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The dimetal center is essential to the catalytic activity, as previously demonstrated in the mechanism above. The <scene name='87/877627/Zn_with_measurement/3'>zinc</scene> ions are 6.4 angstroms apart <ref name="Bai">PMID:26098370</ref>
The dimetal center is essential to the catalytic activity, as previously demonstrated in the mechanism above. The <scene name='87/877627/Zn_with_measurement/3'>zinc</scene> ions are 6.4 angstroms apart <ref name="Bai">PMID:26098370</ref>
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The ions sit above the kink created by C9 and C10 of the substrate within the active site. The ions are held into the active site through the <scene name='87/877627/His_box_w_o_water/2'>His box</scene> (Kohtaro). The nine coordinating His residues stabilize the ions into the active site forming a non-heme prosthetic group (Kohtaro). The His box is highly conserved among the isoforms of SCD (Shen).The <scene name='87/877627/Zn2/3'>ion</scene> closest to C10 of the substrate is 4.7 angstroms away from this carbon (Yonghong). This ion is coordinated by five histidine residues. The <scene name='87/877627/Zn1/3'>ion</scene> closest to C9 of the substrate is 5.2 angstroms away from this carbon (Yonghong). This ion is coordinated with four histidine residues and one water molecule. The <scene name='87/877627/Zn_and_water_round_2/4'>water</scene> is in coordination to the zinc ion closest to it. It occupies the fifth <scene name='87/877627/His_box_w_o_labels/3'>coordination site</scene>.
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The ions sit above the kink created by C9 and C10 of the substrate within the active site. The ions are held into the active site through the <scene name='87/877627/His_box_w_o_water/2'>His box</scene> <ref name="Kikuchi">PMID: 31838050</ref> . The nine coordinating His residues stabilize the ions into the active site forming a non-heme prosthetic group <ref name="Kikuchi">PMID: 31838050</ref> . The His box is highly conserved among the isoforms of SCD <ref name="Shen">PMID:32470559</ref> .
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The <scene name='87/877627/Zn2/3'>ion</scene> closest to C10 of the substrate is 4.7 angstroms away from this carbon <ref name="Bai">PMID:26098370</ref> . This ion is coordinated by five histidine residues. The <scene name='87/877627/Zn1/3'>ion</scene> closest to C9 of the substrate is 5.2 angstroms away from this carbon <ref name="Bai">PMID:26098370</ref> This ion is coordinated with four histidine residues and one water molecule. The <scene name='87/877627/Zn_and_water_round_2/4'>water</scene> is in coordination to the zinc ion closest to it. It occupies the fifth <scene name='87/877627/His_box_w_o_labels/3'>coordination site</scene>.
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Residues around the periphery hydrogen bond to the His box to stabilize it. These residues include <scene name='87/877627/D165_correct_one/5'>D165</scene> <scene name='87/877627/E291_correct_one3'>E291</scene> and <scene name='87/877627/E161_correct_one/3'>E161 </scene> (Yonghong). Another residue that stabilizes the active site is <scene name='87/877627/N261_correct_one/4'>N261</scene>. This residue hydrogen bonds to the water molecule (Yonghong).
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Residues around the periphery hydrogen bond to the His box to stabilize it. These residues include <scene name='87/877627/D165_correct_one/5'>D165</scene> <scene name='87/877627/E291_correct_one3'>E291</scene> and <scene name='87/877627/E161_correct_one/3'>E161 </scene> <ref name="Bai">PMID:26098370</ref> . Another residue that stabilizes the active site is <scene name='87/877627/N261_correct_one/4'>N261</scene>. This residue hydrogen bonds to the water molecule <ref name="Bai">PMID:26098370</ref> .
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The His box and periphery residues stabilize the dimetal center and make up the <scene name='87/877627/Active_site_round_3_but_labels/3'>active site</scene> of the enzyme. This allows for the proposed below mechanism to be carried out.
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The His box and periphery residues stabilize the dimetal center and make up the <scene name='87/877627/Active_site_round_3_but_labels/3'>active site</scene> of the enzyme.This allows for the proposed above mechanism to be carried out.

Revision as of 19:53, 20 April 2021

Stearoyl CoA Desaturase from Mus musculus

Structure of SCD1

Drag the structure with the mouse to rotate

References

  1. Paton CM, Ntambi JM. Biochemical and physiological function of stearoyl-CoA desaturase. Am J Physiol Endocrinol Metab. 2009 Jul;297(1):E28-37. doi:, 10.1152/ajpendo.90897.2008. Epub 2008 Dec 9. PMID:19066317 doi:http://dx.doi.org/10.1152/ajpendo.90897.2008
  2. 2.00 2.01 2.02 2.03 2.04 2.05 2.06 2.07 2.08 2.09 2.10 2.11 2.12 2.13 2.14 2.15 Bai Y, McCoy JG, Levin EJ, Sobrado P, Rajashankar KR, Fox BG, Zhou M. X-ray structure of a mammalian stearoyl-CoA desaturase. Nature. 2015 Jun 22. doi: 10.1038/nature14549. PMID:26098370 doi:http://dx.doi.org/10.1038/nature14549
  3. Castro LF, Wilson JM, Goncalves O, Galante-Oliveira S, Rocha E, Cunha I. The evolutionary history of the stearoyl-CoA desaturase gene family in vertebrates. BMC Evol Biol. 2011 May 19;11:132. doi: 10.1186/1471-2148-11-132. PMID:21595943 doi:http://dx.doi.org/10.1186/1471-2148-11-132
  4. 4.0 4.1 Shen J, Wu G, Tsai AL, Zhou M. Structure and Mechanism of a Unique Diiron Center in Mammalian Stearoyl-CoA Desaturase. J Mol Biol. 2020 May 27. pii: S0022-2836(20)30367-3. doi:, 10.1016/j.jmb.2020.05.017. PMID:32470559 doi:http://dx.doi.org/10.1016/j.jmb.2020.05.017
  5. 5.0 5.1 Kikuchi K, Tsukamoto H. Stearoyl-CoA desaturase and tumorigenesis. Chem Biol Interact. 2020 Jan 25;316:108917. doi: 10.1016/j.cbi.2019.108917. Epub , 2019 Dec 12. PMID:31838050 doi:http://dx.doi.org/10.1016/j.cbi.2019.108917

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Anthony Jude Durand Jr.

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