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Article

Imaging the Infection Cycle of T7 at the Single Virion Level

1
ELKH-SE Biophysical Virology Research Group, Tűzoltó Str. 37-47, H1094 Budapest, Hungary
2
Department of Biophysics and Radiation Biology, Semmelweis University, Tűzoltó Str. 37-47, H1094 Budapest, Hungary
*
Author to whom correspondence should be addressed.
Int. J. Mol. Sci. 2022, 23(19), 11252; https://doi.org/10.3390/ijms231911252
Submission received: 29 August 2022 / Revised: 17 September 2022 / Accepted: 21 September 2022 / Published: 24 September 2022

Abstract

T7 phages are E. coli-infecting viruses that find and invade their target with high specificity and efficiency. The exact molecular mechanisms of the T7 infection cycle are yet unclear. As the infection involves mechanical events, single-particle methods are to be employed to alleviate the problems of ensemble averaging. Here we used TIRF microscopy to uncover the spatial dynamics of the target recognition and binding by individual T7 phage particles. In the initial phase, T7 virions bound reversibly to the bacterial membrane via two-dimensional diffusive exploration. Stable bacteriophage anchoring was achieved by tail-fiber complex to receptor binding which could be observed in detail by atomic force microscopy (AFM) under aqueous buffer conditions. The six anchored fibers of a given T7 phage-displayed isotropic spatial orientation. The viral infection led to the onset of an irreversible structural program in the host which occurred in three distinct steps. First, bacterial cell surface roughness, as monitored by AFM, increased progressively. Second, membrane blebs formed on the minute time scale (average ~5 min) as observed by phase-contrast microscopy. Finally, the host cell was lysed in a violent and explosive process that was followed by the quick release and dispersion of the phage progeny. DNA ejection from T7 could be evoked in vitro by photothermal excitation, which revealed that genome release is mechanically controlled to prevent premature delivery of host-lysis genes. The single-particle approach employed here thus provided an unprecedented insight into the details of the complete viral cycle.
Keywords: single-particle imaging; TIRF; total internal reflection fluorescence (TIRF); AFM; atomic force microscopy (AFM); virus docking; 2D walk; bacterial lysis single-particle imaging; TIRF; total internal reflection fluorescence (TIRF); AFM; atomic force microscopy (AFM); virus docking; 2D walk; bacterial lysis

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MDPI and ACS Style

Kiss, B.; Kiss, L.A.; Lohinai, Z.D.; Mudra, D.; Tordai, H.; Herenyi, L.; Csík, G.; Kellermayer, M. Imaging the Infection Cycle of T7 at the Single Virion Level. Int. J. Mol. Sci. 2022, 23, 11252. https://doi.org/10.3390/ijms231911252

AMA Style

Kiss B, Kiss LA, Lohinai ZD, Mudra D, Tordai H, Herenyi L, Csík G, Kellermayer M. Imaging the Infection Cycle of T7 at the Single Virion Level. International Journal of Molecular Sciences. 2022; 23(19):11252. https://doi.org/10.3390/ijms231911252

Chicago/Turabian Style

Kiss, Bálint, Luca Annamária Kiss, Zsombor Dávid Lohinai, Dorottya Mudra, Hedvig Tordai, Levente Herenyi, Gabriella Csík, and Miklós Kellermayer. 2022. "Imaging the Infection Cycle of T7 at the Single Virion Level" International Journal of Molecular Sciences 23, no. 19: 11252. https://doi.org/10.3390/ijms231911252

APA Style

Kiss, B., Kiss, L. A., Lohinai, Z. D., Mudra, D., Tordai, H., Herenyi, L., Csík, G., & Kellermayer, M. (2022). Imaging the Infection Cycle of T7 at the Single Virion Level. International Journal of Molecular Sciences, 23(19), 11252. https://doi.org/10.3390/ijms231911252

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