Cystathionine β-synthase

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The first one has centered on the relationship between homocysteine and oxidative stress. Homocysteine itself has been shown to cause increased oxidative stress on cells, both through direct effects (e.g., the production of hydrogen peroxide by oxidation of homocysteine to homocystine) and indirect effects (e.g., reduction of glutathione peroxidase). In addition, it is estimated that as much as 50% of the cellular antioxidant glutathione is produced from homocysteine by conversion through the transsulfuration pathway.
The first one has centered on the relationship between homocysteine and oxidative stress. Homocysteine itself has been shown to cause increased oxidative stress on cells, both through direct effects (e.g., the production of hydrogen peroxide by oxidation of homocysteine to homocystine) and indirect effects (e.g., reduction of glutathione peroxidase). In addition, it is estimated that as much as 50% of the cellular antioxidant glutathione is produced from homocysteine by conversion through the transsulfuration pathway.
A second popular hypothesis suggests that eHcy affects the control of biologically important methylation reactions by causing a build-up of S-adenosyl-L-homocysteine (AdoHcy) which is a competitive inhibitor of S-adenosyl-L-methionine (AdoMet) binding for methyltransferase enzymes. As methyltransferases are involved in a variety of important biological processes, inhibition of this class of enzymes could have extremely diverse effects on the organism.<ref>PMID:15890029</ref>
A second popular hypothesis suggests that eHcy affects the control of biologically important methylation reactions by causing a build-up of S-adenosyl-L-homocysteine (AdoHcy) which is a competitive inhibitor of S-adenosyl-L-methionine (AdoMet) binding for methyltransferase enzymes. As methyltransferases are involved in a variety of important biological processes, inhibition of this class of enzymes could have extremely diverse effects on the organism.<ref>PMID:15890029</ref>
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== Molecular dynamic simulation ==
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[[Image:CBS Lines.gif]]
</StructureSection>
</StructureSection>
== References ==
== References ==
<references/>
<references/>

Revision as of 20:14, 28 April 2019

3D Structure of Human Cystathionine β-synthase (4coo)

Human Cystathionine β-synthase

Drag the structure with the mouse to rotate

References

  1. Meier M, Janosik M, Kery V, Kraus JP, Burkhard P. Structure of human cystathionine beta-synthase: a unique pyridoxal 5'-phosphate-dependent heme protein. EMBO J. 2001 Aug 1;20(15):3910-6. PMID:11483494 doi:http://dx.doi.org/10.1093/emboj/20.15.3910
  2. Meier M, Janosik M, Kery V, Kraus JP, Burkhard P. Structure of human cystathionine beta-synthase: a unique pyridoxal 5'-phosphate-dependent heme protein. EMBO J. 2001 Aug 1;20(15):3910-6. PMID:11483494 doi:http://dx.doi.org/10.1093/emboj/20.15.3910
  3. Meier M, Oliveriusova J, Kraus JP, Burkhard P. Structural insights into mutations of cystathionine beta-synthase. Biochim Biophys Acta. 2003 Apr 11;1647(1-2):206-13. PMID:12686134
  4. Tu Y, Kreinbring CA, Hill M, Liu C, Petsko GA, McCune CD, Berkowitz DB, Liu D, Ringe D. Crystal Structures of Cystathionine beta-Synthase from Saccharomyces cerevisiae: One Enzymatic Step at a Time. Biochemistry. 2018 Apr 13. doi: 10.1021/acs.biochem.8b00092. PMID:29630349 doi:http://dx.doi.org/10.1021/acs.biochem.8b00092
  5. Meier M, Janosik M, Kery V, Kraus JP, Burkhard P. Structure of human cystathionine beta-synthase: a unique pyridoxal 5'-phosphate-dependent heme protein. EMBO J. 2001 Aug 1;20(15):3910-6. PMID:11483494 doi:http://dx.doi.org/10.1093/emboj/20.15.3910
  6. Meier M, Janosik M, Kery V, Kraus JP, Burkhard P. Structure of human cystathionine beta-synthase: a unique pyridoxal 5'-phosphate-dependent heme protein. EMBO J. 2001 Aug 1;20(15):3910-6. PMID:11483494 doi:http://dx.doi.org/10.1093/emboj/20.15.3910
  7. Meier M, Janosik M, Kery V, Kraus JP, Burkhard P. Structure of human cystathionine beta-synthase: a unique pyridoxal 5'-phosphate-dependent heme protein. EMBO J. 2001 Aug 1;20(15):3910-6. PMID:11483494 doi:http://dx.doi.org/10.1093/emboj/20.15.3910
  8. Meier M, Janosik M, Kery V, Kraus JP, Burkhard P. Structure of human cystathionine beta-synthase: a unique pyridoxal 5'-phosphate-dependent heme protein. EMBO J. 2001 Aug 1;20(15):3910-6. PMID:11483494 doi:http://dx.doi.org/10.1093/emboj/20.15.3910
  9. Tu Y, Kreinbring CA, Hill M, Liu C, Petsko GA, McCune CD, Berkowitz DB, Liu D, Ringe D. Crystal Structures of Cystathionine beta-Synthase from Saccharomyces cerevisiae: One Enzymatic Step at a Time. Biochemistry. 2018 Apr 13. doi: 10.1021/acs.biochem.8b00092. PMID:29630349 doi:http://dx.doi.org/10.1021/acs.biochem.8b00092
  10. Jhee KH, Kruger WD. The role of cystathionine beta-synthase in homocysteine metabolism. Antioxid Redox Signal. 2005 May-Jun;7(5-6):813-22. doi: 10.1089/ars.2005.7.813. PMID:15890029 doi:http://dx.doi.org/10.1089/ars.2005.7.813
  11. Ansari R, Mahta A, Mallack E, Luo JJ. Hyperhomocysteinemia and neurologic disorders: a review. J Clin Neurol. 2014 Oct;10(4):281-8. doi: 10.3988/jcn.2014.10.4.281. Epub 2014, Oct 6. PMID:25324876 doi:http://dx.doi.org/10.3988/jcn.2014.10.4.281
  12. Miles EW, Kraus JP. Cystathionine beta-synthase: structure, function, regulation, and location of homocystinuria-causing mutations. J Biol Chem. 2004 Jul 16;279(29):29871-4. Epub 2004 Apr 15. PMID:15087459 doi:http://dx.doi.org/10.1074/jbc.R400005200
  13. Meier M, Oliveriusova J, Kraus JP, Burkhard P. Structural insights into mutations of cystathionine beta-synthase. Biochim Biophys Acta. 2003 Apr 11;1647(1-2):206-13. PMID:12686134
  14. Jhee KH, Kruger WD. The role of cystathionine beta-synthase in homocysteine metabolism. Antioxid Redox Signal. 2005 May-Jun;7(5-6):813-22. doi: 10.1089/ars.2005.7.813. PMID:15890029 doi:http://dx.doi.org/10.1089/ars.2005.7.813

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