Carboxypeptidase A

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# The Glu270 base catalyst is regenerated through a final [http://www.masterorganicchemistry.com/tips/proton-transfer/ proton transfer] with the nitrogen atom of the former C-terminal peptide bond.
# The Glu270 base catalyst is regenerated through a final [http://www.masterorganicchemistry.com/tips/proton-transfer/ proton transfer] with the nitrogen atom of the former C-terminal peptide bond.
# Product release is facilitated, in part, by unfavorable electrostatic interactions between the regenerated Glu270 base catalyst and the deprotonated carboxylic acid at the new C-terminus.
# Product release is facilitated, in part, by unfavorable electrostatic interactions between the regenerated Glu270 base catalyst and the deprotonated carboxylic acid at the new C-terminus.
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[[Image:Proteopedia Reaction Mechanism Graphic.jpg|850 px|thumb|Figure ***: Hydrolysis of C-terminal polypeptide substrate residue by CPA using the promoted water pathway. Residues of the S1 subsite stabilize the negatively charged intermediate once the water molecule complexed with the Zn<sup>2+</sup> ion is deprotonated by the base catalyst, Glu270, and attacks the carbonyl. This figure is derived from Figure 10 in "Carboxypeptidase A" by Christianson and Lipscomb (1989. ''Acc. Chem. Res.'').<ref name="CPA2" /> ]]
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[[Image:Proteopedia Reaction Mechanism Graphic.jpg|850 px|thumb|Figure ***: Hydrolysis of C-terminal polypeptide substrate residue by CPA using the promoted water pathway. Residues of the S1 subsite stabilize the negatively charged intermediate once the water molecule complexed with the Zn<sup>2+</sup> ion is deprotonated by the base catalyst, Glu270, and attacks the carbonyl. This figure is derived from Figure 10 in "Carboxypeptidase A" by Christianson and Lipscomb (''Acc. Chem. Res.'', 1989).<ref name="CPA2" /> ]]
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Revision as of 13:27, 28 March 2017

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Carboxypeptidase A in Bos taurus

Carboxypeptidase A (CPA) biological assembly (PDB: 3CPA)

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References

  1. 1.0 1.1 1.2 1.3 1.4 1.5 1.6 Bukrinsky JT, Bjerrum MJ, Kadziola A. 1998. Native carboxypeptidase A in a new crystal environment reveals a different conformation of the important tyrosine 248. Biochemistry. 37(47):16555-16564. DOI: 10.1021/bi981678i
  2. 2.0 2.1 2.2 2.3 2.4 2.5 2.6 Christianson DW, Lipscomb WN. 1989. Carboxypeptidase A. Acc. Chem. Res. 22:62-69.
  3. Suh J, Cho W, Chung S. 1985. Carboxypeptidase A-catalyzed hydrolysis of α-(acylamino)cinnamoyl derivatives of L-β-phenyllactate and L-phenylalaninate: evidence for acyl-enzyme intermediates. J. Am. Chem. Soc. 107:4530-4535. DOI: 10.1021/ja00301a025
  4. Geoghegan, KF, Galdes, A, Martinelli, RA, Holmquist, B, Auld, DS, Vallee, BL. 1983. Cryospectroscopy of intermediates in the mechanism of carboxypeptidase A. Biochem. 22(9):2255-2262. DOI: 10.1021/bi00278a031
  5. Kaplan, AP, Bartlett, PA. 1991. Synthesis and evaluation of an inhibitor of carboxypeptidase A with a Ki value in the femtomolar range. Biochem. 30(33):8165-8170. PMID: 1868091
  6. Pitout, MJ, Nel, W. 1969. The inhibitory effect of ochratoxin a on bovine carboxypeptidase a in vitro. Biochem. Pharma. 18(8):1837-1843. DOI: 0.1016/0006-2952(69)90279-2
  7. Normant, E, Martres, MP, Schwartz, JC, Gros, C. 1995. Purification, cDNA cloning, functional expression, and characterization of a 26-kDa endogenous mammalian carboxypeptidase inhibitor. Proc. Natl. Acad. Sci. 92(26):12225-12229. PMCID: PMC40329
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