AI Article Synopsis

  • Structural genomics projects need X-ray diffraction and NMR spectroscopy for solving protein structures, and advanced facilities are often required for data collection.
  • The paper introduces a new laboratory-scale synchrotron light source called the Compact Light Source, which can replicate many key synchrotron applications in X-ray science.
  • Successful tests showcased its capability by determining the high-resolution structure of a protein from Mycobacterium tuberculosis using X-ray diffraction data from this new source.

Article Abstract

Structural genomics discovery projects require ready access to both X-ray diffraction and NMR spectroscopy which support the collection of experimental data needed to solve large numbers of novel protein structures. The most productive X-ray crystal structure determination laboratories make extensive use of tunable synchrotron X-ray light to solve novel structures by anomalous diffraction methods. This requires that frozen cryo-protected crystals be shipped to large multi acre synchrotron facilities for data collection. In this paper we report on the development and use of the first laboratory-scale synchrotron light source capable of performing many of the state-of-the-art synchrotron applications in X-ray science. This Compact Light Source is a first-in-class device that uses inverse Compton scattering to generate X-rays of sufficient flux, tunable wavelength and beam size to allow high-resolution X-ray diffraction data collection from protein crystals. We report on benchmarking tests of X-ray diffraction data collection with hen egg white lysozyme, and the successful high-resolution X-ray structure determination of the Glycine cleavage system protein H from Mycobacterium tuberculosis using diffraction data collected with the Compact Light Source X-ray beam.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC2939714PMC
http://dx.doi.org/10.1007/s10969-010-9087-6DOI Listing

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