Neurofibromin: Difference between revisions
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[https://en.wikipedia.org/wiki/HEAT_repeat Heat domains] are domains found in cytoplasmic proteins that consist of four different proteins: [https://proteopedia.org/wiki/index.php/Huntingtin Huntingtin], [https://proteopedia.org/wiki/index.php/Elongation_factor elongation factor 3], [https://proteopedia.org/wiki/index.php/Protein_phosphatase protein phosphatase 2A], and TOR1. <ref name= ''Yoshimura''>DOI: 10.1242/jcs.185710</ref>. The HEAT/ARM cores are made up of many alpha helices. The N-HEAT/ARM and C-HEAT/ARM are rigid, which makes them critical in the rearrangement of the Gap-related and Sec14-PH domains. In the <scene name='90/904326/Heat/1'>closed conformation</scene>, the HEAT/ARM domains cover the GRD, preventing the binding of Ras through steric hinderance. <ref>DOI 10.1038/s41594-021-00687-2</ref> | [https://en.wikipedia.org/wiki/HEAT_repeat Heat domains] are domains found in cytoplasmic proteins that consist of four different proteins: [https://proteopedia.org/wiki/index.php/Huntingtin Huntingtin], [https://proteopedia.org/wiki/index.php/Elongation_factor elongation factor 3], [https://proteopedia.org/wiki/index.php/Protein_phosphatase protein phosphatase 2A], and TOR1. <ref name= ''Yoshimura''>DOI: 10.1242/jcs.185710</ref>. The HEAT/ARM cores are made up of many alpha helices. The N-HEAT/ARM and C-HEAT/ARM are rigid, which makes them critical in the rearrangement of the Gap-related and Sec14-PH domains. In the <scene name='90/904326/Heat/1'>closed conformation</scene>, the HEAT/ARM domains cover the GRD, preventing the binding of Ras through steric hinderance. <ref>DOI 10.1038/s41594-021-00687-2</ref> | ||
==== GRD domain ==== | ==== GRD domain ==== | ||
The Gap-related domain, or <scene name='90/904326/Grd_highlighted/1'>GRD</scene>, is the catalytic domain of neurofibromin. It ranges from residues 1196 to 1547. <ref>DOI 10.1038/s41586-021-04024-x</ref> | The Gap-related domain, or <scene name='90/904326/Grd_highlighted/1'>GRD</scene>, is the catalytic domain of neurofibromin. It ranges from residues 1196 to 1547. <ref>DOI 10.1038/s41586-021-04024-x</ref> Its main catalytic mechanism is the hydrolysis of GTP-bound Ras into GDP-bound Ras, which converts Ras from its active form into its inactive form. The GRD provides an arginine residue, known as the arginine finger, to Ras. The location of the Gap-related domain is shifted between the <scene name='90/904326/Grdopen/1'>open conformation</scene> and closed conformations of neurofibromin. | ||
==== Sec-PH ==== | ==== Sec-PH ==== | ||
The <scene name='90/904326/Secph_highlighted/2'>Sec14-PH</scene> domain is the lipid-binding domain of neurofibromin, found in residues 1565 to 1835. <ref>DOI 10.1038/s41586-021-04024-x</ref> In the closed conformation of neurofibromin, the hydrophobic core is blocked by the Gap-related domain. The <scene name='90/904326/Secopen/1'>open conformation</scene> allows the hydrophobic core in the Sec cavity to be accessible and exposed. In neurofibromin, this cavity binds glycerophospholipids, which can induce conformational changes. <ref>DOI 10.1016/j.febslet.2012.06.006</ref> It is unclear if the Sec14-PH domain has a role in the RasGap activity of neurofibromin. | The <scene name='90/904326/Secph_highlighted/2'>Sec14-PH</scene> domain is the lipid-binding domain of neurofibromin, found in residues 1565 to 1835. <ref>DOI 10.1038/s41586-021-04024-x</ref> In the closed conformation of neurofibromin, the hydrophobic core is blocked by the Gap-related domain. The <scene name='90/904326/Secopen/1'>open conformation</scene> allows the hydrophobic core in the Sec cavity to be accessible and exposed. In neurofibromin, this cavity binds glycerophospholipids, which can induce conformational changes. <ref>DOI 10.1016/j.febslet.2012.06.006</ref> It is unclear if the Sec14-PH domain has a role in the RasGap activity of neurofibromin. | ||
