Roles of Four Conserved Basic Amino Acids in a Ferredoxin-Dependent Cyanobacterial Nitrate Reductase

The roles of four conserved basic amino acids in the reaction catalyzed by the ferredoxin-dependent nitrate reductase from the cyanobacterium Synechococcus sp. PCC 7942 have been investigated using site-directed mutagenesis in combination with measurements of steady-state kinetics, substrate-binding...

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Veröffentlicht in:Biochemistry (Easton) 2013-06, Vol.52 (25), p.4343-4353
Hauptverfasser: Srivastava, Anurag P, Hirasawa, Masakazu, Bhalla, Megha, Chung, Jung-Sung, Allen, James P, Johnson, Michael K, Tripathy, Jatindra N, Rubio, Luis M, Vaccaro, Brian, Subramanian, Sowmya, Flores, Enrique, Zabet-Moghaddam, Masoud, Stitle, Kyle, Knaff, David B
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Sprache:eng
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Zusammenfassung:The roles of four conserved basic amino acids in the reaction catalyzed by the ferredoxin-dependent nitrate reductase from the cyanobacterium Synechococcus sp. PCC 7942 have been investigated using site-directed mutagenesis in combination with measurements of steady-state kinetics, substrate-binding affinities, and spectroscopic properties of the enzyme’s two prosthetic groups. Replacement of either Lys58 or Arg70 by glutamine leads to a complete loss of activity, both with the physiological electron donor, reduced ferredoxin, and with a nonphysiological electron donor, reduced methyl viologen. More conservative, charge-maintaining K58R and R70K variants were also completely inactive. Replacement of Lys130 by glutamine produced a variant that retained 26% of the wild-type activity with methyl viologen as the electron donor and 22% of the wild-type activity with ferredoxin as the electron donor, while replacement by arginine produces a variant that retains a significantly higher percentage of the wild-type activity with both electron donors. In contrast, replacement of Arg146 by glutamine had minimal effect on the activity of the enzyme. These results, along with substrate-binding and spectroscopic measurements, are discussed in terms of an in silico structural model for the enzyme.
ISSN:0006-2960
1520-4995
1520-4995
DOI:10.1021/bi400354n