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=== Overall Structure ===
=== Overall Structure ===
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[[Image:SCD1_ETC.png|525px|right|thumb| [Figure 2] SCD1 and Electron Transport Chain: Two electrons from NADH (left) are transported to Cytochrome B5 Reductase (Green) then Cytochrome B5 (Blue) and finally to SCD1 (Right) where they can be used in the desaturation reaction. Cytochrome B5 Reductase and Cytochrome B5 are bound to the cytosolic side of the ER membrane whereas SCD1 is embedded within the membrane of the ER. ]]SCD1 is an integral membrane protein embedded within the [http://micro.magnet.fsu.edu/cells/endoplasmicreticulum/endoplasmicreticulum.html endoplasmic reticulum] and consists of 4 transmembrane [http://en.wikipedia.org/wiki/Alpha_helix alpha helices], arranged in a cone-like shape. The cytosolic domain of the enzyme consists of 11 alpha helices and contains the carboxy and amino termini <ref name="Bai">PMID:26098370</ref>.
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[[Image:SCD1_ETC.png|525px|right|thumb| [Figure 2] SCD1 and Electron Transport Chain: Two electrons from NADH (left) are transported to Cytochrome B5 Reductase (Green) then Cytochrome B5 (Blue) and finally to SCD1 (Right) where they can be used in the desaturation reaction. Cytochrome B5 Reductase and Cytochrome B5 are bound to the cytosolic side of the ER membrane whereas SCD1 is embedded within the membrane of the ER. ]]SCD1 is an integral membrane protein embedded within the [http://micro.magnet.fsu.edu/cells/endoplasmicreticulum/endoplasmicreticulum.html endoplasmic reticulum] and consists of 4 transmembrane alpha helices, arranged in a cone-like shape. The cytosolic domain of the enzyme consists of 11 alpha helices and contains the carboxy and amino termini <ref name="Bai">PMID:26098370</ref>.
Its substrate, Stearoyl-CoA, binds to the cytosolic region which contains a "kink" that properly orients Stearoyl-CoA to undergo a [http://en.wikipedia.org/wiki/Dehydrogenation#:~:text=Dehydrogenation%20is%20the%20a%20chemical,reaction%20and%20a%20serious%20problem.&text=Enzymes%20that%20catalyze%20dehydrogenation%20are%20called%20dehydrogenases. dehydrogenation] reaction between the <scene name='87/877602/C9_and_c10/2'>carbon 9 and carbon 10</scene> of Stearoyl-CoA.
Its substrate, Stearoyl-CoA, binds to the cytosolic region which contains a "kink" that properly orients Stearoyl-CoA to undergo a [http://en.wikipedia.org/wiki/Dehydrogenation#:~:text=Dehydrogenation%20is%20the%20a%20chemical,reaction%20and%20a%20serious%20problem.&text=Enzymes%20that%20catalyze%20dehydrogenation%20are%20called%20dehydrogenases. dehydrogenation] reaction between the <scene name='87/877602/C9_and_c10/2'>carbon 9 and carbon 10</scene> of Stearoyl-CoA.
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==Biological Significance ==
==Biological Significance ==
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SCD1’s role in converting stearoyl CoA, a saturated fatty acid, to oleic acid, a monounsaturated fatty acid, is essential in lipid metabolism. Fluxes in the ratio of saturated fatty acids to monounsaturated fatty acids can be connected to many different disease states, including obesity, diabetes, cancer, and cardiovascular disease <ref name="Ntambi">PMID: 14654089</ref>.The inactivation of SCD1 has been known to have combative effects on obesity and diabetes. Increased levels of oleic acid are present in both obesity and diabetes; therefore, inactivating the enzyme will allow for decreased amounts of product present <ref name="ALJohani">PMID: 29089222</ref> .
