Sandbox Reserved 1662: Difference between revisions

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== Mechanism ==
== Mechanism ==


It is known that the electrochemical potential of the inner mitochondrial membrane is due to a proton gradient. UCP2 allows to translocate protons to the mitochondrial matrix (following the exergonic direction) and to couple the translocation with an emission of heat </ref>[[https://www.genecards.org/cgi-bin/carddisp.pl?gene=UCP2]] <ref>. However, the mechanism of this proton translocation is unknown. UCP2 moreover functions as a chloride carrier. Some experiments were performed to find out more about the structure associated with this transport, in particular the positively charged transmembrane alpha helix <scene name='86/868195/Tm2/1'>TM2</scene> (in the second pattern). Mutants were created lacking positive charged amino acids (arginine and lysine muted in glutamine): R76Q, R88Q, R96Q, and K104Q. After purification and insertion of those mutants in liposomes it has been observed that Cl- transport crucially decreases compared to the wild type. This positive alpha helix, therefore, is necessary to transport chloride-ions. <ref>[https://doi.org/10.1021/acs.biochem.5b00177]Hoang, T., Matovic, T., Parker, J., Smith, M.D., Jelokhani-Niaraki, M., Role of Positively Charged Residues of the Second Transmembrane Domain in the Ion Transport Activity and Conformation of Human Uncoupling Protein-2, Biochemistry 2015, 54, 14, 2303–2313, </ref>  
It is known that the electrochemical potential of the inner mitochondrial membrane is due to a proton gradient. UCP2 allows to translocate protons to the mitochondrial matrix (following the exergonic direction) and to couple the translocation with an emission of heat <ref>[[https://www.genecards.org/cgi-bin/carddisp.pl?gene=UCP2]] <ref>. However, the mechanism of this proton translocation is unknown. UCP2 moreover functions as a chloride carrier. Some experiments were performed to find out more about the structure associated with this transport, in particular the positively charged transmembrane alpha helix <scene name='86/868195/Tm2/1'>TM2</scene> (in the second pattern). Mutants were created lacking positive charged amino acids (arginine and lysine muted in glutamine): R76Q, R88Q, R96Q, and K104Q. After purification and insertion of those mutants in liposomes it has been observed that Cl- transport crucially decreases compared to the wild type. This positive alpha helix, therefore, is necessary to transport chloride-ions. <ref>[https://doi.org/10.1021/acs.biochem.5b00177]Hoang, T., Matovic, T., Parker, J., Smith, M.D., Jelokhani-Niaraki, M., Role of Positively Charged Residues of the Second Transmembrane Domain in the Ion Transport Activity and Conformation of Human Uncoupling Protein-2, Biochemistry 2015, 54, 14, 2303–2313, </ref>  
Moreover these experiments have shown that the positively charged domain allows precipitation of salts resulting in a dense packing in UCP2. This conformation amplifies the proton transport rate.
Moreover these experiments have shown that the positively charged domain allows precipitation of salts resulting in a dense packing in UCP2. This conformation amplifies the proton transport rate.