Sandbox Reserved 1786: Difference between revisions
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The IgM BCR is anchored to [https://en.wikipedia.org/wiki/B_cell B-cell] membranes through the <scene name='95/952714/Integral_region/14'>transmembrane region</scene> which is broken up into both extracellular and integral domains which sit on top of or span through the membrane, respectively (Figure 1). IgM BCR assembly requires dimerization of the <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> subunits which embed within the B-cell membrane. <ref name="Tolar"/> The <scene name='95/952714/Ig_alpha_beta/5'>Igα and Igβ heterodimer</scene> dimerizes within the extracellular region with a <scene name='95/952714/Extracellular_disulfide_bridge/6'>disulfide bridge</scene>. Additional dimerization occurs within the integral region via a hydrogen bond; the residues involved have not been confirmed. Although the mechanism of disulfide bridge formation is still unknown, <scene name='95/952714/Extracellular_glycosylation/2'>extracellular glycosylation</scene> via <b><span class="text-lightgreen">N-linked asparagine glycosyl groups</span></b> (NAGs) on various residues in the extracellular region of both the <b><span class="text-brown">Igα</span></b> and and <b><span class="text-orange">Igβ</span></b> chains is hypothesized to help facilitate this process by recruiting [https://en.wikipedia.org/wiki/Chaperone_(protein) Chaperone proteins] to optimize the folding process. <ref name="Daniels">PMID:12535523</ref> Past studies with human and viral proteins have shown that the presence of NAGs not only facilitate the rapid formation of disulfide bridges, but also ensure correct location. <ref name="Bakshi">PMID:35409101</ref>, <ref name="Mirazimi">PMID:9557673</ref> The recruited chaperone proteins will typically remain bound to the <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> subunits until dimerization occurs. <ref name="Dylke"/> | The IgM BCR is anchored to [https://en.wikipedia.org/wiki/B_cell B-cell] membranes through the <scene name='95/952714/Integral_region/14'>transmembrane region</scene> which is broken up into both extracellular and integral domains which sit on top of or span through the membrane, respectively (Figure 1). IgM BCR assembly requires dimerization of the <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> subunits which embed within the B-cell membrane. <ref name="Tolar"/> The <scene name='95/952714/Ig_alpha_beta/5'>Igα and Igβ heterodimer</scene> dimerizes within the extracellular region with a <scene name='95/952714/Extracellular_disulfide_bridge/6'>disulfide bridge</scene>. Additional dimerization occurs within the integral region via a hydrogen bond; the residues involved have not been confirmed. Although the mechanism of disulfide bridge formation is still unknown, <scene name='95/952714/Extracellular_glycosylation/2'>extracellular glycosylation</scene> via <b><span class="text-lightgreen">N-linked asparagine glycosyl groups</span></b> (NAGs) on various residues in the extracellular region of both the <b><span class="text-brown">Igα</span></b> and and <b><span class="text-orange">Igβ</span></b> chains is hypothesized to help facilitate this process by recruiting [https://en.wikipedia.org/wiki/Chaperone_(protein) Chaperone proteins] to optimize the folding process. <ref name="Daniels">PMID:12535523</ref> Past studies with human and viral proteins have shown that the presence of NAGs not only facilitate the rapid formation of disulfide bridges, but also ensure correct location. <ref name="Bakshi">PMID:35409101</ref>, <ref name="Mirazimi">PMID:9557673</ref> The recruited chaperone proteins will typically remain bound to the <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> subunits until dimerization occurs. <ref name="Dylke"/> | ||
After <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> dimerization, the transmembrane helices of the heavy chains can embed within the B-cell membrane and will intertwine with the <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> chains. <ref name="Tolar"/> The side chains of this <scene name='95/952714/Integral_helices_2/2'>4-pass integral helix structure</scene> made up by the <b><span class="text-brown">alpha</span></b>, <b><span class="text-orange">beta</span></b>, and heavy chains ('''{{Font color|violet|A}}'''/<b><span class="text-blue">B</span></b>) are primarily hydrophobic side chains that allow for interactions with the hydrophobic tails in the [https://en.wikipedia.org/wiki/Lipid_bilayer phospholipid bilayer]. The four helices (Figure 2) are primarily held together through hydrophobic interactions; however, a a few polar residues are included on the interior of the helix structure which interact with a few polar residues on the <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> chains. <ref name="Dylke"/> | After <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> dimerization, the transmembrane helices of the heavy chains can embed within the B-cell membrane and will intertwine with the <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> chains. <ref name="Tolar"/> The side chains of this <scene name='95/952714/Integral_helices_2/2'>4-pass integral helix structure</scene>, made up by the <b><span class="text-brown">alpha</span></b>, <b><span class="text-orange">beta</span></b>, and heavy chains ('''{{Font color|violet|A}}'''/<b><span class="text-blue">B</span></b>), are primarily hydrophobic side chains that allow for interactions with the hydrophobic tails in the [https://en.wikipedia.org/wiki/Lipid_bilayer phospholipid bilayer]. The four helices (Figure 2) are primarily held together through hydrophobic interactions; however, a a few polar residues are included on the interior of the helix structure which interact with a few polar residues on the <b><span class="text-brown">Igα</span></b> and <b><span class="text-orange">Igβ</span></b> chains. <ref name="Dylke"/> | ||
[[Image:Integral_helix_figure.png|400 px|left|thumb|'''Figure 2. 4-pass integral helix.''' Pymol image of the integral helices in IgM BCR (PDB:7xq8) rotated on the x and y axes. Side chains are shown as sticks. Brown=Ig alpha, orange=Ig beta, pink=heavy chain A, blue=heavy chain B.]] | [[Image:Integral_helix_figure.png|400 px|left|thumb|'''Figure 2. 4-pass integral helix.''' Pymol image of the integral helices in IgM BCR (PDB:7xq8) rotated on the x and y axes. Side chains are shown as sticks. Brown=Ig alpha, orange=Ig beta, pink=heavy chain A, blue=heavy chain B.]] | ||
Revision as of 17:49, 14 April 2023
Human B-cell Antigen Receptor: IgM BCR
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References
Student Contributors
DeTonyeá Dickson, Allison Goss, Jackson Payton



