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Structural characterization of intramolecular Hg(2+) transfer between flexibly linked domains of mercuric ion reductase
Authors:Johs Alexander  Harwood Ian M  Parks Jerry M  Nauss Rachel E  Smith Jeremy C  Liang Liyuan  Miller Susan M
Institution:
  • 1 Environmental Sciences Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831, USA
  • 2 Graduate Group in Biophysics, University of California, San Francisco, 600 16th Street, San Francisco, CA 94158-2517, USA
  • 3 Department of Pharmaceutical Chemistry, University of California, San Francisco, 600 16th Street, San Francisco, CA 94158-2517, USA
  • 4 University of Tennessee/Oak Ridge National Laboratory Center for Molecular Biophysics, P.O. Box 2008, Oak Ridge, TN 37831-6164, USA
  • Abstract:The enzyme mercuric ion reductase MerA is the central component of bacterial mercury resistance encoded by the mer operon. Many MerA proteins possess metallochaperone-like N-terminal domains (NmerA) that can transfer Hg2+ to the catalytic core domain (Core) for reduction to Hg0. These domains are tethered to the homodimeric Core by ∼ 30-residue linkers that are susceptible to proteolysis, the latter of which has prevented characterization of the interactions of NmerA and the Core in the full-length protein. Here, we report purification of homogeneous full-length MerA from the Tn21 mer operon using a fusion protein construct and combine small-angle X-ray scattering and small-angle neutron scattering with molecular dynamics simulation to characterize the structures of full-length wild-type and mutant MerA proteins that mimic the system before and during handoff of Hg2+ from NmerA to the Core. The radii of gyration, distance distribution functions, and Kratky plots derived from the small-angle X-ray scattering data are consistent with full-length MerA adopting elongated conformations as a result of flexibility in the linkers to the NmerA domains. The scattering profiles are best reproduced using an ensemble of linker conformations. This flexible attachment of NmerA may facilitate fast and efficient removal of Hg2+ from diverse protein substrates. Using a specific mutant of MerA allowed the formation of a metal-mediated interaction between NmerA and the Core and the determination of the position and relative orientation of NmerA to the Core during Hg2+ handoff.
    Keywords:SEC  size-exclusion chromatography  MALS  multi-angle light scattering  SAXS  small-angle X-ray scattering  SANS  small-angle neutron scattering  MBP  maltose-binding protein  DTNB  5  5&prime  -dithio-bis-(2-nitrobenzoic acid)  Hg(TNB)2  Hg-(2-nitro-5-thiobenzoate)2  TNB  2-nitro-5-thiobenzoate  FAD  flavin adenine dinucleotide  MD  molecular dynamics  PDB  Protein Data Bank  MES  minimal ensemble search  ORNL  Oak Ridge National Laboratory
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