Chemistry Reference
In-Depth Information
81. Digilio G, Bracco C, Vergani L et al (2009) The cadmium binding domains in the
metallothionein isoform Cd 7 -MT10 from Mytilus galloprovincialis revealed by NMR spec-
troscopy. J Biol Inorg Chem 14:167-178
82. Serra-Batiste M, Cols N, Alcaraz LA et al (2010) The metal-binding properties of the blue
crab copper specific CuMT-2: a crustacean metallothionein with two cysteine triplets. J Biol
Inorg Chem 15:759-776
83. Daniels MJ, Turner-Cavet JS, Selkirk R et al (1998) Coordination of Zn 2+ (and Cd 2+ )by
prokaryotic metallothionein. Involvement of his-imidazole. J Biol Chem 273:22957-22961
84. Stewart AJ, Blindauer CA, Berezenko S et al (2003) Interdomain zinc site on human
albumin. Proc Natl Acad Sci USA 100:3701-3706
85. Narula SS, Mehra RK, Winge DR et al (1991) Establishment of the metal-to-cysteine
connectivities in silver-substituted yeast metallothionein. J Am Chem Soc 113:9354-9358
86. Andersen RJ, diTargiani RC, Hancock RD et al (2006) Characterization of the first N2S
(alkylthiolate)lead compound: a model for three-coordinate lead in biological systems. Inorg
Chem 45:6574-6576
87. Claudio ES, ter Horst MA, Forde CE et al (2000) 207 Pb- 1 H two-dimensional NMR spectros-
copy: a useful new tool for probing lead(II) coordination chemistry. Inorg Chem 39:1391-1397
88. Aramini JM, Hiraoki T, Yazawa M et al (1996) Lead-207 NMR: a novel probe for the study
of calcium-binding proteins. J Biol Inorg Chem 1:39-48
89. Neupane KP, Pecoraro VL (2010) Probing a homoleptic PbS3 coordination environment in a
designed peptide using 207 Pb NMR spectroscopy: implications for understanding the molec-
ular basis of lead toxicity. Angew Chem Int Ed Engl 49:8177-8180
90. Utschig LM, Bryson JW, O'Halloran TV (1995) Mercury-199 NMR of the metal receptor
site in MerR and its protein-DNA complex. Science 268:380-385
91. DeSilva TM, Veglia G, Porcelli F et al (2002) Selectivity in heavy metal- binding to peptides
and proteins. Biopolymers 64:189-197
92. Iranzo O, Thulstrup PW, Ryu SB et al (2007) The application of 199 Hg NMR and 199m Hg
perturbed angular correlation (PAC) spectroscopy to define the biological chemistry of Hg(II):
a case study with designed two- and three-stranded coiled coils. Chemistry 13:9178-9190
93. Utschig LM, Wright JG, Dieckmann G et al (1995) The 199 Hg chemical-shift as a probe of
coordination environments in blue copper proteins. Inorg Chem 34:2497-2498
94. Steele RA, Opella SJ (1997) Structures of the reduced and mercury-bound forms of MerP,
the periplasmic protein from the bacterial mercury detoxification system. Biochemistry
36:6885-6895
95. Utschig LM, Baynard T, Strong C et al (1997) Probing copper-thioether coordination
chemistry in rusticyanin and azurin by 2D 1 H- 199 Hg NMR. Inorg Chem 36:2926-2927
96. Huffman DL, Utschig LM, O'Halloran TV (1997) Mercury-responsive gene regulation and
mercury-199 as a probe of protein structure. Met Ions Biol Syst 34:503-526
97. Kornhaber GJ, Snyder D, Moseley HN et al (2006) Identification of zinc-ligated cysteine
residues based on 13Calpha and 13Cbeta chemical shift data. J Biomol NMR 34:259-269
98. Kostic M, Matt T, Martinez-Yamout MA et al (2006) Solution structure of the Hdm2
C2H2C4 RING, a domain critical for ubiquitination of p53. J Mol Biol 363:433-450
99. Zuiderweg ER (2002) Mapping protein-protein interactions in solution by NMR spectros-
copy. Biochemistry 41:1-7
100. Gao G, Williams JG, Campbell SL (2004) Protein-protein interaction analysis by nuclear
magnetic resonance spectroscopy. Methods Mol Biol 261:79-92
101. Zeng YB, Zhang DM, Li H et al (2008) Binding of Ni 2+ to a histidine- and glutamine-rich
protein, Hpn-like. J Biol Inorg Chem 13:1121-1131
102. Syme CD, Viles JH (2006) Solution 1 H NMR investigation of Zn 2+ and Cd 2+ binding to
amyloid-beta peptide (Abeta) of Alzheimer's disease. Biochim Biophys Acta 1764:246-256
103. Jones CE, Klewpatinond M, Abdelraheim SR et al (2005) Probing Cu 2+ binding to the prion
protein using diamagnetic Ni 2+ and 1 H NMR: the unstructured N terminus facilitates the
coordination of six Cu 2+ ions at physiological concentrations. J Mol Biol 346:1393-1407
Search WWH ::




Custom Search