Sandbox Reserved 824: Difference between revisions

From Proteopedia
Jump to navigationJump to search
No edit summary
No edit summary
 
(70 intermediate revisions by the same user not shown)
Line 1: Line 1:
<Structure load='1qb2' size='500' frame='true' align='right' caption='Insert caption here' scene='Insert optional scene name here' /><!-- PLEASE DO NOT DELETE THIS TEMPLATE -->
== Human SRP54 M-domain ==
{{Sandbox_Reserved_ESBS}}
<StructureSection load='1qb2' size='450' side='right'caption='Dimer of human SRP54M, (PDB code [[1qb2]]) ' scene='56/568022/Hsrp54m_dimer/1' >
<!-- PLEASE ADD YOUR CONTENT BELOW HERE -->
== Context ==
SRP54 is a 54kDa cytosolic protein part of the Signal Recognition Particle (SRP).
SRP54 bacterial homologous can be referred to as Ffh (Fifty Four Homologous).
 
SRP is a ribonucleoprotein particle essential for the translation and integration in membranes of signal peptide-bearing proteins. It is composed of an RNA backbone, on which bind different proteins.
For example Mammalian SRP are formed of the RNA 7S and SRP 9-14-19-54-68-72.
SRP54 and regions of RNA 7S are highly conserved in every organism and it was found that these two components are sufficient to form a minimal SRP.
 
The role of SRP is to :
*Bind signal peptide bearing proteins at the beginning of their translation by the ribosome (at this step we call the ribosome and the protein it began to translate the Ribosome Nascent Chain – RNC)
*Stop protein elongation
*Dock the RNC to a SRP Receptor (SR) and insert the protein into a translocon channel. This final step is GTP-dependant.
SRP54 is responsible for the signal peptide binding and the GTP-dependant interaction with SR. This protein is therefore essential in the SRP mechanism resulting in the integration of proteins into membranes or their secretion.
 
SRP54 is a 504 aminoacids protein,composed of 3 domains:
*N-terminal domain with 4 alpha-helices;
*G domain, central, with a GTPase activity
*M domain ( for Methionin Rich).
 
The 1QB2 structure is the M-domain of the human SRP54. It includes the aminoacids 322 to 441.
The following parts will treat of 1QB2 structure and its relation to the functions of SRP54M.
 
==Structure==
 
SRP54M is a 120 aminoacids long polypeptide. 1QB2 is a <scene name='56/568022/Hsrp54m_dimer/1'>dimer of SRP54M</scene>, since the studied polypeptide has the interesting property to dimerize in solution.
 
''Note : for a readability purpose the structures enlighten in the Jmol applet will focus only on one SRP54. The same structures are present in the second SRP54M of the dimer.''
 
The secondary structure of human SRP54M is formed of <scene name='56/568022/Hsrp54m_h1_to_h7/1'>7 alpha helixes (H1 to H7)</scene>. The helices 2 to 7 form the <scene name='56/568022/Hsrp54m_core_and_h1v2/2'>Core structure</scene>, stabilized by hydrophobic, hydrogen and ionic interactions.


==Context / Work in Progress==
Several residues important to maintain the Core structure were identified. Among them the <scene name='56/568022/Hsrp54m_core_and_h1/2'>Methionine 382,Glutamine 386, Arginine 402 and Arginine 405.</scene>
Met382 is invariable while Glu386, Arg402 and Arg405 are well-conserved but not systemically found in the SRP54M of different organisms.


SRP54 is a 54kDa cytosolic protein part of the Signal Recognition Particle (SRP).
The remaining helix, <scene name='56/568022/Hsrp54m_core_and_h1v2/1'>H1</scene>, is not part of the Core and protrudes from it.
SRP54 homologous proteins can be referred to as Ffh (Fifty Four Homologous)*.


SRP is a ribonucleoprotein particle essential for the translation and integration in membranes of signal peptide-bearing proteins.
Between the helices are loops of various importance.  
SRP is composed of an RNA backbone, on which bind different proteins.
The loop including the <scene name='56/568022/Hsrp54m_loop_349-365/2'>aminoacids 349 to 365</scene>, besides having an important role in SRP54 function, has the particularity to have two phenylalanine residues, <scene name='56/568022/Hsrp54m_phe355_and_phe359/1'>Phe355 and Phe359</scene>, stacking their aromatic cycles. The function of this loop will be developed in the next part.


