/D4QM00529E

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