Affiliation:
1. Department of Molecular Biology and Biotechnology, University of Sheffield, Sheffield, United Kingdom
Abstract
ABSTRACT
The characteristic green color associated with chlorophyll pigments results from the formation of an isocyclic fifth ring on the tetrapyrrole macrocycle during the biosynthesis of these important molecules. This reaction is catalyzed by two unrelated cyclase enzymes employing different chemistries. Oxygenic phototrophs such as plants and cyanobacteria utilize an oxygen-dependent enzyme, the major component of which is a diiron protein named AcsF, while BchE, an oxygen-sensitive [4Fe-4S] cluster protein, dominates in phototrophs inhabiting anoxic environments, such as the purple phototrophic bacterium
Rhodobacter sphaeroides
. We identify a potential
acsF
in this organism and assay for activity of the encoded protein in a strain lacking
bchE
under various aeration regimes. Initially, cells lacking
bchE
did not demonstrate AcsF activity under any condition tested. However, on removal of a gene encoding a subunit of the
cbb
3
-type respiratory terminal oxidase, cells cultured under regimes ranging from oxic to micro-oxic exhibited cyclase activity, confirming the activity of the oxygen-dependent enzyme in this model organism. Potential reasons for the utilization of an oxygen-dependent enzyme in anoxygenic phototrophs are discussed.
IMPORTANCE
The formation of the E ring of bacteriochlorophyll pigments is the least well characterized step in their biosynthesis, remaining enigmatic for over 60 years. Two unrelated enzymes catalyze this cyclization step; O
2
-dependent and O
2
-independent forms dominate in oxygenic and anoxygenic phototrophs, respectively. We uncover the activity of an O
2
-dependent enzyme in the anoxygenic purple phototrophic bacterium
Rhodobacter sphaeroides
, initially by inactivation of the high-affinity terminal respiratory oxidase, cytochrome
cbb
3
. We propose that the O
2
-dependent form allows for the biosynthesis of a low level of bacteriochlorophyll under oxic conditions, so that a rapid initiation of photosynthetic processes is possible for this bacterium upon a reduction of oxygen tension.
Funder
University of Sheffield
European Commission
EC | European Research Council
Biotechnology and Biological Sciences Research Council
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Cited by
12 articles.
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