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1 the photosynthetic apparatus of non-oxygenic photosynthetic bacteria.
2 antifungal compound in an ancient lineage of photosynthetic bacteria.
3 pairs of bacteriochlorophylls found in some photosynthetic bacteria.
4 roton-coupled electron-transfer mechanism in photosynthetic bacteria.
5 offsets, but is in fact actively managed by photosynthetic bacteria.
6 to those found in LH1 complexes from purple photosynthetic bacteria.
7 point in the biosynthesis of carotenoids in photosynthetic bacteria.
8 ics of chlorosomes in other species of green photosynthetic bacteria.
9 biochemistry of phage propagation in marine photosynthetic bacteria.
10 ws-Olson light harvesting complex from green photosynthetic bacteria.
11 the Chloroflexi and Chlorobi phyla of green photosynthetic bacteria.
12 tography elution time than BChl a from other photosynthetic bacteria.
13 rvesting structures found in two families of photosynthetic bacteria.
14 lectron donor to the reaction center (RC) in photosynthetic bacteria.
15 e size and density of the sulfur globules in photosynthetic bacteria.
16 in a zone of anaerobic primary production by photosynthetic bacteria.
17 attractant signal for motility among purple photosynthetic bacteria.
18 photosynthetic membranes of plants and many photosynthetic bacteria.
19 oteins, indicating their possible origins in photosynthetic bacteria.
20 between HMT2 and sulfide dehydrogenases from photosynthetic bacteria.
21 undamental biological processes catalyzed by photosynthetic bacteria.
22 e of mitochondria and the plasma membrane of photosynthetic bacteria.
23 ich were deposited by the activity of marine photosynthetic bacteria 2.87 Ga, 2.85 Ga and 2.78 Ga.
29 riggered by the interaction between oxygenic photosynthetic bacteria and anaerobic methanogenic archa
30 noxygenic photosynthesis performed by purple photosynthetic bacteria and Chloroflexales is the reacti
32 early atmosphere to form anaerobic bacteria, photosynthetic bacteria and eventually blue-green algae
33 Get3d is conserved across land plants and photosynthetic bacteria and includes a distinctive C-ter
35 rginal sequence homology, cytochrome c2 from photosynthetic bacteria and the mitochondrial cytochrome
39 trated that reaction centers from anoxygenic photosynthetic bacteria can be modified to bind a redox-
43 nd sustainable bioindustries, the genomes of photosynthetic bacteria contain large numbers of unchara
47 In natural anoxic environments, anoxygenic photosynthetic bacteria fix CO(2) by photoheterotrophy,
48 erial genus Rhodopseudomonas is comprised of photosynthetic bacteria found widely distributed in aqua
49 olutionarily ancient mechanism that protects photosynthetic bacteria from high light stress, which su
50 ted CH(4) production by other model oxygenic photosynthetic bacteria from various phyla, in conjuncti
53 ich participates in energy transfer in green photosynthetic bacteria, has been crystallized using the
54 SenC, a Sco1 homolog found in the purple photosynthetic bacteria, has been implicated in affectin
55 is a homodimer of identical b subunits, but photosynthetic bacteria have open reading frames for two
57 iPIP) differs from those isolated from other photosynthetic bacteria in its relatively high midpoint
58 ncentration suggests that the first oxygenic photosynthetic bacteria in solitary form could have evol
61 g in the light harvesting antennae of purple photosynthetic bacteria is an ultrafast process, which o
62 y in Rhodospirillum rubrum and in some other photosynthetic bacteria is regulated in part by the avai
63 tochrome c(2) (cyt) and reaction center from photosynthetic bacteria, is the focus of this theoretica
64 owth on organic substrates, purple nonsulfur photosynthetic bacteria like Rhodospirillum rubrum can a
65 nown for over half a century that anoxygenic photosynthetic bacteria maximally synthesize their photo
66 mbers of the alpha subdivision of the purple photosynthetic bacteria, namely, Rb. sphaeroides, P. den
73 high-pressure of the LH2 complexes from the photosynthetic bacteria Rhodobacter sphaeroides 2.4.1 an
74 tural abundance 13C in reaction centers from photosynthetic bacteria Rhodobacter sphaeroides R-26 was
75 t c(2)) to the reaction center (RC) from the photosynthetic bacteria Rhodobacter sphaeroides were stu
76 that mutant strains of the nonsulfur purple photosynthetic bacteria Rhodospirillum rubrum and Rhodob
77 nesis and would advance our understanding of photosynthetic bacteria's ecological role in the global
79 s of the mitochondrial respiratory chain and photosynthetic bacteria, suggests that an additional fun
83 ly the transcriptional activation systems in photosynthetic bacteria, the Rhodobacter capsulatus RNA
85 le in the ability of gymnosperms, algae, and photosynthetic bacteria to green (form chlorophyll) in t
87 Here the authors track energy transfer in photosynthetic bacteria using two-dimensional electronic
88 s, the light-harvesting complexes from green photosynthetic bacteria, using fluorescence correlation
89 and electron donor for chemolithotrophic and photosynthetic bacteria, via sulfide oxidation, and is a
90 o diacylglycerol, are abundant in plants and photosynthetic bacteria, where they constitute the bulk
93 ome (Cyt) c(2) and reaction center (RC) from photosynthetic bacteria, yielding a second-order rate co