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Avramov, A. P.

Publications and source records attributed to Avramov, A. P..

2 recordsLinked to original sources

An amino residue that guides the correct photoassembly the water-oxidation complex but not required for high affinity Mn2+ binding

The assembly of the Mn4O5Ca cluster of the photosystem II (PSII) starts from the initial binding and photooxidation of the first Mn2+ at a high affinity site (HAS). Recent cryo-EM apo-PSII structures reveal an altered geometry of amino ligands in this region and suggest the involvement of D1-Glu189 ligand in the formation of the HAS. We now find that Gln and Lys substitution mutants photoactivate with reduced quantum efficiency compared to the wild-type. However, the affinity of Mn2+ at the HAS in D1-E189K was very similar to the wild-type (~2.2 M). Thus, we conclude that D1-E189 does not form the HAS (~2.9 M) and that the reduced quantum efficiency of photoactivation in D1-E189K cannot be ascribed to the initial photooxidation of Mn2+ at the HAS. Besides reduced quantum efficiency, the D1-E189K mutant exhibits a large fraction of centers that fail to recover activity during photoactivation starting early in the assembly phase, becoming recalcitrant to further assembly. Fluorescence relaxation kinetics indicate on the presence of an alternative route for the charge recombination in Mn-depleted samples in all studied mutants and exclude damage to the photochemical reaction center as the cause for the recalcitrant centers failing to assemble and show that dark incubation of cells reverses some of the inactivation. This reversibility would explain the ability of these mutants to accumulate a significant fraction of active PSII during extended periods of cell growth. The failed recovery in the fraction of inactive centers appears to a reversible mis-assembly involving the accumulation of photooxidized, but non-catalytic high valence Mn at the donor side of photosystem II, and that a reductive mechanism exists for restoration of assembly capacity at sites incurring mis-assembly. Given the established role of Ca2+ in preventing misassembled Mn, we conclude that D1-E189K mutant impairs the ligation of Ca2+ at its effector site in all PSII centers that consequently leads to the mis-assembly resulting in accumulation of non-catalytic Mn at the donor side of PSII. Our data indicate that D1-E189 is not functionally involved in Mn2+ oxidation\binding at the HAS but rather involved in Ca2+ ligation and steps following the initial Mn2+ photooxidation.

biophysics↗

The role of Ca2+ and protein scaffolding in the formation in nature's water oxidizing complex

The photosystem II (PSII) complex catalyzing the H2O-oxidation reaction of photosynthesis is highly prone to photodamage. Nature has evolved synthesis and repair mechanisms that include the photooxidative self-assembly, termed photoactivation, of the Mn4CaO5 metal cluster responsible for H2O-oxidation. Assembly is a multi-step light-driven process that proceeds with low quantum yield, involves a critical molecular rearrangement between light-activated steps, and is prone to photoinactivation and mis-assembly. A sensitive polarographic technique was used to track the assembly process under flash illumination as a function of the constituent Mn2+ and Ca2+ ions in genetically engineered samples to elucidate the action of Ca2+ and peripheral proteins. We show that the protein scaffolding that organizes this process is modulated allosterically by the assembly protein Psb27, which together with Ca2+, stabilizes the intermediates of photoactivation, a feature especially evident at long intervals between photoactivating flashes. Besides stabilizing intermediates, the Ca2+ ion is also critical to prevent photoinactivation due to inappropriate binding of Mn2+. Overexpression of Psb27, deletion of extrinsic protein PsbO, and excess Ca2+ characteristically modify these processes and retard the dark rearrangement. The results suggest the involvement of three metal binding sites, two Mn and one Ca with occupation of the Ca site by Ca2+ critical for the suppression of inactivation and the long-observed competition between Mn2+ and Ca2+ occurring at the second Mn site necessary for trapping the first stable assembly intermediates. Significance StatementThe oxidation of water by the photosystem II is the foundation of bioproductivity on Earth and represents a blueprint for sustainable, carbon neutral technologies. Water oxidation is catalyzed by a metal cluster containing of 4 Mn and 1 Ca atoms linked via oxo bridges. The initial assembly is a complex sequential reaction harnessing the photochemical reaction center to photooxidatively incorporate Mn2+ and Ca2+ ions into the catalytic unit embedded in the protein matrix. This photoassembly is crucial for both de novo biosynthesis and as part of the self-healing mechanism to cope with incessant photodamage that photosynthetic organisms experience. The results have implications for the natural mechanism as well as the highly desirable biomimetic devices currently envisioned for solar energy production.

biophysics↗