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===Transmembrane Region===
===Transmembrane Region===


<div style="text-align: left">The IgM BCR is anchored to [https://en.wikipedia.org/wiki/B_cell B-cell] membranes through the <scene name='95/952714/Integral_region/15'>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). The extracellualr region is primarily composed of [https://proteopedia.org/wiki/index.php/Beta_sheet β-sheets]while the integral region is composed of [https://proteopedia.org/wiki/index.php/Alpha_helix#:~:text=An%20alpha%20helix%20is%20a,can%20be%20of%20arbitrary%20length. α-helices]. 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'>glycosylation</scene> via [https://en.wikipedia.org/wiki/N-linked_glycosylation N-linked asparagine glycosyl groups] <b><span class="text-lightgreen">(NAGs)</span></b> 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 facilitate this process. The NAG groups are believed to be essential for the recruitment of [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 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"/>
<div style="text-align: left">The IgM BCR is anchored to [https://en.wikipedia.org/wiki/B_cell B-cell] membranes through the <scene name='95/952714/Integral_region/15'>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). The extracellular region is primarily composed of [https://proteopedia.org/wiki/index.php/Beta_sheet β-sheets]while the integral region is composed of [https://proteopedia.org/wiki/index.php/Alpha_helix#:~:text=An%20alpha%20helix%20is%20a,can%20be%20of%20arbitrary%20length. α-helices]. 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 via 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'>glycosylation</scene> via [https://en.wikipedia.org/wiki/N-linked_glycosylation N-linked asparagine glycosyl groups] <b><span class="text-lightgreen">(NAGs)</span></b> 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 facilitate this process. The NAG groups are believed to be essential for the recruitment of [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 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 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; this allows for interactions with the hydrophobic tails in the [https://en.wikipedia.org/wiki/Lipid_bilayer phospholipid bilayer]. The four helices (Figure 2) are intertwined and primarily held together through interactions between the <scene name='95/952714/Integral_helices_2/3'>hydrophobic side chains</scene>; however, a a few polar residues are included which allow for additional interactions with the 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 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; this allows for interactions with the hydrophobic tails in the [https://en.wikipedia.org/wiki/Lipid_bilayer phospholipid bilayer]. The four helices (Figure 2) are intertwined and primarily held together through interactions between the <scene name='95/952714/Integral_helices_2/3'>hydrophobic side chains</scene>; however, a a few polar residues are included which allow for additional interactions with the 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"/>  
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===Fc Region===
===Fc Region===


The constant region of IgM is made up of the two <scene name='95/952714/Heavy_chain/1'>heavy chains</scene>. These heavy chains form a bridge connecting the FAB region or variable region to the transmembrane region (Figure 1). They also act as a wire that the variable region can send a signal through to the transmembrane region as a mechanical change.
The constant region of IgM is made up of the two <scene name='95/952714/Heavy_chain/1'>heavy chains</scene>. These heavy chains form a bridge connecting the Fab region or variable region to the transmembrane region (Figure 1). They also act as a wire that the variable region can send a signal through to the transmembrane region as a mechanical change.


<scene name='95/952715/Extracellular_transmembrane_v2/10'>Extracellular transmembrane interactions</scene> help hold the heavy chains and <b><span class="text-brown">Igα</span></b>/<b><span class="text-orange">Igβ</span></b> chains together in the extracellular portion of the transmembrane region. Because a conformational change occurs throughout the entirety of the IgM-BCR complex, the Fc region must be able to tolerate the contortion of the structure as the antigen binds. In constant region two, which is located at the start of the Fc region, '''{{Font color|violet|heavy chain A}}''' and <b><span class="text-blue">heavy chain B</span></b> make a <scene name='95/952713/Disulfides/5'>disulfide bridge</scene> to stabilize the IgM-BCR and drive downstream signaling.  
<scene name='95/952715/Extracellular_transmembrane_v2/10'>Extracellular transmembrane interactions</scene> help hold the heavy chains and <b><span class="text-brown">Igα</span></b>/<b><span class="text-orange">Igβ</span></b> chains together in the extracellular portion of the transmembrane region. Because a conformational change occurs throughout the entirety of the IgM-BCR complex, the Fc region must be able to tolerate the contortion of the structure as the antigen binds. In constant region two, which is located at the start of the Fc region, '''{{Font color|violet|heavy chain A}}''' and <b><span class="text-blue">heavy chain B</span></b> make a <scene name='95/952713/Disulfides/5'>disulfide bridge</scene> to stabilize the IgM-BCR and drive downstream signaling.  


To maximize the Fc region’s signal transduction efficiency and Van der Waals contacts, constant region two of '''{{Font color|violet|heavy chain A}}''' makes an asymmetrical association with constant region three of <b><span class="text-blue">heavy chain B</span></b> to create a <scene name='95/952713/Trans_heavy/7'>heavy chain interface</scene>. More specifically, Arg243 and Arg251 residues from '''{{Font color|violet|heavy chain A}}''' donate three hydrogen bonds to Leu433, Thr431, and Asp376 residues on <b><span class="text-blue">heavy chain B</span></b>. Furthermore, Leu313 of heavy chain A accepts a hydrogen bond from Thr429 on heavy chain B. <ref name="Ma">PMID:35981028</ref>  
To maximize the Fc region’s signal transduction efficiency and [https://en.wikipedia.org/wiki/Van_der_Waals_force#:~:text=If%20no%20other%20force%20is,between%20the%20atoms'%20electron%20clouds. Van der Waals contacts], constant region two of '''{{Font color|violet|heavy chain A}}''' makes an asymmetrical association with constant region three of <b><span class="text-blue">heavy chain B</span></b> to create a <scene name='95/952713/Trans_heavy/7'>heavy chain interface</scene>. More specifically, Arg243 and Arg251 residues from '''{{Font color|violet|heavy chain A}}''' donate three hydrogen bonds to Leu433, Thr431, and Asp376 residues on <b><span class="text-blue">heavy chain B</span></b>. Furthermore, Leu313 of heavy chain A accepts a hydrogen bond from Thr429 on heavy chain B. <ref name="Ma">PMID:35981028</ref>  


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Latest revision as of 00:26, 21 April 2023

Human B-cell Antigen Receptor: IgM BCR

IgM B-Cell Receptor (7xq8) colored by chain. Brown=Igα, orange=Igβ, pink=heavy chain A, blue=heavy chain B, purple=light chain A, green=light chain B

Drag the structure with the mouse to rotate

References


Student Contributors

DeTonyeá Dickson, Allison Goss, Jackson Payton