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Julea N Butt - One of the best experts on this subject based on the ideXlab platform.
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his met heme ligation in the pioa outer membrane cytochrome enabling light driven extracellular electron transfer by rhodopseudomonas palustris tie 1
Nanotechnology, 2020Co-Authors: Marcus J Edwards, Anthony W Blake, Simone Newtonpayne, Samuel E H Piper, Leon P Jenner, Katarzyna P Sokol, Erwin Reisner, Jessica H Van Wonderen, Thomas A Clarke, Julea N ButtAbstract:A growing number of bacterial species are known to move electrons across their cell envelopes. Naturally this occurs in support of energy conservation and carbon-fixation. For biotechnology it allows electron exchange between bacteria and electrodes in microbial fuel cells and during microbial electrosynthesis. In this context Rhodopseudomonas palustris TIE-1 is of much interest. These bacteria respond to light by taking electrons from their external environment, including electrodes, to drive CO2-fixation. The PioA cytochrome, that spans the bacterial outer membrane, is essential for this electron transfer and yet little is known about its structure and electron transfer properties. Here we reveal the ten c-type hemes of PioA are redox active across the window +250 to -400 mV versus Standard Hydrogen Electrode and that the hemes with most positive reduction potentials have His/Met and His/H2O ligation. These chemical and redox properties distinguish PioA from the more widely studied family of MtrA outer membrane decaheme cytochromes with ten His/His ligated hemes. We predict a structure for PioA in which the hemes form a chain spanning the longest dimension of the protein, from Heme 1 to Heme 10. Hemes 2, 3 and 7 are identified as those most likely to have His/Met and/or His/H2O ligation. Sequence analysis suggests His/Met ligation of Heme 2 and/or 7 is a defining feature of decaheme PioA homologs from over 30 different bacterial genera. His/Met ligation of Heme 3 appears to be less common and primarily associated with PioA homologs from purple non-sulphur bacteria belonging to the alphaproteobacteria class.
Marcus J Edwards - One of the best experts on this subject based on the ideXlab platform.
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his met heme ligation in the pioa outer membrane cytochrome enabling light driven extracellular electron transfer by rhodopseudomonas palustris tie 1
Nanotechnology, 2020Co-Authors: Marcus J Edwards, Anthony W Blake, Simone Newtonpayne, Samuel E H Piper, Leon P Jenner, Katarzyna P Sokol, Erwin Reisner, Jessica H Van Wonderen, Thomas A Clarke, Julea N ButtAbstract:A growing number of bacterial species are known to move electrons across their cell envelopes. Naturally this occurs in support of energy conservation and carbon-fixation. For biotechnology it allows electron exchange between bacteria and electrodes in microbial fuel cells and during microbial electrosynthesis. In this context Rhodopseudomonas palustris TIE-1 is of much interest. These bacteria respond to light by taking electrons from their external environment, including electrodes, to drive CO2-fixation. The PioA cytochrome, that spans the bacterial outer membrane, is essential for this electron transfer and yet little is known about its structure and electron transfer properties. Here we reveal the ten c-type hemes of PioA are redox active across the window +250 to -400 mV versus Standard Hydrogen Electrode and that the hemes with most positive reduction potentials have His/Met and His/H2O ligation. These chemical and redox properties distinguish PioA from the more widely studied family of MtrA outer membrane decaheme cytochromes with ten His/His ligated hemes. We predict a structure for PioA in which the hemes form a chain spanning the longest dimension of the protein, from Heme 1 to Heme 10. Hemes 2, 3 and 7 are identified as those most likely to have His/Met and/or His/H2O ligation. Sequence analysis suggests His/Met ligation of Heme 2 and/or 7 is a defining feature of decaheme PioA homologs from over 30 different bacterial genera. His/Met ligation of Heme 3 appears to be less common and primarily associated with PioA homologs from purple non-sulphur bacteria belonging to the alphaproteobacteria class.
William S Sheldrick - One of the best experts on this subject based on the ideXlab platform.
