Metrology of Individual Small Viruses

Author:

Li Kun123,Shah Arjav23ORCID,Sharma Rajesh Kumar1,Adkins Raymond4,Marjanovic Tihomir1,Doyle Patrick S.23,Garaj Slaven1256ORCID

Affiliation:

1. Department of Physics National University of Singapore Singapore 119077 Singapore

2. Singapore‐MIT Alliance for Research and Technology Centre Singapore 138602 Singapore

3. Department of Chemical Engineering Massachusetts Institute of Technology Cambridge MA 02142 USA

4. Department of Physics University of California Santa Barbara CA 93106 USA

5. Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore

6. Department of Material Science and Engineering National University of Singapore Singapore 117575 Singapore

Abstract

AbstractViruses come in various shapes and sizes, and understanding their morphology is central to understanding their activity and function. The need for fast recognition and real‐time fingerprinting methods for pathogenic viruses is a critical bottleneck in implementing many diagnostic and therapeutic techniques. In this work, nanopore tomography (NT) is implemented for fast measurements of the characteristic dimensions of viruses and the optimal operating conditions are explored. Using a small filamentous bacteriophage as a model, it is demonstrated that NT can detect geometrical features in a few‐nanometer regime, with high throughput and accuracy, in aqueous conditions. The instrumental parameters are optimized to obtain virus diameter measurements that are robust to the uncertainties of the external parameters. Furthermore, NT is critically compared to various single‐particle imaging techniques, with a particular emphasis on emerging helium ion microscopy (HIM). It is shown that, with proper operating procedures, HIM can reach a nanometer‐scale resolution in viral metrology, while retaining a high throughput second only to NT. The high throughput of both techniques can foster sufficient statistics for a precise exploration of viral heterogeneity.

Funder

Agency for Science, Technology and Research

National Science Foundation

Singapore-MIT Alliance for Research and Technology Centre

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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