Structural studies on cytosolic domain of magnesium transporter MgtE from Enterococcus faecalis†
Sugadev Ragumani
Brookhaven National Laboratory, Biology Department, Upton, New York 11973
Search for more papers by this authorJ. Michael Sauder
Eli Lilly and Company, Lilly Biotechnology Center, San Diego, California 92121
Search for more papers by this authorStephen K. Burley
Eli Lilly and Company, Lilly Biotechnology Center, San Diego, California 92121
Search for more papers by this authorCorresponding Author
Subramanyam Swaminathan
Brookhaven National Laboratory, Biology Department, Upton, New York 11973
Brookhaven National Laboratory, Biology Department, Upton, NY 11973===Search for more papers by this authorSugadev Ragumani
Brookhaven National Laboratory, Biology Department, Upton, New York 11973
Search for more papers by this authorJ. Michael Sauder
Eli Lilly and Company, Lilly Biotechnology Center, San Diego, California 92121
Search for more papers by this authorStephen K. Burley
Eli Lilly and Company, Lilly Biotechnology Center, San Diego, California 92121
Search for more papers by this authorCorresponding Author
Subramanyam Swaminathan
Brookhaven National Laboratory, Biology Department, Upton, New York 11973
Brookhaven National Laboratory, Biology Department, Upton, NY 11973===Search for more papers by this authorThis article is a US government work and, as such, is in the public domain in the United States of America.

REFERENCES
- 1 Moncrief MB,Maguire ME. Magnesium transport in prokaryotes. J Biol Inorg Chem 1999; 4: 523–527.
- 2 Lunin VV, Dobrovetsky E, Khutoreskaya G, Zhang R, Joachimiak A, Doyle DA, Bochkarev A, Maguire ME, Edwards AM, Koth CM. Crystal structure of the CorA Mg2+ transporter. Nature 2006; 440: 833–837.
- 3 Hattori M, Tanaka Y, Fukai S, Ishitani R, Nureki O. Crystal structure of the MgtE Mg2+ transporter. Nature 2007; 448: 1072–1075.
- 4 Schneider TR,Sheldrick GM. Substructure solution with SHELXD. Acta Crystallogr D Biol Crystallogr 2002; 58(Part 10, Part 2): 1772–1779.
- 5 Collaborative Computational Project N. The CCP4 suite: Programs for protein crystallography. Acta Crystallogr D 1994; 50: 760–763.
- 6 Fortelle E,Bricogne G. Maximum-likelihood heavy-atom parameter refinement for multiple isomorphous replacement and multiwavelength anomalous diffraction methods. Methods Enzymol 1997; 276: 472–494.
- 7 Jones TA, Zou JY, Cowan SW, Kjeldgaard M. Improved methods for the building of protein models in electron density maps and the location of errors in these models. Acta Crystallogr A 1991; A47: 110–119.
- 8 Morris RJ, Perrakis A, Lamzin VS. ARP/wARP and automatic interpretation of protein electron density maps. Methods Enzymol 2003; 374: 229–244.
- 9 Brunger AT, Adams PD, Clore GM, DeLano WL, Gros P, Grosse-Kunstleve RW, Jiang JS, Kuszewski J, Nilges M, Pannu NS, Read RJ, Rice LM, Simonson T, Warren GL. Crystallography & NMR system: A new software suite for macromolecular structure determination. Acta Crystallogr D Biol Crystallogr 1998; 54(Part 5): 905–921.
- 10 Yang J, Jan YN, Jan LY. Control of rectification and permeation by residues in two distinct domains in an inward rectifier K+ channel. Neuron 1995; 14: 1047–1054.
- 11 Kuo A, Gulbis JM, Antcliff JF, Rahman T, Lowe ED, Zimmer J, Cuthbertson J, Ashcroft FM, Ezaki T, Doyle DA. Crystal structure of the potassium channel KirBac1.1 in the closed state. Science 2003; 300: 1922–1926.
- 12 Pegan S, Arrabit C, Zhou W, Kwiatkowski W, Collins A, Slesinger PA, Choe S. Cytoplasmic domain structures of Kir2.1 and Kir3.1 show sites for modulating gating and rectification. Nat Neurosci 2005; 8: 279–287.
- 13 Potterton E, McNicholas S, Krissinel E, Cowtan K, Noble M. The CCP4 molecular-graphics project. Acta Crystallogr D Biol Crystallogr 2002; 58: 1955–1957.