1 / 17

Group transfer enzymes

Group transfer enzymes. Group transfer enzymes. ATP and phosphoryl transfer reactions. Possible structures of the Mg–ATP complex. ATP and phosphoryl transfer reactions. ATP 4– + H 2 O = H + + HPO 4 2– + ADP 3–.  r G 0 = 30,5 kJ/mol.

Download Presentation

Group transfer enzymes

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Group transfer enzymes

  2. Group transferenzymes

  3. ATP and phosphoryltransferreactions Possible structures of the Mg–ATP complex

  4. ATP and phosphoryltransferreactions ATP4– + H2O = H+ + HPO42– + ADP3– rG0 = 30,5 kJ/mol (i) Storage of energy for later use (creatin →creatin-phosphate) (ii) change in the conformation of a protein to control enzyme activity or transport process or in order to perform work (iii) In order to cover the energy need of the various metabolic processes, etc.

  5. ATP and phosphoryltransferreactions Na+,K+ pump R-COO- + Mg-ATP → R-C(O)-O-PO32- + Mg-ADP Phosphorylation of protein side chains R-XH + Mg-ATP → R-X-PO32- + Mg-ADP Glycolysis glucose + Mg-ATP → glucose-6-phosphate + Mg-ADP

  6. ATP and phosphoryltransferreactions 1,3-bisphosphoglycerate 3-phosphoglycerate An example for the formation of ATP

  7. ATP and phosphoryltransferreactions A possible mechanism of the protein kinases

  8. ATP and phosphoryltransferreactions A reaction catalysed by glutamine synthase

  9. ATP and phosporyltransferreactions NH3 Mechanism of glutamine syntethase

  10. Methylcobalamin and B12coenzyme Structure of methylcobalamin (X = CH3)

  11. Methylcobalamin and B12coenzyme (corrin)CoIII-CH3(corrin)CoIII + CH3– (corrin)CoIII-CH3(corrin)CoII + CH3● (corrin)CoIII-CH3(corrin)CoI + CH3+

  12. Methylcobalamin and B12coenzyme The reaction catalysed by homocystein-methyl-transferase

  13. Methylcobalamin and B12coenzyme General mechanism of the B12 coenzyme dependent isomerases and several representants

  14. Methylcobalamin and B12coenzyme General mechanism of the B12 coenzyme-dependent isomerase: B12 coenzyme (corrin)CoII + R-CH2+ B12 coenzyme (corrin)CoII + R-CH2+

  15. Methylcobalamin and B12coenzyme The (first step) product of the reactions catalysed by the B12 coenzyme- dependent dehydratases gives an aldehyde by spontanaous water liberation.

More Related