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February 17, 2015Proceedings of the National Academy of Sciences217 citationsOpen Access

Electron crystallography of ultrathin 3D protein crystals: Atomic model with charges

KYKoji YonekuraKKKazuyuki KatoMOMitsuo Ogasawara

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Abstract

Membrane proteins and macromolecular complexes often yield crystals too small or too thin for even the modern synchrotron X-ray beam. Electron crystallography could provide a powerful means for structure determination with such undersized crystals, as protein atoms diffract electrons four to five orders of magnitude more strongly than they do X-rays. Furthermore, as electron crystallography yields Coulomb potential maps rather than electron density maps, it could provide a unique method to visualize the charged states of amino acid residues and metals. Here we describe an attempt to develop a methodology for electron crystallography of ultrathin (only a few layers thick) 3D protein crystals and present the Coulomb potential maps at 3.4-Å and 3.2-Å resolution, respectively, obtained from Ca(2+)-ATPase and catalase crystals. These maps demonstrate that it is indeed possible to build atomic models from such crystals and even to determine the charged states of amino acid residues in the Ca(2+)-binding sites of Ca(2+)-ATPase and that of the iron atom in the heme in catalase.

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Cite This Study

Yonekura et al. (2015) studied this question.

synapsesocial.com/papers/6a216799cdf8429e7e5fa354https://doi.org/10.1073/pnas.1500724112
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