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1 iate and the formation of the final product, chlorophyllide.
2 s the conversion of protochlorophyllide into chlorophyllide.
3 king, Arabidopsis mutants that accumulate DV chlorophyllide a and/or DV chlorophyll [Chl(ide)] a are
4 ectron reduction of the C7-C8 double bond of chlorophyllide a by the nitrogenase-like multisubunit me
5 removes the C-13(2)-methylcarboxyl moiety of chlorophyllide a is discussed.
6 nitrogenase-like multisubunit metalloenzyme, chlorophyllide a oxidoreductase (COR).
7 a tetrapyrrole molecule to a formyl group by chlorophyllide a oxygenase (CAO).
8 f soq1 and isolated mutants affecting either chlorophyllide a oxygenase or the chloroplastic lipocali
9                                    [4-Vinyl] chlorophyllide a reductase (4VCR) is a key enzyme of the
10 n vitro activity, the chlorin 3-hydroxyethyl chlorophyllide a was newly identified as a natural subst
11 yzes the reduction of protochlorophyllide to chlorophyllide, a reaction critical to the biosynthesis
12 ibutes to the supply of the two metabolites, chlorophyllide and phytyl pyrophosphate, required for th
13 treatment causes a transient accumulation of chlorophyllide and transcripts associated with singlet o
14  The isolated complex contained chlorophyll, chlorophyllide, and carotenoid pigments.
15 conversion of the unstable intermediate into chlorophyllide as defined by its spectroscopic character
16 ion was enhanced by addition of exogenous Zn-chlorophyllide b.
17 ype Arabidopsis, a DV plant species, only MV chlorophyllide (Chlide) a is detectable.
18       It catalyzes the conversion of divinyl chlorophyllide (Chlide) a to monovinyl Chlide a by reduc
19 he light-dependent reduction of Pchlide a to chlorophyllide (Chlide) a, which is subsequently convert
20 uction of protochlorophyllide (PChlide) into chlorophyllide (Chlide) in the presence of NADPH.
21 rms complexes with Chl and the Chl precursor chlorophyllide (Chlide) in vitro.
22 uction of protochlorophyllide (Pchlide) into chlorophyllide (Chlide) with reduced nicotinamide adenin
23 eduction of protochlorophyllide (Pchlide) to chlorophyllide (Chlide), a key regulatory step in the ch
24 eduction of protochlorophyllide (Pchlide) to chlorophyllide (Chlide).
25 ich reduces protochlorophyllide (Pchlide) to chlorophyllide (Chlide).
26 ductase catalyzes the reductive formation of chlorophyllide from protochlorophyllide during biosynthe
27 ger the conversion of protochlorophyllide to chlorophyllide in developing seedlings.
28 uction of protochlorophyllide (Pchlide) into chlorophyllide in the presence of NADPH.
29 ependent reduction of protochlorophyllide to chlorophyllide is catalyzed by NADPH:protochlorophyllide
30            At elevated temperatures (>298 K) chlorophyllide is released from the enzyme to yield the
31 iD elevated the level of the ChlG substrate, chlorophyllide, more than 6-fold; HliD is apparently req
32 associated with the release of the NADP+ and chlorophyllide products from the enzyme could be followe
33 eduction of protochlorophyllide (Pchlide) to chlorophyllide, providing a rare opportunity to trap and
34 s (PORs) that convert protochlorophyllide to chlorophyllide, reducing ROS production that would other
35 ynthesis of PSI, despite the accumulation of chlorophyllide released from the degraded Chl proteins.
36              Although the mutant accumulated chlorophyllide, the last Chl precursor, we showed that i

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