Investigating the Mechanisms of Active Site Mutations to the 1T9G WT MCAD Protein to Better Understand Medium Chain Acyl-CoA Dehydrogenase Deficiency (MCADD)

From Proteopedia

(Difference between revisions)
Jump to: navigation, search
Line 15: Line 15:
== Materials & Methods ==
== Materials & Methods ==
-
From the Protein Data Bank, the human WT MCAD (PDB ID: 1T9G) was collected <ref>Toogood, H. S., van Thiel, A., Basran, J., Sutcliffe, M. J., Scrutton, N. S., & Leys, D. (2004). Extensive domain motion and electron transfer in the human electron transferring flavoprotein·medium chain acyl-COA dehydrogenase complex. Journal of Biological Chemistry, 279(31), 32904–32912. https://doi.org/10.1074/jbc.m404884200</ref>, shown below. Multiple articles were researched for various mutations, which were analyzed from the article and viewed in PyMOL. Additional computerized modifications were needed, however. Using PyMOL, the electron-transferring flavoprotein (ETF) complex of 1T9G was removed, and chain B was isolated from the MCAD homotetramer portion for better focus. No substrate was on 1T9G originally, so Octanoyl-CoA (PDB ID: CO8) was docked using PyRx; CO8 was a ligand in the protein 1EGC, a similar yet slightly mutated version of human MCAD used for reference. LigPlot+ was then used to identify the amino acids that undergo hydrogen bonding and hydrophobic interactions with FAD & CO8. Finally, the modified 1T9G was cosmetically enhanced in Jmol to produce a detailed 3D model.
+
From the Protein Data Bank, the human WT MCAD (PDB ID: 1T9G) was collected <ref>Toogood, H. S., van Thiel, A., Basran, J., Sutcliffe, M. J., Scrutton, N. S., & Leys, D. (2004). Extensive domain motion and electron transfer in the human electron transferring flavoprotein·medium chain acyl-COA dehydrogenase complex. Journal of Biological Chemistry, 279(31), 32904–32912. https://doi.org/10.1074/jbc.m404884200</ref>, shown below. Multiple articles <ref>Maier, E. M., Gersting, S. W., Kemter, K. F., Jank, J. M., Reindl, M., Messing, D. D., Truger, M. S., Sommerhoff, C. P., & Muntau, A. C. (2009). Protein misfolding is the molecular mechanism underlying MCADD identified in newborn screening. Human molecular genetics, 18(9), 1612–1623. https://doi.org/10.1093/hmg/ddp079</ref><ref>McAndrew, R. P., Wang, Y., Mohsen, A. W., He, M., Vockley, J., & Kim, J. J. (2008). Structural basis for substrate fatty acyl chain specificity: crystal structure of human very-long-chain acyl-CoA dehydrogenase. The Journal of biological chemistry, 283(14), 9435–9443. https://doi.org/10.1074/jbc.M709135200</ref><ref>Tucci, S., Wagner, C., Grünert, S. C., Matysiak, U., Weinhold, N., Klein, J., Porta, F., Spada, M., Bordugo, A., Rodella, G., Furlan, F., Sajeva, A., Menni, F., & Spiekerkoetter, U. (2021). Genotype and residual enzyme activity in medium-chain acyl-CoA dehydrogenase (MCAD) deficiency: Are predictions possible? Journal of inherited metabolic disease, 44(4), 916–925. https://doi.org/10.1002/jimd.12368</ref> were researched for various mutations, which were analyzed from the article and viewed in PyMOL. Additional computerized modifications were needed, however. Using PyMOL, the electron-transferring flavoprotein (ETF) complex of 1T9G was removed, and chain B was isolated from the MCAD homotetramer portion for better focus. No substrate was on 1T9G originally, so Octanoyl-CoA (PDB ID: CO8) was docked using PyRx; CO8 was a ligand in the protein 1EGC, a similar yet slightly mutated version of human MCAD used for reference. LigPlot+ was then used to identify the amino acids that undergo hydrogen bonding and hydrophobic interactions with FAD & CO8. Finally, the modified 1T9G was cosmetically enhanced in Jmol to produce a detailed 3D model.
<Structure load='1T9G' size='350' frame='true' align='center' caption='PDB ID 1T9G: Structure of the human MCAD:ETF complex' scene='Insert optional scene name here' />
<Structure load='1T9G' size='350' frame='true' align='center' caption='PDB ID 1T9G: Structure of the human MCAD:ETF complex' scene='Insert optional scene name here' />

