Switching sides-Reengineered primary charge separation in the bacterial photosynthetic reaction center.
basic_science · Level V
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- Record sourced from PubMed, PMID 31892543.
- Also identified by DOI 10.1073/pnas.1916119117 and PMC identifier 6969525.
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Abstract
We report 90% yield of electron transfer (ET) from the singlet excited state P* of the primary electron-donor P (a bacteriochlorophyll dimer) to the B-side bacteriopheophytin (H<sub>B</sub>) in the bacterial photosynthetic reaction center (RC). Starting from a platform <i>Rhodobacter sphaeroides</i> RC bearing several amino acid changes, an Arg in place of the native Leu at L185-positioned over one face of H<sub>B</sub> and only ∼4 Å from the 4 central nitrogens of the H<sub>B</sub> macrocycle-is the key additional mutation providing 90% yield of P<sup>+</sup>H<sub>B</sub><sup>-</sup> This all but matches the near-unity yield of A-side P<sup>+</sup>H<sub>A</sub><sup>-</sup> charge separation in the native RC. The 90% yield of ET to H<sub>B</sub> derives from (minimally) 3 P* populations with distinct means of P* decay. In an ∼40% population, P* decays in ∼4 ps via a 2-step process involving a short-lived P<sup>+</sup>B<sub>B</sub><sup>-</sup> intermediate, analogous to initial charge separation on the A side of wild-type RCs. In an ∼50% population, P* → P<sup>+</sup>H<sub>B</sub><sup>-</sup> conversion takes place in ∼20 ps by a superexchange mechanism mediated by B<sub>B</sub> An ∼10% population of P* decays in ∼150 ps largely by internal conversion. These results address the long-standing dichotomy of A- versus B-side initial charge separation in native RCs and have implications for the mechanism(s) and timescale of initial ET that are required to achieve a near-quantitative yield of unidirectional charge separation.
Medical subject headings
- Amino Acid Substitution
- Pheophytins
- Photosynthetic Reaction Center Complex Proteins
- Rhodobacter sphaeroides