Neurofibromin: Difference between revisions
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===Domains=== | ===Domains=== | ||
<scene name='90/904326/Overview_of_domains/1'>Neurofibromin</scene> consists of multiple domains. (Figure 1). A few notable ones are the N-HEAT/ARM, GRD, Sec14-PH, and C-HEAT/ARM. The two most characterized domains of neurofibromin are the Sec14-PH and GRD domains. Each of the protomers of neurofibromin contains these domains. | <scene name='90/904326/Overview_of_domains/1'>Neurofibromin</scene> consists of multiple domains. (Figure 1). A few notable ones are the N-HEAT/ARM, GRD, Sec14-PH, and C-HEAT/ARM. The two most characterized domains of neurofibromin are the Sec14-PH and GRD domains. Each of the protomers of neurofibromin contains these domains. | ||
[[Image:domainsneurofibromin.png|500 px|thumb|Figure 1. Domains of Neurofibromin.]] | [[Image:domainsneurofibromin.png|500 px|thumb|Figure 1. Representation of the Domains of Neurofibromin. Shown are the most characterized domains, Gap-related and Sec14-PH, connected to the N and C-HEAT/ARMs. Each of the domains of Neurofibromin can be found in both of the monomers.]] | ||
====N-HEAT/ARM and C-HEAT/ARM==== | ====N-HEAT/ARM and C-HEAT/ARM==== | ||
[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 [https://en.wikipedia.org/wiki/HEAT_repeat HEAT] / [https://en.wikipedia.org/wiki/Armadillo_repeat 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 name= "Lupton">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 [https://en.wikipedia.org/wiki/HEAT_repeat HEAT] / [https://en.wikipedia.org/wiki/Armadillo_repeat 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 name= "Lupton">DOI 10.1038/s41594-021-00687-2</ref> | ||
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=====Closed Conformation===== | =====Closed Conformation===== | ||
The <scene name='90/904326/Overview_of_domains/1'>closed state</scene> of neurofibromin has both protomers in a closed conformation, which inhibits the binding of Ras to the GRD of neurofibromin due to the HEAT/ARM core blocking the GRD. A metal binding site between the N-HEAT/ARM domain and the GRD-Sec14-PH linker stabilize the closed conformation. This site is coordinated by three residues, <scene name='90/904325/Triad/1'>C1032, H1558, and H1576,</scene>. (Figure 2). This binding site is preferential for zinc- zinc has been found to stabilize the closed conformation of neurofibromin. In the absence of zinc, neurofibromin is in the open conformation. <ref name="Naschberger"/> | The <scene name='90/904326/Overview_of_domains/1'>closed state</scene> of neurofibromin has both protomers in a closed conformation, which inhibits the binding of Ras to the GRD of neurofibromin due to the HEAT/ARM core blocking the GRD. A metal binding site between the N-HEAT/ARM domain and the GRD-Sec14-PH linker stabilize the closed conformation. This site is coordinated by three residues, <scene name='90/904325/Triad/1'>C1032, H1558, and H1576,</scene>. (Figure 2). This binding site is preferential for zinc- zinc has been found to stabilize the closed conformation of neurofibromin. In the absence of zinc, neurofibromin is in the open conformation. <ref name="Naschberger"/> | ||
[[Image:greenTriad.png|200 px|thumb|Figure 2. Triad of Residues that keep Neurofibromin in the Closed Conformation.]] | [[Image:greenTriad.png|200 px|thumb|Figure 2. Triad of Residues that keep Neurofibromin in the Closed Conformation. The residues shown are C1032, H1558, and H1576. In the center of those residues is a zinc ion, shown in grey.]] | ||
=====Open Conformation===== | =====Open Conformation===== | ||
The <scene name='90/904326/Open/1'>open state</scene> of neurofibromin has one protomer in a open conformation and the other in a closed conformation. The protomer in the open conformation allows for the binding of Ras because of reorientation of the GRD and Sec14-PH domains. In the open conformation, the metal binding site found in the closed conformation is lost due to separation of the N-HEAT/ARM and the cysteine residue from the histidine residues founds in the GRD-Sec14-PH linker. The loss of the metal binding site in one of the monomers allows for Ras to bind to the Gap-related domain due to the loss of steric hinderance. | The <scene name='90/904326/Open/1'>open state</scene> of neurofibromin has one protomer in a open conformation and the other in a closed conformation. The protomer in the open conformation allows for the binding of Ras because of reorientation of the GRD and Sec14-PH domains. In the open conformation, the metal binding site found in the closed conformation is lost due to separation of the N-HEAT/ARM and the cysteine residue from the histidine residues founds in the GRD-Sec14-PH linker. The loss of the metal binding site in one of the monomers allows for Ras to bind to the Gap-related domain due to the loss of steric hinderance. | ||
Revision as of 12:56, 21 April 2022
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References
Proteopedia Page Contributors and Editors (what is this?)
Jordyn K. Lenard, Ryan D. Adkins, OCA, Michal Harel, Jaime Prilusky


