Sandbox Reserved 1777: Difference between revisions

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{{Template:CH462_Biochemistry_II_2023}}<!-- PLEASE ADD YOUR CONTENT BELOW HERE -->
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<StructureSection load='7pui' size='350' side='right' caption='SHOC2-PP1C-MRAS (PDB entry [[7upi]])' scene='95/952704/Smpcolored/1'>
<StructureSection load='7pui' size='350' side='right' caption='SHOC2-PP1C-MRAS (SHOC2(blue) PP1C(orange) MRAS (green)) (PDB entry [[7upi]])' scene='95/952704/Smpcolored/1'>
=Introduction=
=Introduction=
SHOC2-PP1C-MRAS is a regulatory protein and enzyme complex that is involved in regulating cell proliferation and division <Ref name='Astrain'>Bernal Astrain G, Nikolova M, Smith MJ. Functional diversity in the RAS subfamily of small GTPases. Biochem Soc Trans. 2022 Apr 29;50(2):921-933. doi: 10.1042/BST20211166. [https://doi.org/10.1042/BST20211166. DOI:10.1042/BST20211166] </Ref>. This complex regulates the vast RAS-MAPK signaling pathway through control of the initial RAF MAPKKK. This pathway is initially activated by the binding of a growth factor to a [https://www.mechanobio.info/what-is-mechanosignaling/what-are-small-gtpases/what-are-ras-gtpases/. GTPase] which initiates intracellular RAS activation, such as
SHOC2-PP1C-MRAS is a regulatory protein and enzyme complex that is involved in regulating cell proliferation and division <Ref name='Astrain'>Bernal Astrain G, Nikolova M, Smith MJ. Functional diversity in the RAS subfamily of small GTPases. Biochem Soc Trans. 2022 Apr 29;50(2):921-933. doi: 10.1042/BST20211166. [https://doi.org/10.1042/BST20211166. DOI:10.1042/BST20211166] </Ref>. This complex regulates the vast RAS-MAPK signaling pathway through control of the initial RAF MAPKKK. This pathway is initially activated by the binding of a growth factor to a [https://www.mechanobio.info/what-is-mechanosignaling/what-are-small-gtpases/what-are-ras-gtpases/. GTPase] which initiates intracellular RAS activation, such as
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=Structure=
=Structure=
==Overview==
==Overview==
 
