scholarly journals Direct detection of coupled proton and electron transfers in human manganese superoxide dismutase

Author(s):  
Jahaun Azadmanesh ◽  
William Lutz ◽  
Leighton Coates ◽  
Kevin Weiss ◽  
Gloria Borgstahl

Abstract Human manganese superoxide dismutase (MnSOD) is a critical oxidoreductase found in the mitochondrial matrix. Concerted proton and electron transfers (CPETs) are used by the enzyme to rid the mitochondria of O2•−, a precursor to other harmful reactive oxygen and nitrogen species. The mechanisms of CPET-utilizing enzymes are typically unknown due to the difficulties in detecting the protonation states of specific residues and solvent molecules involved in catalysis while controlling the redox state of the enzyme. Here, neutron diffraction of redox-controlled MnSOD crystals revealed the all-atom structures of Mn3+SOD and Mn2+SOD delivering unique data on sites of differential protonation. A novel mechanism is proposed from the direct observation of glutamine deprotonation, the involvement of Tyr and His with altered pKas, and three unusual strong-short hydrogen bonds that change with the oxidation state of the metal. Quantum calculations provide insight into the electronic modulation of the observed structures.

2020 ◽  
Author(s):  
Jahaun Azadmanesh ◽  
William E. Lutz ◽  
Leighton Coates ◽  
Kevin L. Weiss ◽  
Gloria E. O. Borgstahl

AbstractHuman manganese superoxide dismutase (MnSOD) is a critical oxidoreductase found in the mitochondrial matrix. Concerted proton and electron transfers (CPETs) are used by the enzyme to rid the mitochondria of O2•−, a precursor to other harmful reactive oxygen and nitrogen species. The mechanisms of CPET-utilizing enzymes are typically unknown due to the difficulties in detecting the protonation states of specific residues and solvent molecules involved in catalysis while controlling the redox state of the enzyme. Here, neutron diffraction of redox-controlled MnSOD crystals revealed the all-atom structures of Mn3+SOD and Mn2+SOD delivering unique data on sites that change protonation state. A novel mechanism is proposed from the direct observation of glutamine deprotonation, the involvement of Tyr and His with altered pKas, and four unusual strong-short hydrogen bonds, including a low barrier hydrogen bond, that change with the oxidation state of the metal. Quantum calculations provide insight into the electronic modulation of the observed structures and the enzymatic mechanism.


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Jahaun Azadmanesh ◽  
William E. Lutz ◽  
Leighton Coates ◽  
Kevin L. Weiss ◽  
Gloria E. O. Borgstahl

AbstractHuman manganese superoxide dismutase is a critical oxidoreductase found in the mitochondrial matrix. Concerted proton and electron transfers are used by the enzyme to rid the mitochondria of O2•−. The mechanisms of concerted transfer enzymes are typically unknown due to the difficulties in detecting the protonation states of specific residues and solvent molecules at particular redox states. Here, neutron diffraction of two redox-controlled manganese superoxide dismutase crystals reveal the all-atom structures of Mn3+ and Mn2+ enzyme forms. The structures deliver direct data on protonation changes between oxidation states of the metal. Observations include glutamine deprotonation, the involvement of tyrosine and histidine with altered pKas, and four unusual strong-short hydrogen bonds, including a low barrier hydrogen bond. We report a concerted proton and electron transfer mechanism for human manganese superoxide dismutase from the direct visualization of active site protons in Mn3+ and Mn2+ redox states.


2021 ◽  
Vol 77 (a1) ◽  
pp. a57-a57
Author(s):  
Gloria Borgstahl ◽  
Jahaun Azadmanesh ◽  
William Lutz ◽  
Leighton Coates ◽  
Kevin Weiss

2020 ◽  
Vol 76 (a1) ◽  
pp. a134-a134
Author(s):  
Jahaun Azadmanesh ◽  
William Lutz ◽  
Leighton Coates ◽  
Kevin Weiss ◽  
Gloria E. O. Borgstahl

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