Sandbox Reserved 1771: Difference between revisions

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Many transmembrane interactions can be found within a IgM BCR. The <scene name='95/952699/Transmembrane_region/1'>α and β subunits</scene> have numerous interactions that keep them associated with each other. Residue interactions found within the α-β subunits, such as hydrogen bonds and ionic interactions can be found <scene name='95/952699/Overview_hbonds_fixed/2'>here</scene> (highlighted in green). At cellular pH, charged residues found in the transmembrane region strengthen the overall interaction through hydrogen bonds and ionic interactions. For example, <scene name='95/952699/N155_e138_hbonds_fixed/2'>a hydrogen bond</scene> between residues N155 and E138, along with numerous other hydrogen bonds, works to stabilize the α-β chain interactions. Further down the chains, <scene name='95/952699/T166_e148_hbonds_fixed/3'>hydrogen bonding</scene> between residues T166 and E148 work to keep the α-β subunit associated with each other. Overall, these hydrogen bonds and ion interactions work to maintain the association of the α-β chains, which allows the BCR to activate an immune response.
Many transmembrane interactions can be found within a IgM BCR. The <scene name='95/952699/Transmembrane_region/1'>α and β subunits</scene> have numerous interactions that keep them associated with each other. Residue interactions found within the α-β subunits, such as hydrogen bonds and ionic interactions can be found <scene name='95/952699/Overview_hbonds_fixed/2'>here</scene> (highlighted in green). At cellular pH, charged residues found in the transmembrane region strengthen the overall interaction through hydrogen bonds and ionic interactions. For example, <scene name='95/952699/N155_e138_hbonds_fixed/2'>a hydrogen bond</scene> between residues N155 and E138, along with numerous other hydrogen bonds, works to stabilize the α-β chain interactions. Further down the chains, <scene name='95/952699/T166_e148_hbonds_fixed/3'>hydrogen bonding</scene> between residues T166 and E148 work to keep the α-β subunit associated with each other. Overall, these hydrogen bonds and ion interactions work to maintain the association of the α-β chains, which allows the BCR to activate an immune response.


==Summary==
==Structure Summary==
The BCR complex is anchored to the membrane through its transmembrane region and its interactions. Upon antigen binding, the BCR will undergo a unique structural conformation change that will allow transmission of the signal through the extracellular regions and the cell membrane to elicit an intracellular response. Interaction with a foreign antigen occurs at hyper-variable loop regions and causes the separation of Fab fragments (citation). This structural, conformational change will be transmitted through the heavy chains to the interface of heavy chain 1 and the Iga/ Igb complex. A shifting of interactions and overall conformational change due to binding will then carry the signal through the Iga/ Igb complex through the membrane and into the cell. This will trigger intracellular signaling that will elicit subsequent production of free antibodies to recognize and target the foreign antigen. Therefore, any improper functioning of one of these regions will lead to improper functioning of the BCR and lessen the immune response as a whole.
 


==Medical Relevancy==
==Medical Relevancy==

Revision as of 23:19, 16 April 2023

This Sandbox is Reserved from February 27 through August 31, 2023 for use in the course CH462 Biochemistry II taught by R. Jeremy Johnson at the Butler University, Indianapolis, USA. This reservation includes Sandbox Reserved 1765 through Sandbox Reserved 1795.
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IgM B-cell Receptor

Human mIgM B Cell Receptor. Heavy chain 1 is represented in blue, heavy chain 2 in magenta, light chain 1 in green, and light chain 2 in yellow. Iga is shown in red while Igb is in orange. 7XQ8

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References


Student Contributors

  • Joel Wadas
  • Olivia Gooch
  • Delaney Lupoi