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cisplatin mediates selective downstream hydrolytic cleavage of met gly n his segments n 1 2 in methionine and histidine containing peptides the role of ammine loss trans to the initial pt s met anchor in facilitating amide hydrolysis
Journal of Inorganic Biochemistry, 2006Co-Authors: Olive Hohage, William S SheldrickAbstract:Abstract The pH- and time-dependent reactions of the antitumor drug cisplatin, cis -[PtCl 2 (NH 3 ) 2 ], with the methionine- and histidine-containing pentapeptides Ac-Met-Gly-His-Gly-Gly-OH, Ac-Met-Gly-Gly-His-Gly-OH and Ac-Gly-Met-Gly-His-Gly-OH (Gly = glycyl, Met = l -methionyl, His = l -histidyl) at 313 K have been investigated by high performance liquid chromatography, mass spectrometry and nuclear magnetic resonance. Cisplatin mediates a rapid “downstream” hydrolytic cleavage of the Met-Gly amide bond in weakly acid solution (pH ⩽5) for all three peptides, leading to release of H-Gly-His-Gly-Gly-OH, H-Gly-Gly-His-Gly-OH and H-Gly-His-Gly-OH, respectively, and formation of κ 2 S , N M chelate complexes of the methionine-containing residuals Ac-Met-OH or Ac-Gly-Met-OH. An alternative reaction pathway affords tridentate κ 3 S , N M , N (imidazole) macrochelates of the original pentapeptide following ammine loss. The downstream cleavage pathway is competitive with the likewise cisplatin-mediated upstream cleavage of the Ac-Gly linkage in the pentapeptide Ac-Gly-Met-Gly-His-Gly-OH. This leads to formation of both the κ 3 S , N M , N G1 complex of H-Gly-Met-Gly-His-Gly-OH due to upstream cleavage and the analogous tridentate complex for H-Gly-Met-OH due to initial downstream loss of H-Gly-His-Gly-OH followed by upstream loss of acetic acid. As downstream cleavage is not observed for Ac-(Gly) 2 -Met-(Gly) 2 -OH under similar conditions, it may be concluded that rapid histidine imidazole substitution of the ammine ligand in trans -position to an anchoring methionine S atom must assist hydrolytic cleavage of the Met-Gly amide bond.
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interaction of cisplatin with methionine and histidine containing peptides competition between backbone binding macrochelation and peptide cleavage
Journal of Biological Inorganic Chemistry, 2001Co-Authors: Markus Hahn, Marco Kleine, William S SheldrickAbstract:The pH- and time-dependent reaction of cis-[PtCl2(NH3)2] with the methionine- and histidine-containing peptides H-Gly-Met-OH, H-Gly-Gly-Met-OH, Ac-His-Gly-Met-OH, and Ac-His-(Ala)3-Met-OH at 313 K has been investigated by ion-pairing reverse phase HPLC and NMR spectroscopy. For equimolar solutions (c=0.8 mM, pH approximately equals 3 or 8.8), initial formation of the kinetically favored S-bound complex is followed by relatively rapid metallation of the neighboring methionine amide nitrogen NM to afford a kappa2NM,S six-membered chelate. The strong trans effect of the methionine S then favors facile NH3 substitution, leading to generation of tridentate complexes such as [Pt(H-Gly-MetH(-1)-OH)-kappa3NG,NM,S)(NH3)]+ or [Pt(H-Ac-His-GlyH(-1)-MetH(-1)-OH-kappa3NG,NM,S)(NH3)]. In the case of H-Gly-Gly-Met-OH, this reaction is accompanied by loss of a second NH3 ligand in alkaline solution to generate the tetradentate kappa4NG1,NG2,NM,S species. In contrast, cleavage of the backbone C(O)-N bond to the second metallated amide nitrogen after t>100 h is common to the tridentate complexes of the tri- and pentapeptides at pH<5. Although an imidazole-coordinated kappa2N3H,S macrochelate is formed throughout the whole range 2.5 < or = pH < or = 10 for Ac-His-Gly-Met-OH, it slowly decays (t=10-1000 h) to the thermodynamically more stable tridentate kappa3NG,NM,S complex. All major final products were separated and fully characterized by NMR and MS.
