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Hedtke, B.

Publications and source records attributed to Hedtke, B..

2 recordsLinked to original sources

The chloroplast envelope localization of protoporphyrinogen oxidase 2 prevents full complementation of Arabidopsis ppo1

All land plants encode two isoforms of protoporphyrinogen oxidase (PPO). While PPO1 is predominantly expressed in green tissues and its loss is seedling-lethal in Arabidopsis, the effects of PPO2 deficiency have not been investigated in detail. We identified two ppo2 T-DNA insertion mutants from publicly available collections, one of which (ppo2-2) is a knock-out mutant. While the loss of PPO2 did not result in any obvious phenotype, significant changes in PPO activity were measured in etiolated and root tissues. However, ppo1ppo2 double mutants are embryo-lethal. To shed light on possible functional differences between the two isoforms, PPO2 was overexpressed in the ppo1 background. Although the ppo1 phenotype was partially complemented, even strong overexpression of PPO2 was unable to fully compensate for the loss of PPO1. Analysis of its subcellular localization revealed that PPO2 is found exclusively in chloroplast envelopes, while PPO1 accumulates in thylakoid membranes. A mitochondrial localization of PPO2 in Arabidopsis was ruled out. Since A. thaliana PPO2 does not encode a cleavable transit peptide, integration of the protein into the chloroplast envelope must make use of a non-canonical import route. However, when a chloroplast transit peptide was fused to the N-terminus of PPO2, the enzyme was detected predominantly in thylakoid membranes, and was able to fully complement ppo1. Thus, the two PPO isoforms in Arabidopsis are functionally equivalent, but spatially separated. Their distinctive localizations within plastids thus enable the synthesis of discrete sub-pools of the PPO product protoprophyrin IX, which may serve different cellular needs.

plant biology↗

FC2 stabilizes POR and suppresses ALA formation in the tetrapyrrole biosynthesis pathway

O_LIDuring photoperiodic growth, the light-dependent nature of chlorophyll synthesis in angiosperms necessitates robust control of the production of 5-aminolevulinic acid (ALA), the rate-limiting step in the initial stage of tetrapyrrole biosynthesis (TBS). We are interested in dissecting the post-translational control of this process, which suppresses ALA synthesis for chlorophyll synthesis in dark-grown plants. C_LIO_LIUsing biochemical approaches for analysis of wild-type and mutant lines as well as complementation lines, we show that the heme-synthesizing ferrochelatase 2 (FC2) interacts with protochlorophyllide oxidoreductase and the regulator FLU which both promote the feedback-controlled suppression of ALA synthesis by inactivation of glutamyl-tRNA reductase, thus preventing excessive accumulation of potentially deleterious tetrapyrrole intermediates. C_LIO_LIThereby FC2 stabilizes POR by physical interaction. When the interaction between FC2 and POR is perturbed, suppression of ALA synthesis is attenuated and photoreactive protochlorophyllide accumulates. FC2 is anchored in the thylakoid membrane via its membrane-spanning CAB (chlorophyll-a-binding) domain. C_LIO_LIFC2 is one of the two isoforms of ferrochelatase catalyzing the last step of heme synthesis. Although FC2 belongs to the heme-synthesizing branch of TBS, its interaction with POR potentiates the effects of the GluTR-inactivation complex on the chlorophyll-synthesizing branch, and ensures reciprocal control of chlorophyll and heme synthesis. C_LI

plant biology↗