| Literature DB >> 24643643 |
Lu Yu1, Wei Wang, Shenglong Ling, Yao He, Liang Xiao, Kaiqi Wu, Longhua Zhang, Changlin Tian.
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Year: 2014 PMID: 24643643 PMCID: PMC3996158 DOI: 10.1007/s13238-014-0040-5
Source DB: PubMed Journal: Protein Cell ISSN: 1674-800X Impact factor: 14.870
Figure 1Mobility analysis of T4L-S90R1 and T4L-S117R1 T4 lysozyme using CW-EPR. (A) Spin radicals were labeled at two sites of T4L. Site 90 is part of a flexible loop, while site 117 is part of a helix that is buried in the protein core. (B) EPR spectra of T4L-S90R1 and (C) T4L-S117R1 at 298 K, in aqueous buffer containing different glycerol concentrations, obtained with a magnetic field scan width of 200 G. Rotational correlation times are shown below each spectrum. (D) Correlation of the mobility parameters 〈H2〉−1 (inverse second moment) and ΔH0−1 (inverse of the central line width) for S90R1 and S117R1. Mobility parameters were calculated from the CW-EPR spectra shown in (B) and (C). Ovals indicate the clustering effect
Figure 2Distance measurements between two labelled spin radicals in T4 lysozyme. EPR spectra of S90R1 and S117R1 of T4L with different concentrations of glycerol at physiological temperature (298 K, A, B, C, D) and at low temperature (150 K, E). The light dotted line shows the sum of the singly-labeled sample spectra. The thick line shows the spectrum of the doubly-labeled sample normalized to the same number of spins as the corresponding summed singly-labeled spectra. All spectra were recorded using a 200-G scan width. The calculated distances are shown