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SCD1’s role in converting stearoyl CoA, a saturated fatty acid, to oleic acid, a monounsaturated fatty acid, is essential in lipid metabolism. Fluxes in the ratio of saturated fatty acids to monounsaturated fatty acids can be connected to many different disease states, including obesity, diabetes, cancer, and cardiovascular disease <ref name="Ntambi">PMID: 14654089</ref>.The inactivation of SCD1 has been known to have combative effects on obesity and diabetes. Increased levels of oleic acid are present in both obesity and diabetes; therefore, inactivating the enzyme will allow for decreased amounts of product present <ref name="ALJohani">PMID: 29089222</ref>. A mutation in one of these nine histidines causes the enzyme to become nonfunctional.<ref name="Bai">PMID:26098370</ref> . The inactivation of SCD1 also has been known to inhibit cancer cell growth <ref name="Shen">PMID:32470559</ref>. The inactivation of SCD1 is also commonly caused by a frameshift mutation by the addition of a proline at the 279th position. In the wild type SCD1 protein, this position contains an <scene name='87/877627/R279/4'>arginine residue</scene>. A ‘CCC’ codon is inserted into the 5th exon at position 835 of the SCD1 gene. This mutation results in a loss of function of SCD1. This study was done using a mouse model. In mice with this mutation, hair loss, similar to alopecia, occurs. The mice were also found to be lean during their lifespan due to decreased triglyceride synthesis connected to the loss of SCD1 function <ref name="Lu">PMID: 15278437</ref>
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A mutation in one of these nine histidines causes the enzyme to become nonfunctional.<ref name="Bai">PMID:26098370</ref> . The inactivation of SCD1 also has been known to inhibit cancer cell growth <ref name="Shen">PMID:32470559</ref>.
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The inactivation of SCD1 is also commonly caused by a frameshift mutation by the addition of a proline at the 279th position. In the wild type SCD1 protein, this position contains an <scene name='87/877627/R279/4'>arginine residue</scene>. A ‘CCC’ codon is inserted into the 5th exon at position 835 of the SCD1 gene. This mutation results in a loss of function of SCD1. This study was done using a mouse model. In mice with this mutation, hair loss, similar to alopecia, occurs. The mice were also found to be lean during their lifespan due to decreased triglyceride synthesis connected to the loss of SCD1 function <ref name="Lu">PMID: 15278437</ref>
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</StructureSection>
</StructureSection>

Revision as of 18:45, 27 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 2.16 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 4.2 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. 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
  6. Wang H, Klein MG, Zou H, Lane W, Snell G, Levin I, Li K, Sang BC. Crystal structure of human stearoyl-coenzyme A desaturase in complex with substrate. Nat Struct Mol Biol. 2015 Jul;22(7):581-5. doi: 10.1038/nsmb.3049. Epub 2015 Jun , 22. PMID:26098317 doi:http://dx.doi.org/10.1038/nsmb.3049
  7. 7.0 7.1 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
  8. doi: https://dx.doi.org/10.1021/acscatal.9b00456
  9. Ntambi JM, Miyazaki M. Regulation of stearoyl-CoA desaturases and role in metabolism. Prog Lipid Res. 2004 Mar;43(2):91-104. doi: 10.1016/s0163-7827(03)00039-0. PMID:14654089 doi:http://dx.doi.org/10.1016/s0163-7827(03)00039-0
  10. ALJohani AM, Syed DN, Ntambi JM. Insights into Stearoyl-CoA Desaturase-1 Regulation of Systemic Metabolism. Trends Endocrinol Metab. 2017 Dec;28(12):831-842. doi: 10.1016/j.tem.2017.10.003., Epub 2017 Oct 28. PMID:29089222 doi:http://dx.doi.org/10.1016/j.tem.2017.10.003
  11. Lu Y, Bu L, Zhou S, Jin M, Sundberg JP, Jiang H, Qian M, Shi Y, Zhao G, Kong X, Hu L. Scd1ab-Xyk: a new asebia allele characterized by a CCC trinucleotide insertion in exon 5 of the stearoyl-CoA desaturase 1 gene in mouse. Mol Genet Genomics. 2004 Sep;272(2):129-37. doi: 10.1007/s00438-004-1043-3. Epub , 2004 Jul 29. PMID:15278437 doi:http://dx.doi.org/10.1007/s00438-004-1043-3

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