Abstract

A metal–organic molecular net composed of tannic acid (TA) and iron(III) was constructed around the brome mosaic virus (BMV) particle to determine whether the added net could act as a transport barrier for water, and if the net could stabilize the virus in physically or chemically challenging environments. This new virus engineering strategy is expected to provide benefits both in the study and technological applications of viruses. For instance, a virus wrapped in a thin molecular layer could be extracted from solution either in air or vacuum, and its structure, composition and even internal dynamics could be interrogated by methods not compatible with a liquid environment. Atomic force microscopy (AFM) studies of Fe(III)–TA coated BMV in liquid and in air supported a marked resistance to dehydration when compared to wtBMV. Native charge detection mass spectrometry (CDMS), was employed to estimate the number of molecules in the molecular net which wrapped the virus. The CDMS data suggested that less than one molecular monolayer wrapped the virus. Additionally, it was found, that this very thin molecular coat was sufficient to render the coated viruses resistant to storage conditions that typically lead to virus disassembly over time. A temporary coat imparting increased resistance to disassembly could be useful in adding time delay control or alleviate required storage conditions of engineered viruses for therapeutic purposes.

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Dragnea Research is at the forefront of multidisciplinary innovation, exploring the intersection of nanoscale optics, quantum photonics, physical virology, and bio-architected hybrid materials with 3D nanoscale order. Their latest publications highlight groundbreaking advancements in fields such as self-assembly, optics and spectroscopy, and the physical manipulation of virus-like particles (VLPs) for chemical imaging and surface modifications. Drawing from their expertise in using near-field scanning techniques and laser-induced effects, these works showcase how nanoscale phenomena can be harnessed for applications in material science, virology, and beyond. The accompanying visual mosaic underscores the diverse range of their research, from probing molecular dynamics to the development of 3D-ordered structures, all united by a commitment to pushing the boundaries of applied and theoretical science.