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== Structure and domains ==
== Structure and domains ==
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:MMP8 is composed of several domains: a propeptide, a catalytic domain, a hinge region, and a C-terminal hemopexinlike domain.<ref name="Pdf">[https://www.google.fr/url?sa=t&rct=j&q=&esrc=s&source=web&cd=5&cad=rja&uact=8&ved=0ahUKEwipxN6imszKAhVCPxoKHR5QDC4QFghFMAQ&url=http%3A%2F%2Fwww.springer.com%2Fcda%2Fcontent%2Fdocument%2Fcda_downloaddocument%2F9780896036680-c2.pdf%3FSGWID%3D0-0-45-494797-p173728219&usg=AFQjCNHRfP-tVHWXP2ljUTd3MjjhObqnCA&sig2=6RnjnFvqo7PVhxvSDDsOlw Substrate specificity of MMPs]</ref>.
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MMP8 is composed of several domains: a propeptide, a catalytic domain, a hinge region, and a C-terminal hemopexinlike domain.<ref name="Pdf">[https://www.google.fr/url?sa=t&rct=j&q=&esrc=s&source=web&cd=5&cad=rja&uact=8&ved=0ahUKEwipxN6imszKAhVCPxoKHR5QDC4QFghFMAQ&url=http%3A%2F%2Fwww.springer.com%2Fcda%2Fcontent%2Fdocument%2Fcda_downloaddocument%2F9780896036680-c2.pdf%3FSGWID%3D0-0-45-494797-p173728219&usg=AFQjCNHRfP-tVHWXP2ljUTd3MjjhObqnCA&sig2=6RnjnFvqo7PVhxvSDDsOlw Substrate specificity of MMPs]</ref>.
=== Propeptide ===
=== Propeptide ===
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=== Catalytic domain ===
=== Catalytic domain ===
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:Thanks to X-ray crystallography, the catalytic domain structure has been solved with 1,7 Å resolution (2OY4).This domain is composed of 157 residues, from Met86 to Gly242, organized in <scene name='71/719866/Helixes/3'>three alpha helixes</scene> and <scene name='71/719866/Sheets/2'>five beta sheets</scene>.The protein folding and especially the zinc environment of the collagenase catalytic domain is very close to the astacins and the snake venom metalloproteinases. The catalytic domain alone has proteolytic activity against other protein substrates and synthetic substrates.[http://www.ncbi.nlm.nih.gov/pmc/articles/PMC394940/?page=2]
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Thanks to X-ray crystallography, the catalytic domain structure has been solved with 1,7 Å resolution (2OY4).This domain is composed of 157 residues, from Met86 to Gly242, organized in <scene name='71/719866/Helixes/3'>three alpha helixes</scene> and <scene name='71/719866/Sheets/2'>five beta sheets</scene>.The protein folding and especially the zinc environment of the collagenase catalytic domain is very close to the astacins and the snake venom metalloproteinases. The catalytic domain alone has proteolytic activity against other protein substrates and synthetic substrates.[http://www.ncbi.nlm.nih.gov/pmc/articles/PMC394940/?page=2]
==== Ca2+ interactions ====
==== Ca2+ interactions ====
[[Image:CA_pocket_interaction.gif | thumb|CA996 pocket interaction]]This enzyme binds 3 Ca ions, 2 of them in the catalytic domain, which are packed against the top of the beta sheet and mostly have a structural function, stabilizing the catalytic domain.
[[Image:CA_pocket_interaction.gif | thumb|CA996 pocket interaction]]This enzyme binds 3 Ca ions, 2 of them in the catalytic domain, which are packed against the top of the beta sheet and mostly have a structural function, stabilizing the catalytic domain.

Revision as of 07:10, 29 January 2016

MMP8

MMP-8, also called, Neutrophil collagenase or Collagenase 2, is a zinc-dependent and calcium-dependent enzyme. It belongs to the matrix metalloproteinase (MMP) family which is involved in the breakdown of extracellular matrix in embryonic development, reproduction, and tissue remodeling, as well as in disease processes, such as arthritis and metastasis. The gene coding this family is localized on the chromosome 11 of Homo sapiens .[1]


MMP-8

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References

  1. "MMP8 matrix metallopeptidase 8 (neutrophil collagenase)"
  2. "Metalloendopeptidase activity"
  3. Stams T, Spurlino JC, Smith DL, Wahl RC, Ho TF, Qoronfleh MW, Banks TM, Rubin B. Structure of human neutrophil collagenase reveals large S1' specificity pocket. Nat Struct Biol. 1994 Feb;1(2):119-23. PMID:7656015
  4. 4.0 4.1 Substrate specificity of MMPs
  5. Hirose T, Patterson C, Pourmotabbed T, Mainardi CL, Hasty KA. Structure-function relationship of human neutrophil collagenase: identification of regions responsible for substrate specificity and general proteinase activity. Proc Natl Acad Sci U S A. 1993 Apr 1;90(7):2569-73. PMID:8464863
  6. Knauper V, Osthues A, DeClerck YA, Langley KE, Blaser J, Tschesche H. Fragmentation of human polymorphonuclear-leucocyte collagenase. Biochem J. 1993 May 1;291 ( Pt 3):847-54. PMID:8489511
  7. Welgus HG, Jeffrey JJ, Eisen AZ. Human skin fibroblast collagenase. Assessment of activation energy and deuterium isotope effect with collagenous substrates. J Biol Chem. 1981 Sep 25;256(18):9516-21. PMID:6270090
  8. Visse R, Nagase H. Matrix metalloproteinases and tissue inhibitors of metalloproteinases: structure, function, and biochemistry. Circ Res. 2003 May 2;92(8):827-39. PMID:12730128 doi:http://dx.doi.org/10.1161/01.RES.0000070112.80711.3D
  9. Knauper V, Docherty AJ, Smith B, Tschesche H, Murphy G. Analysis of the contribution of the hinge region of human neutrophil collagenase (HNC, MMP-8) to stability and collagenolytic activity by alanine scanning mutagenesis. FEBS Lett. 1997 Mar 17;405(1):60-4. PMID:9094424
  10. "Neutrophil collagenase"
  11. "Extra Binding Region Induced by Non-Zinc Chelating Inhibitors into the S1′ Subsite of Matrix Metalloproteinase 8"
  12. Balbin M, Fueyo A, Knauper V, Pendas AM, Lopez JM, Jimenez MG, Murphy G, Lopez-Otin C. Collagenase 2 (MMP-8) expression in murine tissue-remodeling processes. Analysis of its potential role in postpartum involution of the uterus. J Biol Chem. 1998 Sep 11;273(37):23959-68. PMID:9727011



RESSOURCE : Image:2oy4 mm1.pdb ( la structure du monomère )

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