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Updated: Jan 3, 2026

Advancing High-Resolution Imaging of Virus Assemblies in Liquid and Ice
Published on: July 20, 2022
Low-energy in-line electron holographic imaging of vitreous ice-embedded small biomolecules using a modified scanning
Martin Cheung1, Hidehito Adaniya1, Cathal Cassidy1
1Quantum Wave Microscopy Unit, Okinawa Institute of Science and Technology Graduate University, Kunigami District, Okinawa Prefecture, 904-0495, Japan.
Abstract:
Cryo-electron microscopy (cryo-EM) has become the method of choice in the field of structural biology, owing to its unique ability to deduce structures of vitreous ice-embedded, hydrated biomolecules over a wide range of structural resolutions. As cryo-transmission electron microscopes (cryo-TEM) become increasingly specialised for high, near-atomic resolution studies, operational complexity and associated costs serve as significant barriers to widespread usability and adoptability. To facilitate the expansion and accessibility of the cryo-EM method, an efficient, user-friendly means of imaging vitreous ice-embedded biomolecules has been called for. In this study, we present a solution to this issue by integrating cryo-EM capabilities into a commercial scanning electron microscope (SEM). Utilising the principle of low-energy in-line electron holography, our newly developed hybrid microscope permits low-to-moderate resolution imaging of vitreous ice-embedded biomolecules without the need for any form of sample staining or chemical fixation. Operating at 20 kV, the microscope takes advantage of the ease-of-use of SEM-based imaging and phase contrast imaging of low-energy electron holography. This study represents the first reported successful application of low-energy in-line electron holographic imaging to vitreous ice-embedded small biomolecules, the effectiveness of which is demonstrated here with three morphologically distinct specimens.
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