Phosphoglucoisomerase: Difference between revisions
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<applet load="1iat" size="300" color="white" frame="true" align="right" caption="Human phosphoglucose isomerase (1IAT)" /> | <applet load="1iat" size="300" color="white" frame="true" align="right" caption="Human phosphoglucose isomerase (1IAT)" /> | ||
'''Phosphoglucoisomerase''' (alternatively known as '''phosphoglucose isomerase''' or '''Glucose-6-phosphate isomerase''') are a group of enzymes of the isomerase family ([http://www.brenda-enzymes.info/php/result_flat.php4?ecno=5.3.1.9 EC 5.3.1.9]), so named for their main function in glycolysis and gluconeogenesis. In both these pathways phosphoglucose isomerase (PGI) is used to inter-convert glucose-6-phosphate and fructose 6-phosphate. This reaction is driven by the relative concentrations of these sugars in the cytoplasmic matrix of the cell <ref>PMID:11371164</ref>. | '''Phosphoglucoisomerase''' (alternatively known as '''phosphoglucose isomerase''' or '''Glucose-6-phosphate isomerase''') are a group of enzymes of the isomerase family ([http://www.brenda-enzymes.info/php/result_flat.php4?ecno=5.3.1.9 EC 5.3.1.9]), so named for their main function in glycolysis and gluconeogenesis. In both these pathways phosphoglucose isomerase (PGI) is used to inter-convert glucose-6-phosphate and fructose 6-phosphate. This reaction is driven by the relative concentrations of these sugars in the cytoplasmic matrix of the cell <ref>PMID:11371164</ref>. The overall reaction can be seen here [[Image:Phosphoglucose_Isomerase1.pdf]]. | ||
Phosphoglucoisomerase is also | Phosphoglucoisomerase is also known for a list of activities: | ||
* Neuroleukin (NLK)- nerve growth factor. Secreted by T cells, promotes the survival of certain sensory and embryonic nerve cells. Also used to stimulate the production of immunoglobulin <ref>PMID:3764429</ref>. | * Neuroleukin (NLK)- nerve growth factor. Secreted by T cells, promotes the survival of certain sensory and embryonic nerve cells. Also used to stimulate the production of immunoglobulin <ref>PMID:3764429</ref>. | ||
* Autocrine motility factor (AMF)- product of tumor cells, it promotes cell migration and viewed as a possible cause in cancer metastasis<ref>PMID:12054796</ref>. | * Autocrine motility factor (AMF)- product of tumor cells, it promotes cell migration and viewed as a possible cause in cancer metastasis<ref>PMID:12054796</ref>. | ||
* Maturation factor(MF) <ref>PMID:8639816</ref> | * Maturation factor(MF) <ref>PMID:8639816</ref> | ||
* Myofibril-bound serine protese inhibitor (MBSPI)<ref>PMID:10833440</ref> | * Myofibril-bound serine protese inhibitor (MBSPI)<ref>PMID:10833440</ref> | ||
* PGI is important for metabolism in many different clades, including eukarya, bacteria, and archea. <ref> Hansen T, Schlichting B, Grtozinger J, Swam MK, Davies C, Schonheit P. Mutagentic and catalytically residues of cupin type phosphoglucose isomerase from Archaeoglobus fulgidus. FEBS Journal. 2005; 272(24): 6266-75. </ref>. | |||
* Involved in Gluconeogenesis in which it catalyzes the reaction of D-glucose to D-Fructose | |||
=='''Structure'''== | =='''Structure'''== | ||
<applet load="1hox" size="400" color="white" frame="true" align="right" caption="Phosphoglucose isomerase" /> | <applet load="1hox" size="400" color="white" frame="true" align="right" caption="Phosphoglucose isomerase" /> | ||
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Phosphoglucose isomerase has a monomer molecular mass of proximately 55 kDa. | Phosphoglucose isomerase has a monomer molecular mass of proximately 55 kDa. | ||