Revision as of 20:54, 21 May 2023

Investigating The Mechanisms of Active Site Mutations to the 1T9G WT MCAD Protein to Better Understand Medium Chain Acyl-CoA Dehydrogenase Deficiency (MCADD) [1]

Caption for this structure

Drag the structure with the mouse to rotate

References

  1. Saleh, Omar E.; Khatiwala, Rhea; and Ignatius, Jeremy, "Investigating The Mechanisms of Active Site Mutations to the 1T9G WT MCAD Protein to Better Understand Medium Chain Acyl-CoA Dehydrogenase Deficiency (MCADD)" (2022). Protein Modeling Reports. 7. https://nsuworks.nova.edu/protein_modeling_reports/7
  2. https://medlineplus.gov/genetics/condition/medium-chain-acyl-coa-dehydrogenase-deficiency/
  3. Bach, R. D., Thorpe, C., & Dmitrenko, O. (n.d.). Synergy Between H-Bonding Interactions and Its Role in the Enzyme-Catalyzed a-Proton Abstraction. DFT Studies On the Acyl-CoA Dehydrogenase Model Systems. University of Delaware. https://www1.udel.edu/chem/bach/pages/CCE8corr.html
  4. Drendel, H. M., Pike, J. E., Schumacher, K., Ouyang, K., Wang, J., Stuy, M., Dlouhy, S., & Bai, S. (2015). Intermediate MCAD Deficiency Associated with a Novel Mutation of the ACADM Gene: c.1052C>T. Case reports in genetics, 2015, 532090. https://doi.org/10.1155/2015/532090
  5. Drendel, H. M., Pike, J. E., Schumacher, K., Ouyang, K., Wang, J., Stuy, M., Dlouhy, S., & Bai, S. (2015). Intermediate MCAD Deficiency Associated with a Novel Mutation of the ACADM Gene: c.1052C>T. Case reports in genetics, 2015, 532090. https://doi.org/10.1155/2015/532090
  6. Toogood, H. S., van Thiel, A., Basran, J., Sutcliffe, M. J., Scrutton, N. S., & Leys, D. (2004). Extensive domain motion and electron transfer in the human electron transferring flavoprotein·medium chain acyl-COA dehydrogenase complex. Journal of Biological Chemistry, 279(31), 32904–32912. https://doi.org/10.1074/jbc.m404884200
  7. Maier, E. M., Gersting, S. W., Kemter, K. F., Jank, J. M., Reindl, M., Messing, D. D., Truger, M. S., Sommerhoff, C. P., & Muntau, A. C. (2009). Protein misfolding is the molecular mechanism underlying MCADD identified in newborn screening. Human molecular genetics, 18(9), 1612–1623. https://doi.org/10.1093/hmg/ddp079
  8. McAndrew, R. P., Wang, Y., Mohsen, A. W., He, M., Vockley, J., & Kim, J. J. (2008). Structural basis for substrate fatty acyl chain specificity: crystal structure of human very-long-chain acyl-CoA dehydrogenase. The Journal of biological chemistry, 283(14), 9435–9443. https://doi.org/10.1074/jbc.M709135200
  9. Tucci, S., Wagner, C., Grünert, S. C., Matysiak, U., Weinhold, N., Klein, J., Porta, F., Spada, M., Bordugo, A., Rodella, G., Furlan, F., Sajeva, A., Menni, F., & Spiekerkoetter, U. (2021). Genotype and residual enzyme activity in medium-chain acyl-CoA dehydrogenase (MCAD) deficiency: Are predictions possible? Journal of inherited metabolic disease, 44(4), 916–925. https://doi.org/10.1002/jimd.12368

Proteopedia Page Contributors and Editors (what is this?)

Omar Saleh

Personal tools