4.4 Article

Reaction centers of the thermophilic microaerophile, Chloracidobacterium thermophilum (Acidobacteria) I: biochemical and biophysical characterization

期刊

PHOTOSYNTHESIS RESEARCH
卷 142, 期 1, 页码 87-103

出版社

SPRINGER
DOI: 10.1007/s11120-019-00650-9

关键词

Photosynthesis; Chlorophototrophy; Zn-bacteriochlorophyll; Type-1 reaction center; Anoxygenic photosynthesis; Transient electron paramagnetic resonance

资金

  1. Photosynthetic Systems Program, Division of Chemical Sciences, Geosciences, and Biosciences (CSGB), Office of Basic Energy Sciences of the U.S. Department of Energy [DE-FG02-94ER20137, DE-SC0010575]
  2. U.S. Department of Energy (DOE) [DE-SC0010575] Funding Source: U.S. Department of Energy (DOE)

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Chloracidobacterium thermophilum is a microaerophilic, anoxygenic member of the green chlorophototrophic bacteria. This bacterium is the first characterized oxygen-requiring chlorophototroph with chlorosomes, the FMO protein, and homodimeric type-1 reaction centers (RCs). The RCs of C. thermophilum are also unique because they contain three types of chlorophylls, bacteriochlorophyll a(P) esterified with phytol, Chl a(PD) esterified with Delta 2,6-phytadienol, and Zn-BChl a(P)' esterified with phytol, in the approximate molar ratio 32:24:4. The light-induced difference spectrum of these RCs had a bleaching maximum at 839 nm and also revealed an electrochromic bandshift that is probably derived from a BChl a molecule near P840(+). The F-X [4Fe-4S] cluster had a midpoint potential of ca. - 581 mV, and the spectroscopic properties of the P+ F-X(-) spin-polarized radical pair were very similar to those of reaction centers of heliobacteria and green sulfur bacteria. The data further indicate that electron transfer occurs directly from A(0)(-) to F-X, as occurs in other homodimeric type-1 RCs. Washing experiments with isolated membranes suggested that the PscB subunit of these reaction centers is more tightly bound than PshB in heliobacteria. Thus, the reaction centers of C. thermophilum have some properties that resemble other homodimeric reaction centers but also have specific properties that are more similar to those of Photosystem I. These differences probably contribute to protection of the electron transfer chain from oxygen, contributing to the oxygen tolerance of this microaerophile.

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