'''Active Site''' - Mammalian PGI shows a degree of <scene name='Stancu_Phosphoglucoisomerase_Sandbox_1/Conservation2/1'>conservation</scene> ( dark red for highly conserved regions - dark blue for variable reigions) of about 90 %. The <scene name='Stancu_Phosphoglucoisomerase_Sandbox_1/Active_site2/1'>active site</scene> is the region with highest observed conservation, | '''Active Site''' - Mammalian PGI shows a degree of <scene name='Stancu_Phosphoglucoisomerase_Sandbox_1/Conservation2/1'>conservation</scene> ( dark red for highly conserved regions - dark blue for variable reigions) of about 90 %. The <scene name='Stancu_Phosphoglucoisomerase_Sandbox_1/Active_site2/1'>active site</scene> is the region with highest observed conservation, containing a number of residues that are crucial in the enzyme-substrate interaction mechanism (Lys210, Gln353, Glu357, Gln511, Lys518, His388b). Lys518(His388) and Glu357 <scene name='Gilman_sandbox_1/Lys_518_and_glu_357/1'>Lys 518(His388) and Glu357 </scene> are the main components of ring opening, while many of the other residues can be used for stabliziation and orientation. | ||
Another characteristic of phosphoglucose isomerase is that binding of substrate at the active site | Another characteristic of phosphoglucose isomerase is that binding of substrate at the active site induces a small movement in the conformation of the enzyme. This can be seen in '''Figure 2''' as change in the position of an α helix. | ||
[[Image:Active_site_movement.jpg|thumb|left|'''Figure 2.''' Substrate induced movement]] | [[Image:Active_site_movement.jpg|thumb|left|'''Figure 2.''' Substrate induced movement]] | ||
=='''Mechanism'''== | =='''Mechanism'''== | ||
The proposed reaction mechanism of PGI for the reversible conversion of glucose-6-phosphate to fructose 6-phosphate involves an acid/base catalysis by the enzyme.<ref> Voet D, Voet J, and Pratt C. Fundamentals of Biochemistry Life at the Molecular Level. New York: John Wiley & Sons, 2008. Print.</ref> | The proposed reaction mechanism of PGI for the reversible conversion of glucose-6-phosphate to fructose 6-phosphate involves an acid/base catalysis by the enzyme. The basic mechanism involves the isomerization of an aldose to a ketose. This is performed by a ring opening, followed by an isomeration of the opened ring, then a ring closing. A detailed step by step mechanism of this process can be seen as follows <ref> Voet D, Voet J, and Pratt C. Fundamentals of Biochemistry Life at the Molecular Level. New York: John Wiley & Sons, 2008. Print.</ref>: | ||
'''Step 1.''' The substrate binds to the enzyme. | '''Step 1.''' The substrate binds to the enzyme. | ||
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[[Image:Mech.png]] | [[Image:Mech.png]] | ||
'''Regulation''' | =='''Regulation and Inhibition'''== | ||
'''Regulation''' of phosphoglucoisomerase is only done by the relative concentrations of glucose-6-phosphate and fructose 6-phosphate, towards equilibrium. Nevertheless, it was found that the kinetic parameters of PGI does depend on the pH and temperature of the environment. | |||
The following kinetic parameters are proposed for rabbit PGI at pH 8.5 and 30°C <ref>PMID: 5647261</ref> | The following kinetic parameters are proposed for rabbit PGI at pH 8.5 and 30°C <ref>PMID: 5647261</ref> | ||
[[Image:Kinetic_PGI.JPG]] | [[Image:Kinetic_PGI.JPG]] | ||
It is interesting to point the regulation of PGI in other aspects that are not involved in metabolism. For example, PGI acts as a "cytokine" outside the cell in that it can be used as a cell signalling protein. PGI has been found to to be associated with AMF cells, which is found to regulate tumor cell motility. Regulation of these extracellular "cytokine" PGI/AMF can be seen. The amount of PGI/AMF that is secreted inside and outside the cell based on infection <ref> Funasaka T, Hu H, Yanagawa T, Hogan V, Raz A. Down-Regulation of Phosphoglucose Isomerase/Autocrine Motility Factors Results in Mesenchymal-to-Epithelial Transition of Human Lung Fibrosarcoma Cells. (2007) Cancer Res, 76(9) </ref>. | |||
'''Inhibition''' of the phosphoglucoisomerase regulated reaction of glucose-6-phosphate to fructose-6-phosphate can also occur. Competitive competition can take place from inhibitors such as 5PAH. 5PAH resembles PGI, differing only in a nitrogen atom at the first carbon position. 5PAH is reported to have a Ki of .0000002 M <ref> Arsenieva D, Hardre R, Salmon L, Jeffery CJ. The crystal structure of rabbit phosphoglucose isomerase complex with 5-phospho-D-arabinonohydroxamic acid. (2002),PNAS, 99(9) </ref>. | |||
=='''Links'''== | =='''Links'''== | ||