For example Mammalian SRP are formed of the RNA 7S and SRN 9-14-19-54-68-72*.
==Fonction==


SRP54 and regions of RNA 7S are highly conserved in every organism and it was found that these two components are sufficient to form a minimal SRP*.
*'''Signal peptide binding'''


The role of SRP is to :
The signal peptide binds SRP54M in an <scene name='56/568022/Hsrp54m_groovev2/1'>hydrophobic groove</scene> formed by helices 2, 3 and 4 as well as the loop 349-365 (17 aminoacids) previously mentioned.
These structures circumscribe a deep elongated hydrophobic groove matching the shape and chemical properties of known signal peptides.


:* Bind signal peptide bearing proteins at the beginning of their translation by the ribosome (at this step we call the ribosome and the protein it began to translate the Ribosome Nascent Chain – RNC)
Interestingly enough, the dimer structure of 1QB2 shows that the <scene name='56/568022/Hsrp54m_groove_with_h1/1'>groove of the first SRP54M is occupied by the H1 helix of the second SRP54M.</scene>
:* Stop protein elongation
The study of the H1 helix indicates that it shares common physical and chemical properties with alpha-helical signal peptides.
:* Dock the RNC to a SRP Receptor (SR) and insert the protein into a translocon channel. This final step is GTP-dependant.
Theses similarities might come from the fact that the H1 helix is near the hydrophobic groove of its own SRP54M, and that conformational changes (in a full SRP54 protein) might bring H1 into the groove in order to protect it from solvent interaction in the absence of signal peptide.  


SRP54 is responsible for the signal peptide binding and the GTP-dependant interaction with SR.
It was therefore hypothesized that the binding of H1 into the groove of another SRP54M provides a possible model of the interaction between the signal peptide and SRP54M in vivo.
This protein is therefore essential in the SRP mechanism resulting in the integration of proteins into membranes or their secretion.
It also explains the dimerization of SRP54M in solution.


asterisque = references aux publis, faire le lien avec les publis cites en fin d’article
This hypothesis has however to be confirmed since 1QB2 is only a fragment of SRP54, and that the M-domain, linked to the N and G domains, might adopt another conformation.


==Structure==
*'''SRP RNA binding'''


''(Domaines N, G, M / ''
SRP54M binds the SRP RNA 7S by electrostatic interactions.
''Interaction N-G => Domaine NG pour activité GTPase / Mention du domaine NG très similaire de SR alpha''
The residues responsible for this interaction are localized in <scene name='56/568022/Hsrp54m_rna_bindv3/1'>helices 4, 5, 6 and 7</scene>, but most particularly in helices 5 and 6.
''Domaine M avec partie rigide en c-term, partie flexible en n-term et grossièrement leurs fonctions)''
A large part of the top of SRP54M is therefore positively charged to bind with the negatively charged 7S RNA.
[[Image:Proteopedia charge.png|300px|center|thumb| The helices 4, 5, 6 and 7 surfaces are colored in blue on the spacefill model (left) of SRP54M in this picture. For more details see figure 7 of reference 1.]]


It was also shown that the SRP54M - SRP RNA interaction is highly dependent of the structural integrity of the <scene name='56/568022/Hsrp54m_core_and_h1v2/2'>Core structure</scene>.
Experiments conducted with shorter versions of the M-domain, lacking some aminoacids of the Core, showed a loss in SRP RNA binding activity.


SRP54 is composed of 3 domains: N terminal domain with 4 alpha-helices; G domain, central, corresponding to a GTPase activity and the M domain (Methionin Rich). M domain corresponds to 1qb2 protein.
Despite being charged positively and close to the regions interacting with SRP RNA, highly conserved <scene name='56/568022/Hsrp54m_arg402_and_arg405/1'>Arg402 and Arg405</scene> do not seem to interact with the negatively charged RNA.
This is explained by the fact that theses residues and their lateral chains are inside the core, and can not interact directly with the RNA. They are however important for the conformation of the core.


