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SEM/FIB Imaging for Studying Neural Interfaces

  • Bar-Ilan University

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Tissue and neural engineering for various regenerative therapies are rapidly growing fields. Of major interest is studying the complex interface between cells and various 3D structures by scanning electron microscopy with focused ion beam. Notwithstanding its unrivaled resolution, the optimal fixation, dehydration, and staining protocols of the samples while preserving the complex cell interface in its natural form, are highly challenging. The aim of this work was to compare and optimize staining and sample drying procedures in order to preserve the cells in their “life-like state” for studying the cell interface with either 3D well-like structures or gold-coated mushroom-shaped electrodes. The process involved chemical fixation using a combination of glutaraldehyde and formaldehyde, followed by gentle drying techniques in which we compared four methods: (critical point drying, hexamethyldisiloxane, repeats of osmium tetroxide–thiocarbohydrazide [OTOTO], and resin) in order to determine the method that best preserves the cell and cell interface morphology. Finally, to visualize the intracellular organelles and membrane, we compared the efficacy of four staining techniques: osmium tetroxide, osmium tetroxide and salts, osmium and uranyl acetate, and OTOTO. Experiments were performed on embryonic stem cell-derived photoreceptor precursors, neural cells, and a human retinal pigment epithelial cell line, which revealed that the optimal processing combination was resin drying and OTOTO staining, as manifested by preservation of cell morphology, the lowest percentage of cellular protrusion breakage as well as a high-quality image. The obtained results pave the way for better understanding the cell interface with various structures for enhancing various biomedical applications.

Original languageEnglish
Pages (from-to)305-315
Number of pages11
JournalDevelopmental Neurobiology
Volume80
Issue number9-10
DOIs
StatePublished - 1 Sep 2020

Bibliographical note

Publisher Copyright:
© 2019 Wiley Periodicals, Inc.

Funding

H2020 European Research Council, Grant/ Award Number: ERC starter grant; Bar-Ilan Institute for Nanotechnology and Advanced materials; Israeli Ministry of Defence The authors would like to thank the BINA (Bar Ilan Institute for Nanotechnology and Advanced Materials) electron microscopy unit staff, and specifically Dr. Yafit Fleger and Dr. Hannah Noa Barad for professional imaging assistance. The authors would also like to thank Mrs. Yehudit Garcia from The Peter Brojde Laboratory for miniature integrated systems, Hebrew University, for supporting the 3D Nano printing and to Mr. Liad Zah for technical assistance in cell culturing and differentiation.

FundersFunder number
Israeli Ministry of Defence
Horizon 2020 Framework Programme755748
H2020 European Research Council
European Commission
Hebrew University of Jerusalem

    Keywords

    • 3D scaffolds
    • SEM/FIB
    • cellular membrane
    • electron microscope
    • fixation
    • interface
    • staining

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