[[Image:SHOC2-PP1C-MRAS Surface.JPG|300px|right|thumb|<font size="2"><div style="text-align: center;">'''Figure 2'''. Surface representation of SHOC2-PP1C-MRAS ([https://www.rcsb.org/structure/7UPI PDB 7upi]). SHOC2 (blue), PP1C (orange) and MRAS (green).  </div></font>]]
The complex combines three separate proteins, SHOC2, PP1C, and MRAS, to form the active protein (SMP complex), as seen in Figure 2<Ref name='Hauseman'>Hauseman, Z.J., Fodor, M., Dhembi, A. et al. Structure of the MRAS–SHOC2–PP1C phosphatase complex. Nature 609, 416–423 (2022). doi: 10.1038/s41586-022-05086-1. [https://doi.org/10.1038/s41586-022-05086-1. DOI:10.1038/s41586-022-05086-1]. </Ref>. In complex, each of these proteins are responsible for a different role. MRAS is the "on and off" switch; when MRAS is activated from binding GTP, it recruits SHOC2 and PP1C for complex formation. In complex, PP1C is tasked with being the catalytic domain and removing a phosphate from RAF. The last piece of the complex is SHOC2, which is responsible for holding and stabilizing MRAS and PP1C <Ref name= 'Hahn'> Kwon, J. J., & Hahn, W. C. A Leucine-Rich Repeat Protein Provides a SHOC2 the RAS Circuit: a Structure-Function Perspective. Molecular and cellular biology, 41(4), e00627-20 (2021). doi:10.1128/MCB.00627-20. [http://doi.org/10.1128/MCB.00627-20. DOI: 10.1128/MCB.00627-20]. </Ref>. The SMP complex was determined via cryo-electron microscopy as well as x-ray diffraction. The overall architecture has PP1C and MRAS bound within the concave surface of SHOC2, leaving the catalytic site of PP1C and the GTP binding cleft in MRAS exposed.
The complex combines three separate proteins, SHOC2, PP1C, and MRAS, to form the active protein (SMP complex), as seen in Figure 2<Ref name='Hauseman'>Hauseman, Z.J., Fodor, M., Dhembi, A. et al. Structure of the MRAS–SHOC2–PP1C phosphatase complex. Nature 609, 416–423 (2022). doi: 10.1038/s41586-022-05086-1. [https://doi.org/10.1038/s41586-022-05086-1. DOI:10.1038/s41586-022-05086-1]. </Ref>. In complex, each of these proteins are responsible for a different role. MRAS is the "on and off" switch; when MRAS is activated from binding GTP, it recruits SHOC2 and PP1C for complex formation. In complex, PP1C is tasked with being the catalytic domain and removing a phosphate from RAF. The last piece of the complex is SHOC2, which is responsible for holding and stabilizing MRAS and PP1C <Ref name= 'Hahn'> Kwon, J. J., & Hahn, W. C. A Leucine-Rich Repeat Protein Provides a SHOC2 the RAS Circuit: a Structure-Function Perspective. Molecular and cellular biology, 41(4), e00627-20 (2021). doi:10.1128/MCB.00627-20. [http://doi.org/10.1128/MCB.00627-20. DOI: 10.1128/MCB.00627-20]. </Ref>. The SMP complex was determined via cryo-electron microscopy as well as x-ray diffraction. The overall architecture has PP1C and MRAS bound within the concave surface of SHOC2, leaving the catalytic site of PP1C and the GTP binding cleft in MRAS exposed.


==SHOC2==
==SHOC2==
[[Image:SHOC2-PP1C-MRAS Surface.JPG|300px|right|thumb|<font size="2"><div style="text-align: center;">'''Figure 2'''. Surface representation of SHOC2-PP1C-MRAS ([https://www.rcsb.org/structure/7UPI PDB 7upi]). SHOC2 (blue), PP1C (orange) and MRAS (green).  </div></font>]]
SHOC2 is a scaffolding protein which acts as a cradle to bind PP1C and MRAS <ref name="Hauseman" />, serving as an aggregation point to enable reciprocal interactions between these three signaling proteins. <scene name='95/952705/Shoc2_structure/2'>SHOC2</scene> is a leucine rich repeat ([https://en.wikipedia.org/wiki/Leucine-rich_repeat LRR]) protein consisting of 20 consecutive <scene name='95/952706/Shoc2_structure/9'>LRR motifs</scene> containing <scene name='95/952705/Shoc2_structure/3'>leucine residues</scene>. LRR motifs form an extended β-sheet on the inner concave surface of SHOC2 with α-helices facing outward to facilitate binding of the protein complex. These LRR motifs result in a largely hydrophobic core within the concave region. <ref name="Hahn" />.
SHOC2 is a scaffolding protein which acts as a cradle to bind PP1C and MRAS <ref name="Hauseman" />, serving as an aggregation point to enable reciprocal interactions between these three signaling proteins. <scene name='95/952705/Shoc2_structure/2'>SHOC2</scene> is a leucine rich repeat ([https://en.wikipedia.org/wiki/Leucine-rich_repeat LRR]) protein consisting of 20 consecutive <scene name='95/952706/Shoc2_structure/9'>LRR motifs</scene> containing <scene name='95/952705/Shoc2_structure/3'>leucine residues</scene>. LRR motifs form an extended β-sheet on the inner concave surface of SHOC2 with α-helices facing outward to facilitate binding of the protein complex. These LRR motifs result in a largely hydrophobic core within the concave region. <ref name="Hahn" />.



Revision as of 18:17, 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 (SHOC2(blue) PP1C(orange) MRAS (green)) (PDB entry 7upi)

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