SRP54M is composed by 504 Amino Acids, forming 7 alpha helices (h1 to h7). The helices 2 to 7 from the core protein, stabilized by hydrophobic residues such as Met382 (invariant) and by hydrogen and salt bonds involving conserved amino acids: Glu386, Arg402, and Arg405. The helix 1 extends from the core protein.
==Related Structures==


The protein was difficult to crystalize, and it appears in the crystals dimeres of 1QB2 protein.
[[1e8o]], [[1e8s]] - hSRP9 + hSRP14 + 7S RNA – human   
1QB2 contains 2 binding domains:
:* Peptide signal binding domain
:* SRP RNA binding domain
: Signal peptide binding domain
This domain involves h2 to h4 to generate the hydrophobic groove witch will recognise and bind the nascent protein. It also involves a highly structured loop between h2 and h3: 17 amino acids (349 to 365) with the Met-Ile-Pro-Gly motif (351 to 354) and two phenylalanins (355 and 359). In addition of the loop and the three helices, h1 is located near the hydrophobic groove and is an equivalent of the signal peptide. This similarity explains the dimerization of 1QB2 in the crystal. Each h1 take place in the groove of the opposite monomer. Because of this interaction, we are able to suppose that h1 in vivo is involved in protection of the hydrophobic groove against solvents.


: SRP RNA binding domain
[[1ry1]] - hSRP9 + hSRP14 + hSRP19 + hSRP54 + 7S RNA


The RNA is linked to the 1QB2 protein by electrostatic potential. This interaction involves helices 5 and 6, but also some small parts of helices 4 and 7. This proposal is confirmed by experiments of directed site mutation (Gowda et al., 1998). It appears that some basics residues are required (Arg402 and Arg405) to maintain the core structure and the interaction with the RNA.
[[1jid]] – hSRP19 + RNA


[[3ktv]] - hSRP19 + RNA S domain


==Remarks:==
[[1mfq]] – hSRP19 + hSRP54 M domain + 7S RNA S domain
It is important to note the linkage between M and G subunits of SRP54, GTP hydrolysis in the G subunit could provide conformational changes and modify interactions, especially for electrostatic bonds with the signal peptide (released after hydrolysis). 


==References==


==Fonctions==
# Clemons, W M, Jr, K Gowda, S D Black, C Zwieb, and V Ramakrishnan. “Crystal Structure of the Conserved Subdomain of Human Protein SRP54M at 2.1 A Resolution: Evidence for the Mechanism of Signal Peptide Binding.” Journal of Molecular Biology 292, no. 3 (September 24, 1999): 697–705. doi:10.1006/jmbi.1999.3090.
# Halic, Mario, Thomas Becker, Martin R. Pool, Christian M. T. Spahn, Robert A. Grassucci, Joachim Frank, and Roland Beckmann. “Structure of the Signal Recognition Particle Interacting with the Elongation-Arrested Ribosome.” Nature 427, no. 6977 (February 26, 2004): 808–814. doi:10.1038/nature02342.
# Huang, Qiaojia, Sayran Abdulrahman, Jiaming Yin, and Christian Zwieb. “Systematic Site-Directed Mutagenesis of Human Protein SRP54: Interactions with Signal Recognition Particle RNA and Modes of Signal Peptide Recognition.” Biochemistry 41, no. 38 (September 24, 2002): 11362–11371.


''Lien avec la structure, explications des intéractions en fonction des structures etc ...
==Contributors==
''


<scene name='56/568022/Hsrp54m_dimer/1'>hSRP54M Dimer</scene>
Gregoire de Claviere and Hamelin Baptiste</StructureSection><!-- PLEASE DO NOT DELETE THIS TEMPLATE -->
<scene name='56/568022/Hsrp54m_h1_to_h7/1'>hSRP54M and its 7 alpha helixes</scene>
{{Sandbox_Reserved_ESBS}}
<scene name='56/568022/Hsrp54m_core_and_h1/1'>Core and H1</scene>
<!-- PLEASE ADD YOUR CONTENT BELOW HERE -->
<scene name='56/568022/Hsrp54m_conserved_residues/1'>Conserved residues</scene>

Latest revision as of 17:20, 9 January 2014

Human SRP54 M-domain

Dimer of human SRP54M, (PDB code 1qb2)

Drag the structure with the mouse to rotate
This Sandbox is Reserved from 06/12/2018, through 30/06/2019 for use in the course "Structural Biology" taught by Bruno Kieffer at the University of Strasbourg, ESBS. This reservation includes Sandbox Reserved 1480 through Sandbox Reserved 1543.
To get started:
  • Click the edit this page tab at the top. Save the page after each step, then edit it again.
  • Click the 3D button (when editing, above the wikitext box) to insert Jmol.
  • show the Scene authoring tools, create a molecular scene, and save it. Copy the green link into the page.
  • Add a description of your scene. Use the buttons above the wikitext box for bold, italics, links, headlines, etc.

More help: Help:Editing