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The '''domain structure of ASP''' consists of the propeptide, the catalytic subtilisin-like domain, and the P-domain. The ASP molecule have two mean regions: an N-terminal region extending from Gly-3 to Pro-431 and forming the <scene name='82/829344/The_subtilisin_domain/2'>subtilisin domain</scene>, and a C-terminal region extending from Leu-432 to His-595 and forming the <scene name='82/829344/The_p-domain/2'>P-domain</scene>.
The '''domain structure of ASP''' consists of the propeptide, the catalytic subtilisin-like domain, and the P-domain. The ASP molecule have two mean regions: an N-terminal region extending from Gly-3 to Pro-431 and forming the <scene name='82/829344/The_subtilisin_domain/2'>subtilisin domain</scene>, and a C-terminal region extending from Leu-432 to His-595 and forming the <scene name='82/829344/The_p-domain/2'>P-domain</scene>.
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Moreover, we can find three <scene name='82/829344/Calcium_binding_sites/2'>Ca2+ Binding Sites</scene> in the ASP Structure (Ca1, Ca2 and Ca3). <scene name='82/829344/Ca1_et_ca2/4'>Ca1 and Ca2</scene> are situated in the N-terminal domain, and <scene name='82/829344/Ca3/3'>Ca3</scene> is situated in the C-terminal domain. It were assigned to ASP based on electron density, counter charges, and coordination. But in contrary to Kex2 ([[1r64]]), ASP contains no Ca2+ binding sites near its catalytic site.
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Moreover, we can find three <scene name='82/829344/Calcium_binding_sites/2'>Ca2+ Binding Sites</scene> in the ASP Structure (Ca1, Ca2 and Ca3). <scene name='82/829344/Ca1_et_ca2/4'>Ca1 and Ca2</scene> are situated in the N-terminal domain, while <scene name='82/829344/Ca3/3'>Ca3</scene> is situated in the C-terminal domain. These findings were assigned to ASP based on electron density, counter charges, and coordination. But contrary to Kex2 ([[1r64]]), ASP doesn't contain any Ca2+ binding sites near its catalytic site.
A schematic representation of the domains of the protein can be observed : [http://www.degruyter.com/viewimg/j/bchm.2017.398.issue-10/hsz-2016-0344/hsz-2016-0344.xml?img=graphic/j_hsz-2016-0344_fig_001.jpg '''secondary structure of ASP''']. We can see that Kex2 has the propeptide (in yellow) that is absent in ASP. The occluding subdomains in the C-terminal region of ASP are shown in dark blue.
A schematic representation of the domains of the protein can be observed : [http://www.degruyter.com/viewimg/j/bchm.2017.398.issue-10/hsz-2016-0344/hsz-2016-0344.xml?img=graphic/j_hsz-2016-0344_fig_001.jpg '''secondary structure of ASP''']. We can see that Kex2 has the propeptide (in yellow) that is absent in ASP. The occluding subdomains in the C-terminal region of ASP are shown in dark blue.

Revision as of 14:43, 17 January 2020

This Sandbox is Reserved from 25/11/2019, through 30/9/2020 for use in the course "Structural Biology" taught by Bruno Kieffer at the University of Strasbourg, ESBS. This reservation includes Sandbox Reserved 1091 through Sandbox Reserved 1115.
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The serine protease from Aeromonas sobria : ASP

General structure of ASP protein (with Ca2+ Binding Site and Disulfide Bridges)

Drag the structure with the mouse to rotate

References

  1. Fuller RS, Brake A, Thorner J. Yeast prohormone processing enzyme (KEX2 gene product) is a Ca2+-dependent serine protease. Proc Natl Acad Sci U S A. 1989 Mar;86(5):1434-8. PMID:2646633
  2. Siezen RJ & Leunissen JAM (1997) Subtilase: the superfamily of subtilisin-like serine proteases. Protein Sci 6: 501–523.
  3. Aeromonas sobria serine protease (ASP): a subtilisin family endopeptidase with multiple virulence activities. Takahisa Imamura et al. (2017)
  4. http://www.msdmanuals.com/professional/critical-care-medicine/sepsis-and-septic-shock/sepsis-and-septic-shock
  5. Structural Basis for Action of the External Chaperone for a Propeptide-deficient Serine Protease from Aeromonas sobria. Kobayashi H et al. Biol. Chem. 290(17):11130-43 (2015)
  6. Khan R, Takahashi E, Ramamurthy T, Takeda Y, Okamoto K. Salt in surroundings influences the production of serine protease into milieu by Aeromonas sobria. Microbiol Immunol. 2007;51(10):963-76. PMID:17951986
  7. Aeromonas sobria serine protease (ASP): a subtilisin family endopeptidase with multiple virulence activities. Imamura T, Murakami Y, Nitta H. Biol. Chem. 398 1055-1068 (2017)
  8. Structural Basis for the Kexin-like Serine Protease from Aeromonas sobria as Sepsis-causing Factor. H Kobayashi et al. J Biol Chem. 284(40): 27655–27663 (2009)
  9. http://fr.wikipedia.org/wiki/Fichier:Serine_protease_mechanism_by_snellios.png
  10. Aeromonas sobria serine protease (ASP): a subtilisin family endopeptidase with multiple virulence activities. Imamura T, Murakami Y, Nitta H. Biol. Chem. 398 1055-1068 (2017)
  11. Cleavage specificity of serine protease of Aeromonas sobria, a member of the kexin family of subtilases., H. Kobayashi, Okayama University, Japan,FEMS Microbiology Letters, Volume 256, Issue 1, March 2006, Pages 165–170,
  12. Physicochemical and biological properties od an extracellular serine protease od Aeromonas sobria. Ritsuko Yokoyama, Yoshio Fujii et al. Japan (2002)
  13. Physicochemical and biological properties od an extracellular serine protease od Aeromonas sobria. Ritsuko Yokoyama, Yoshio Fujii et al. Japan (2002)
  14. Joseph, S. W., O. P. Daily, W. S. Hunt, R. J. Seidler, D. A. Allen, and R. R. Colwell. 1979. Aeromonas primary wound infection of a diver in polluted waters. J. Clin. Microbiol. 10:46-49.
  15. Cleavage specificity of serine protease of Aeromonas sobria, a member of the kexin family of subtilases., H. Kobayashi, Okayama University, Japan,FEMS Microbiology Letters, Volume 256, Issue 1, March 2006, Pages 165–170,
  16. Inhibition of Aeromonas sobria serine protease (ASP) by α2-macroglobulin. Murakami Y et al. Biol Chem. 393(10):1193-200 (2012)

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