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==Catalytic Mechanism==
==Catalytic Mechanism==


[[Image:Papainmech6.jpg|200px|left|thumb| General mechanism of papain catalysis<ref>[http://chemistry.umeche.maine.edu/CHY431/Peptidase10.html] University of Maine</ref>.]]
[[Image:Papainmech6.jpg|200px|left|thumb| General mechanism of papain catalysis<ref name="Maine">[http://chemistry.umeche.maine.edu/CHY431/Peptidase10.html] University of Maine</ref>.]]








Papain's catalytic mechanism is like serine proteases. Its catalytic triad of residues Cys 25- His159- Arg-175 appear to work with a fourth residue, Gln-19, suspected to be involved in oxyanion hole formation. When a peptide binds to the active site, His-159 deprotonates  Cys-25 which in turn attacks the substrate carbonyl carbon. The oxyanion hole then stabilizes the resulting covalent, tetrahedral intermediate. Subsequently, nitrogen in the peptide bond is protonated by His-159 (acting as an acid). This action frees the C-terminal portion of the peptide so that it is released. The entrance of water into the active site then attacks the carbonyl carbon while it is deprotonated by His-159, resulting in another tetrahedral covalent intermediate once again stabilized through the oxyanion hole. At the end, carbonyl reformation and the Cys-25 sulfur action as the leaving group releases the N-terminal portion of the peptide. The enzyme is regenerated for the cycle to begin again. <ref>[http://chemistry.umeche.maine.edu/CHY431/Peptidase10.html] University of Maine</ref>  
Papain's catalytic mechanism is like serine proteases. Its catalytic triad of residues Cys 25- His159- Arg-175 appear to work with a fourth residue, Gln-19, suspected to be involved in oxyanion hole formation. When a peptide binds to the active site, His-159 deprotonates  Cys-25 which in turn attacks the substrate carbonyl carbon. The oxyanion hole then stabilizes the resulting covalent, tetrahedral intermediate. Subsequently, nitrogen in the peptide bond is protonated by His-159 (acting as an acid). This action frees the C-terminal portion of the peptide so that it is released. The entrance of water into the active site then attacks the carbonyl carbon while it is deprotonated by His-159, resulting in another tetrahedral covalent intermediate once again stabilized through the oxyanion hole. At the end, carbonyl reformation and the Cys-25 sulfur action as the leaving group releases the N-terminal portion of the peptide. The enzyme is regenerated for the cycle to begin again. <ref name="Maine" />





Revision as of 13:36, 14 November 2011

Please do NOT make changes to this Sandbox. Sandboxes 30-60 are reserved for use by Biochemistry 410 & 412 at Messiah College taught by Dr. Hannah Tims during Fall 2012 and Spring 2013.

Papain

Introduction

Cartoon Peak at Pepsin

DID YOU KNOW?

Papain. Meat tenderizer. Old time home remedy for insect, jellyfish, and stingray stings[1]. Who would have thought that a sulfhydryl protease from the latex of the papaya fruit, Carica papaya and Vasconcellea cundinamarcensis would have such a practical application beyond proteopedia?


This protease belongs to an extended family of aminopeptidases, dipeptidyl peptidases, endopeptidases, and other enzymes having both exo- and endo-peptidase activity. The inactivated zymogen with N-terminal propeptide regions - providing stability in alkaline environments and enabling proper folding - is activated through removal of the propeptide regions. [2][3]


Papain. Lights. Camera. Action!

Structure of HMG-CoA reductase (PDB entry 9pap)

Drag the structure with the mouse to rotate

Catalytic Mechanism

General mechanism of papain catalysis[4].



Papain's catalytic mechanism is like serine proteases. Its catalytic triad of residues Cys 25- His159- Arg-175 appear to work with a fourth residue, Gln-19, suspected to be involved in oxyanion hole formation. When a peptide binds to the active site, His-159 deprotonates Cys-25 which in turn attacks the substrate carbonyl carbon. The oxyanion hole then stabilizes the resulting covalent, tetrahedral intermediate. Subsequently, nitrogen in the peptide bond is protonated by His-159 (acting as an acid). This action frees the C-terminal portion of the peptide so that it is released. The entrance of water into the active site then attacks the carbonyl carbon while it is deprotonated by His-159, resulting in another tetrahedral covalent intermediate once again stabilized through the oxyanion hole. At the end, carbonyl reformation and the Cys-25 sulfur action as the leaving group releases the N-terminal portion of the peptide. The enzyme is regenerated for the cycle to begin again. [4]




Fun Trivia

Remember the 2002 SARS (Severe Acute Respiratory Syndrome) epidemic that placed global health, particularly in Southeast Asia, in a precarious state? On-going research is happening to further understand the mechanisms of this coronavirus, so that future steps can be taken for prevention. Its been found that the replication of RNA for this virus is mediated by two viral proteases that have many papain-like characteristics! [5]


References

I realize that there are repetitions in my citations. With PUBmed short cut syntax, I just couldn't figure out how to not repeat source in references; this being the least important, I've decided to leave this accordingly.

  1. ↑ [1] Ameridan International
  2. ↑ Rawlings ND, Barrett AJ. Families of cysteine peptidases. Methods Enzymol. 1994;244:461-86. PMID:7845226
  3. ↑ Yamamoto Y, Kurata M, Watabe S, Murakami R, Takahashi SY. Novel cysteine proteinase inhibitors homologous to the proregions of cysteine proteinases. Curr Protein Pept Sci. 2002 Apr;3(2):231-8. PMID:12188906
  4. ↑ 4.0 4.1 [2] University of Maine
  5. ↑ Barretto N, Jukneliene D, Ratia K, Chen Z, Mesecar AD, Baker SC. The papain-like protease of severe acute respiratory syndrome coronavirus has deubiquitinating activity. J Virol. 2005 Dec;79(24):15189-98. PMID:16306590 doi:10.1128/JVI.79.24.15189-15198.2005