Sandbox207: Difference between revisions

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:There are interpromoter interactions between the subunits: three salt bridges are included and the 115-123 loop of one protomer and the 40-42 and 197-202 regions of adjacent protomers are involved. Moreover, the subunits are capable to rotate by 15-20° around an axis parallel to the central alpha-helix.  
:There are interpromoter interactions between the subunits: three salt bridges are included and the 115-123 loop of one protomer and the 40-42 and 197-202 regions of adjacent protomers are involved. Moreover, the subunits are capable to rotate by 15-20° around an axis parallel to the central alpha-helix.  
: Thanks to this rotation, the alpha-helices can lie closer to the axis of the pentamere, therefore bringin the bound Ca2+ further away from it. On each subunit, we can find phosphocholine bound in a shallow surface pocket. With the help of phosphate groups and Glu81 via the choline moiety, the phosphocholine can interact with the two protein-bound ions.
: Thanks to this rotation, the alpha-helices can lie closer to the axis of the pentamere, therefore bringin the bound Ca2+ further away from it. On each subunit, we can find phosphocholine bound in a shallow surface pocket. With the help of phosphate groups and Glu81 via the choline moiety, the phosphocholine can interact with the two protein-bound ions.
:Moreover, the structure of CRP is different in diseased patients. Indeed, in some pathological conditions, the Human CRP is glycosylated. Analysis of the structure showed the systematic absence of two peptide fragments, one at the N-terminus (loop 1-6) in all patients, the other near the C-terminus (loop 189-191) in patients with osteogenic sarcoma and Cushing's syndrome. In an undiseased individual, glycosylation sites are inacessible due to the presence of the N-terminal. The loss of these two fragments exposed two potential glycosylation sites on a cleft door. The functional areas of the pentraxin structure remains the same since the Ca2+ and phosphocholine sites are on the opposite site of the pentraxin molecule.


http://biology.kenyon.edu/BMB/Chime2/2005/Jenny/FRAMES/
http://biology.kenyon.edu/BMB/Chime2/2005/Jenny/FRAMES/