bioRxiv · 10.64898/2026.09.16.752186
Depth-resolved analysis reveals target-dependent cryo-FIB damage profiles
Abstract
Cryogenic focused ion beam (cryo-FIB) milling enables cellular cryo-electron tomography but can compromise high-resolution structural information near milled surfaces. Here we establish recombinant human apoferritin (apoF) as a reporter of depth-dependent structural preservation in cellular lamellae. ApoF yielded a 2.05 [A] in situ reconstruction. Apparent FIB damage was most pronounced within the first 15 nm for xenon, 30 nm for gallium, 45 nm for argon and remained detectable at least 75 nm from oxygen-milled surfaces under the workflows tested. Endogenous 70S ribosomes in the same xenon-milled tomograms showed a broader 30-45 nm profile, whereas {beta}-galactosidase showed a similar narrow xenon-associated profile in a different specimen. Xenon-milled lamellae 125-150 nm thick yielded the highest resolution among the thickness groups examined, with lower resolution in the thinner and thickest groups. These findings show structural preservation is constrained by both surface-associated damage and lamella thickness, with the apparent extent of damage varying by molecular reporter. Previous ribosome-based surface-exclusion estimates may therefore be overly conservative for some molecular targets.
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Nwokonko, R. M., Qayyum, M. Z., Karia, D., Maingi, V., Rai, A., Sheng, Y., Haque, S. A., Thompson, C., Sviben, S., Yanagisawa, H., de la Rosa-Trevin, J. M., Kalathur, R. C., Skiniotis, G. C., Kotecha, A.. 2026-09-18. Depth-resolved analysis reveals target-dependent cryo-FIB damage profiles. https://doi.org/10.64898/2026.09.16.752186
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