Sandbox Reserved 1777: Difference between revisions

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[[Image:Screen Shot 2023-04-10 at 4.34.56 PM.jpeg|600px|thumb|<font size="2"><div style="text-align: center;">'''Figure 3'''. Schematic representation of RAF activation. PP1C removes an inhibitory phosphate group from RAF, which results in RAF activation and activation of the RAF/MAPK signaling cascade. </div></font>]]
[[Image:Screen Shot 2023-04-10 at 4.34.56 PM.jpeg|600px|thumb|<font size="2"><div style="text-align: center;">'''Figure 3'''. Schematic representation of RAF activation. PP1C removes an inhibitory phosphate group from RAF, which results in RAF activation and activation of the RAF/MAPK signaling cascade. </div></font>]]


Once the SMP complex comes together, it plays a key role in regulating the activation of the RAF/MAPK pathway. PP1C, enhanced through interactions with SHOC2 and MRAS, removes a phosphate group from serine residue 259 (also known as NTpS) of RAF. The removal of the phosphate group triggers activation of RAF, a serine/threonine kinase, which leads to the phosphorylation and activation of MAPK. This causes the activation of downstream proteins ERK1 and ERK2, which are responsible for activating nuclear transcription factors such as Elk-1, c-Ets1, c-Ets2, and MNK1, which result in the transcription of genes that code for proteins which promote cell proliferation and differentiation.  <Ref name='Lavoie'>Lavoie, H., Therrien, M. Structural keys unlock RAS–MAPK cellular signaling pathway. Nature 609, 248-249 (2022). doi: 10.1038/d41586-022-02189-7. [https://doi.org/10.1038/d41586-022-02189-7. DOI:10.1038/d41586-022-02189-7]. </Ref>.  
Once the SMP complex comes together, it plays a key role in regulating the activation of the RAF/MAPK pathway. PP1C, enhanced through interactions with SHOC2 and MRAS, removes a phosphate group from serine residue 259 (also known as NTpS) of RAF. The removal of the phosphate group triggers activation of RAF, a serine/threonine kinase, which leads to the phosphorylation and activation of MAPK <ref name="Molina" />. This causes the activation of downstream proteins ERK1 and ERK2, which are responsible for activating nuclear transcription factors such as Elk-1, c-Ets1, c-Ets2, and MNK1, which result in the transcription of genes that code for proteins which promote cell proliferation and differentiation.  <Ref name='Lavoie'>Lavoie, H., Therrien, M. Structural keys unlock RAS–MAPK cellular signaling pathway. Nature 609, 248-249 (2022). doi: 10.1038/d41586-022-02189-7. [https://doi.org/10.1038/d41586-022-02189-7. DOI:10.1038/d41586-022-02189-7]. </Ref>.  


=Implications=
=Implications=

Revision as of 04:04, 17 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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SHOC2-PP1C-MRAS (PDB entry 7upi)

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