Human MnSOD and Cancer Research: Difference between revisions

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== Function ==
== Function ==
Human Manganese Superoxide Dismutase functions to rid the cell of reactive oxygen species. Reactive oxygen species (ROS) are free radical oxygen species/molecules that are derived from molecular oxygen (Turrens). ROS will oxidize various biomolecules within the cell, whether that be fatty acids or DNA.  ROS are naturally created as a byproduct of oxidative phosphorylation. In complex IV of the electron transport chain, electrons are transferred through to reduce oxygen gas to water. However, when electrons are brought into contact with oxygen via other parts of the chain, then we have the potential for oxygen gas to become an oxygen radical anion species <ref name="Turrens">PMID:14561818</ref>. There are a variety of defenses that take care of these species. One of these is MnSOD. In the mitochondrial matrix, MnSOD is present, which allows it to bind and convert ROS in its active sites to produce hydrogen peroxide and oxygen gas. MnSOD has a Kcat of 40,000 1/s and a Kcat/Km of 10^9, making it one of the fastest/most efficient enzymes <ref name="Azadmanesh">PMID:29385710</ref>. The levels of MnSOD increase as certain factors like high levels of oxygen and radiation that are present through the activation of the transcription factor NF kappa B <ref name="Turrens">PMID:14561818</ref>. Human Manganese Superoxide dismutase is a current protein of interest due to its role in the protection of the mitochondrial DNA from ROS that will react and cause destruction of the nucleic acids <ref name="Borgstahl et al">PMID:1394426</ref>.  
Human Manganese Superoxide Dismutase functions to rid the cell of reactive oxygen species. Reactive oxygen species (ROS) are free radical oxygen species/molecules that are derived from molecular oxygen <ref name="Turrens">PMID:14561818</ref>. ROS will oxidize various biomolecules within the cell, whether that be fatty acids or DNA.  ROS are naturally created as a byproduct of oxidative phosphorylation. In complex IV of the electron transport chain, electrons are transferred through to reduce oxygen gas to water. However, when electrons are brought into contact with oxygen via other parts of the chain, then we have the potential for oxygen gas to become an oxygen radical anion species <ref name="Turrens">PMID:14561818</ref>. There are a variety of defenses that take care of these species. One of these is MnSOD. In the mitochondrial matrix, MnSOD is present, which allows it to bind and convert ROS in its active sites to produce hydrogen peroxide and oxygen gas. MnSOD has a Kcat of 40,000 1/s and a Kcat/Km of 10^9, making it one of the fastest/most efficient enzymes <ref name="Azadmanesh">PMID:29385710</ref>. The levels of MnSOD increase as certain factors like high levels of oxygen and radiation that are present through the activation of the transcription factor NF kappa B <ref name="Turrens">PMID:14561818</ref>. Human Manganese Superoxide dismutase is a current protein of interest due to its role in the protection of the mitochondrial DNA from ROS that will react and cause destruction of the nucleic acids <ref name="Borgstahl et al">PMID:1394426</ref>.  


== Diseases/Research ==
== Diseases/Research ==

Revision as of 20:57, 24 April 2019

Human Manganese Superoxide Dismutase

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References

Proteopedia Page Contributors and Editors (what is this?)

Jared Harrison, Michal Harel