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On-grid purification of electron microscopy samples via a 3D-printed flow-cell

Kailash Ramlaul , Ziyi Feng , Caoimhe Canavan , Natàlia de Martín Garrido , David Carreño , Michael Crone , Kirsten E. Jensen , Bing Li , Harry Barnet , David T. Riglar , David Miller , Paul S. Freemont , Christopher H. S. Aylett

Abstract

While recent advances in cryogenic electron microscopy coupled with single particle analysis have the potential to allow structure determination in a near-native state from vanishingly few individual particles, this vision has yet to be realised in practise. Requirements for particle numbers that currently far exceed the theoretical lower limits, challenges with the practicalities of achieving such concentrations for difficult-to-produce samples, and inadequate sample-dependent imaging conditions, all result in significant bottlenecks preventing routine structure determination using cryo-EM. Therefore, considerable efforts are being made to circumvent these bottlenecks by developing affinity purification of samples on-grid; at once obviating the need to produce large amounts of protein, as well as more directly controlling the variable, and sample-dependent, process of grid preparation.

In this proof-of-concept study, we demonstrate a further practical step towards this paradigm, developing a 3D-printable flow-cell device to allow on-grid affinity purification from raw inputs such as whole cell lysates, using graphene oxide-based affinity grids. Our flow-cell device can be interfaced directly with routinely-used laboratory equipment such as liquid chromatographs, or peristaltic pumps, fitted with standard chromatographic (1/16”) connectors, and can be used to allow binding of samples to affinity grids in a controlled environment prior to extensive washing to remove impurities. Furthermore, by designing a device which can be 3D printed and coupled to routinely used laboratory equipment, we hope to increase the accessibility of the techniques presented herein to researchers working towards single-particle protein structures.

Competing Interest Statement

The authors have declared no competing interest.

  • Abbreviations

    2D/3D
    2/3-Dimensional
    (Cryo-)EM
    (Cryogenic) Electron Microscopy
    DBCO
    Dibenzocyclooctyne
    DMSO
    Dimethyl Sulfoxide
    FITC
    Fluorescein Isothiocyanate
    GrOx
    Graphene Oxide
    NHS
    N-hydroxy Succinimide
    NS
    Negative Staining
    PEG
    Polyethylene Glycol
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    On-grid purification of electron microscopy samples via a 3D-printed flow-cell
    Kailash Ramlaul , Ziyi Feng , Caoimhe Canavan , Natàlia de Martín Garrido , David Carreño , Michael Crone , Kirsten E. Jensen , Bing Li , Harry Barnet , David T. Riglar , David Miller , Paul S. Freemont , Christopher H. S. Aylett
    On-grid purification of electron microscopy samples via a 3D-printed flow-cell
    Kailash Ramlaul , Ziyi Feng , Caoimhe Canavan , Natàlia de Martín Garrido , David Carreño , Michael Crone , Kirsten E. Jensen , Bing Li , Harry Barnet , David T. Riglar , David Miller , Paul S. Freemont , Christopher H. S. Aylett
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