Jessica H Van Wonderen - One of the best experts on this subject based on the ideXlab platform.
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his met heme ligation in the pioa outer membrane cytochrome enabling light driven extracellular electron transfer by rhodopseudomonas palustris tie 1
Nanotechnology, 2020Co-Authors: Marcus J Edwards, Anthony W Blake, Simone Newtonpayne, Samuel E H Piper, Leon P Jenner, Katarzyna P Sokol, Erwin Reisner, Jessica H Van Wonderen, Thomas A Clarke, Julea N ButtAbstract:A growing number of bacterial species are known to move electrons across their cell envelopes. Naturally this occurs in support of energy conservation and carbon-fixation. For biotechnology it allows electron exchange between bacteria and electrodes in microbial fuel cells and during microbial electrosynthesis. In this context Rhodopseudomonas palustris TIE-1 is of much interest. These bacteria respond to light by taking electrons from their external environment, including electrodes, to drive CO2-fixation. The PioA cytochrome, that spans the bacterial outer membrane, is essential for this electron transfer and yet little is known about its structure and electron transfer properties. Here we reveal the ten c-type hemes of PioA are redox active across the window +250 to -400 mV versus Standard Hydrogen Electrode and that the hemes with most positive reduction potentials have His/Met and His/H2O ligation. These chemical and redox properties distinguish PioA from the more widely studied family of MtrA outer membrane decaheme cytochromes with ten His/His ligated hemes. We predict a structure for PioA in which the hemes form a chain spanning the longest dimension of the protein, from Heme 1 to Heme 10. Hemes 2, 3 and 7 are identified as those most likely to have His/Met and/or His/H2O ligation. Sequence analysis suggests His/Met ligation of Heme 2 and/or 7 is a defining feature of decaheme PioA homologs from over 30 different bacterial genera. His/Met ligation of Heme 3 appears to be less common and primarily associated with PioA homologs from purple non-sulphur bacteria belonging to the alphaproteobacteria class.
Erwin Reisner - One of the best experts on this subject based on the ideXlab platform.
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his met heme ligation in the pioa outer membrane cytochrome enabling light driven extracellular electron transfer by rhodopseudomonas palustris tie 1
Nanotechnology, 2020Co-Authors: Marcus J Edwards, Anthony W Blake, Simone Newtonpayne, Samuel E H Piper, Leon P Jenner, Katarzyna P Sokol, Erwin Reisner, Jessica H Van Wonderen, Thomas A Clarke, Julea N ButtAbstract:A growing number of bacterial species are known to move electrons across their cell envelopes. Naturally this occurs in support of energy conservation and carbon-fixation. For biotechnology it allows electron exchange between bacteria and electrodes in microbial fuel cells and during microbial electrosynthesis. In this context Rhodopseudomonas palustris TIE-1 is of much interest. These bacteria respond to light by taking electrons from their external environment, including electrodes, to drive CO2-fixation. The PioA cytochrome, that spans the bacterial outer membrane, is essential for this electron transfer and yet little is known about its structure and electron transfer properties. Here we reveal the ten c-type hemes of PioA are redox active across the window +250 to -400 mV versus Standard Hydrogen Electrode and that the hemes with most positive reduction potentials have His/Met and His/H2O ligation. These chemical and redox properties distinguish PioA from the more widely studied family of MtrA outer membrane decaheme cytochromes with ten His/His ligated hemes. We predict a structure for PioA in which the hemes form a chain spanning the longest dimension of the protein, from Heme 1 to Heme 10. Hemes 2, 3 and 7 are identified as those most likely to have His/Met and/or His/H2O ligation. Sequence analysis suggests His/Met ligation of Heme 2 and/or 7 is a defining feature of decaheme PioA homologs from over 30 different bacterial genera. His/Met ligation of Heme 3 appears to be less common and primarily associated with PioA homologs from purple non-sulphur bacteria belonging to the alphaproteobacteria class.