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In the transition from the closed state to the open state, several of the domains of neurofibromin rotate to make the binding site of neurofibromin more accessible . This rotation is able to occur due to the rotation of three connective linkers, L1, L2, and L3. <scene name='90/904326/L1/1'>L1</scene> is located between an alpha helix 48 in N-HEAT and an alpha helix 49 in GRD. G1190 is a potential hinge point when L1 rotates and pushes the alpha helices outwards to move the Gap-related domain. <scene name='90/904326/L3/1'>L3</scene> is located between the Sec14-PH domain and the C-HEAT/ARM and aids in the movement of the Sec14-PH domain. The proximity of L1 and L3 has to be close to facilitate the rotation of the domains. <scene name='90/904326/L2/1'>L2</scene> starts at the last helix in the Gap-related domain and extends to the Sec14-PH domain. Its primary role is to move the Sec14-PH domain away from the GRD. Without these rotations, the membrane binding sites are occluded and inaccessible. <ref name= ''Naschberger''>PMID:34707296</ref> | In the transition from the closed state to the open state, several of the domains of neurofibromin rotate to make the binding site of neurofibromin more accessible . This rotation is able to occur due to the rotation of three connective linkers, L1, L2, and L3. <scene name='90/904326/L1/1'>L1</scene> is located between an alpha helix 48 in N-HEAT and an alpha helix 49 in GRD. G1190 is a potential hinge point when L1 rotates and pushes the alpha helices outwards to move the Gap-related domain. <scene name='90/904326/L3/1'>L3</scene> is located between the Sec14-PH domain and the C-HEAT/ARM and aids in the movement of the Sec14-PH domain. The proximity of L1 and L3 has to be close to facilitate the rotation of the domains. <scene name='90/904326/L2/1'>L2</scene> starts at the last helix in the Gap-related domain and extends to the Sec14-PH domain. Its primary role is to move the Sec14-PH domain away from the GRD. Without these rotations, the membrane binding sites are occluded and inaccessible. <ref name= ''Naschberger''>PMID:34707296</ref> | ||
====SPRED-1 Protein==== | ====SPRED-1 Protein==== | ||
The SPRED-1 protein <scene name='90/904325/Nf1_ras_spred1/2'>localizes neurofibromin</scene> to the cell membrane in to allow it to bind to the membrane oriented Ras protein<ref name= ''Naschberger''>PMID:34707296</ref>. <scene name='90/904325/Spred_1/2'>SPRED-1</scene> interacts with the N-terminal domain of NF to guide it to the membrane from the cytosol, where its C terminal domain will determine its target <ref name= ''Dunzendorfer-Matt''>PMID:27313208</ref>. | The SPRED-1 protein <scene name='90/904325/Nf1_ras_spred1/2'>localizes neurofibromin</scene> to the cell membrane in to allow it to bind to the membrane oriented Ras protein<ref name= ''Naschberger''>PMID:34707296</ref>. <scene name='90/904325/Spred_1/2'>SPRED-1</scene> interacts with the N-terminal domain of NF to guide it to the membrane from the cytosol, where its C terminal domain will determine its target <ref name= ''Dunzendorfer-Matt''>PMID:27313208</ref>. GAPex, a subdomain located in the GRD, has been found to help SPRED-1 bind to neurofibromin. <ref>DOI 10.1038/s41594-021-00687-2</ref> | ||
====Ras binding site==== | ====Ras binding site==== | ||
Revision as of 04:22, 21 April 2022
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