References

1.     Cleasby A., Wonacott A., Skarzynski T., Hubbard RE., Davies GJ., Proudfoot AE., Bernard AR., Payton MA., Wells TN.; The x-ray crystal structure of phosphomannose isomerase from Candida albicans at 1.7 angstrom resolution; Natural Structure Biology.  Volume 5, No. 3, pp. 470-479

2.      Gao, H., Yu, Y., Leary, JA. "Mechanism and Kinetics of metalloenzyme phosphomannose isomerase: measurement of dissociation constants and effect of zinc binding using ESI-FTICR mass spectrometry" Analytical Chemistry, 1;77(17):5596-603.

3.      Gasteiger E., Hoogland C., Gattiker A., Duvaud S., Wilkins M.R., Appel R.D., Bairoch A.; Protein Identification and Analysis Tools on the ExPASy Server;  John M. Walker (ed): The Proteomics Protocols Handbook. Humana Press. 2005 pp. 571-607 

4.      Gracy R., Noltmann E.; Studies on Phosphomannose Isomerase: A Mechanism for Catalysis and for the Role of Zinc in the Enzymatic and the Nonenzymatic Isomerization; The Journal of Biological Chemistry.  Volume 243, No. 20, pp. 5410-5419

5.      Holm, L., Rosenstrom, P. (2010) Dali server: conservation mapping in 3D. Nucl. Acids Res. 38, W545-549.

6.      PDB ID: 3H1Y  Sagurthi, Giri, G., Savithri, H.S., Murthy, M.R.N. (2012). Crystal structure of mannose-6-phosphate isomerase from Salmonella typhimurium bound to metal atoms and substrate: Implications for catalytic mechanism.

7.      Sagurthi, S.R., Gowda, G., Savithri, H.S., Murthy, M.R.N. (2009).  Structures of mannose-6-phosphate isomerase from Salmonella typhimurium bound to metal atoms and substrate. Biological Crystallography. Volume 65, Part 7. pp. 724-732

8.      Wu, B., Zhang, Y., Zheng, R., Guo, C., Wang, P.G., Bifunctional phosphomannose  isomerase/GDP-D-mannose pyrophosphorylase is the point of control for GDP-D-mannose biosynthesis in Helicobacter pylori. FEBS Letters, Volume 519, Issues 1-3, 22 May 2002, pp. 87-92