2wx5 Citations

Structural and spectroscopic consequences of hexacoordination of a bacteriochlorophyll cofactor in the Rhodobacter sphaeroides reaction center .

Biochemistry 49 1882-92 (2010)
Cited: 8 times
EuropePMC logo PMID: 20112981

Abstract

The structural and functional consequences of changing the coordination state of one of the bacteriochlorophyll (BChl) cofactors in the purple bacterial reaction center have been explored. A combination of steady state spectroscopy and X-ray crystallography was used to demonstrate that mutagenesis of residue 181 of the L-polypeptide from Phe to Arg (FL181R) causes the BChl at the accessory (B(B)) position on the so-called inactive cofactor branch to become hexacoordinated, with no significant changes to the structure of the surrounding protein. This change was accompanied by the appearance of a distinctive absorbance band at 631 nm in the room-temperature absorbance spectrum. The ligand donor was not the Arg side chain but rather an intervening water molecule, and contrary to expectations, the Mg of B(B) did not adopt a more in-plane geometry in response to hexacoordination. The mutation caused a disturbance to the detailed conformation of the BChl macrocycle that manifested in a number of subtle changes to the resonance Raman spectrum. Hexacoordination of B(B) produced a small increase in the lifetime of the excited electronic state of the primary donor bacteriochlorophylls (P*), indicating some disturbance to light-driven energy and/or electron transfer events on the time scale of a few picoseconds after light excitation. The B(B) bacteriochlorophyll returned to a pentacoordinated state in a double mutant where the FL181R mutation was combined with removal of the native axial ligand through mutation of His M182 to Leu. Experimental evidence of hexacoordinated bacteriochlorophylls in the literature on antenna proteins is considered, and possible reasons why hexacoordinated bacteriochlorophylls and chlorophylls appear to be avoided in photosynthetic proteins are discussed.

Articles - 2wx5 mentioned but not cited (1)

  1. SCMPSP: Prediction and characterization of photosynthetic proteins based on a scoring card method. Vasylenko T, Liou YF, Chen HA, Charoenkwan P, Huang HL, Ho SY. BMC Bioinformatics 16 Suppl 1 S8 (2015)


Reviews citing this publication (1)

  1. Structure-function investigations of bacterial photosynthetic reaction centers. Leonova MM, Fufina TY, Vasilieva LG, Shuvalov VA. Biochemistry (Mosc) 76 1465-1483 (2011)

Articles citing this publication (6)

  1. Excited state dynamics in photosynthetic reaction center and light harvesting complex 1. Strümpfer J, Schulten K. J Chem Phys 137 065101 (2012)
  2. Redox potential tuning through differential quinone binding in the photosynthetic reaction center of Rhodobacter sphaeroides. Vermaas JV, Taguchi AT, Dikanov SA, Wraight CA, Tajkhorshid E. Biochemistry 54 2104-2116 (2015)
  3. Putative hydrogen bond to tyrosine M208 in photosynthetic reaction centers from Rhodobacter capsulatus significantly slows primary charge separation. Saggu M, Carter B, Zhou X, Faries K, Cegelski L, Holten D, Boxer SG, Kirmaier C. J Phys Chem B 118 6721-6732 (2014)
  4. Consequences of saturation mutagenesis of the protein ligand to the B-side monomeric bacteriochlorophyll in reaction centers from Rhodobacter capsulatus. Faries KM, Kohout CE, Wang GX, Hanson DK, Holten D, Laible PD, Kirmaier C. Photosynth Res 141 273-290 (2019)
  5. Properties of Rhodobacter sphaeroides photosynthetic reaction center with double amino acid substitution I(L177)H+H(M182)L. Fufina TY, Vasilieva LG, Khatypov RA, Shuvalov VA. Biochemistry (Mosc) 76 450-454 (2011)
  6. Synthesis of oligomethylene-strapped chlorophyll derivatives and optical properties of their stereoisomers in a solution. Tamiaki H, Takebe H, Sasaki S, Kataoka Y. Photosynth Res 111 1-8 (2012)