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Titlebook: Biophysical Techniques in Photosynthesis; Volume II Thijs J. Aartsma,Jörg Matysik Book 2008 Springer Science+Business Media B.V. 2008 Prote

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Magic Angle Spinning (MAS) NMR for Structure Determination in Photosynthesisogeneity of the large membrane protein complexes involved in photosynthesis can be resolved at specifi c spots with a resolution well beyond the capabilities of X-ray and other diffraction methods. Following a brief explanation of the theoretical background of the magic angle spinning NMR methods, a
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Michael Landthaler,Ulrich Hohenleutner On the level of multi-protein assemblies, experimental images of the supramolecular architecture of the photosynthetic apparatus, its adaptation to environmental factors, and its particularities among species are reported.
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Unspezifisch koagulierende Lasergerätesugars and other metabolites) are obtained. This information is also available in non-spatially resolved NMR with a much higher signal-to-noise ratio, but the interpretation of such non-spatially resolved measurements can be hampered by heterogeneity of the plant tissue (sub-cellular compartments, t
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Ulf Lubienetzki,Heidrun Schüler-Lubienetzkitial crystallization conditions for membrane proteins, but further optimization for high-quality crystals suitable for structure determination is a challenging task. The optimization strategies include additive screen, detergent exchange and protein modifi cation, in addition to adjustments on regul
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https://doi.org/10.1007/978-3-662-02075-3 in the application of synchrotron X-ray scattering techniques include the extension to the high-angle, high-resolution domain, where measurements can be routinely made to a spatial resolution of 1 Å or better, and the development of coordinate-based analyses of X-ray scattering data that allows sca
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