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Calderon, R. H.

Publications and source records attributed to Calderon, R. H..

2 recordsLinked to original sources

FtsH Protease Inactivation Allows Accumulation of Aberrant Photosystem II in a Chlamydomonas Rubredoxin Mutant

The assembly of photosystem II (PSII) requires the participation of assembly proteins that facilitate the step-wise association of its protein and pigment components into a functional complex capable of oxidizing water and reducing plastoquinone. We previously identified one such factor, the membrane-bound rubredoxin RBD1, but its precise role remains unknown in part due to the inability of the 2pac mutant strain of Chlamydomonas reinhardtii, which lacks RBD1, to accumulate PSII. Here, we show that decreased PSII accumulation in 2pac is due to increased proteolytic degradation. Inactivating the thylakoid membrane FtsH protease in the 2pac mutant background led to an increase in the abundance of PSII subunits and their integration into higher molecular weight complexes, including PSII dimers, capable of sustaining photoautotrophic growth. Dark- and low light-grown 2pac ftsh1-1 both accumulated a 23-kD fragment of the D1 protein, a marker typically associated with structural changes resulting from photodamage or photoinhibition. We introduced a HIS-tagged version of the PsbH protein into the 2pac ftsh1-1 background to purify and examine PSII. We found no detectable changes with respect to cofactor composition relative to the wild-type, leading to us to propose a model in which RBD1 promotes the proper folding of D1, possibly via delivery or reduction of the non-heme iron during PSII assembly. Our results demonstrate that introduction of the ftsh1-1 mutation into mutants defective in the biogenesis of thylakoid membrane complexes can allow for the accumulation and study of aberrant complexes that would otherwise be degraded due to their high protease sensitivity.

plant biology↗

Shade-induced transcription of PIF-Direct-Target Genes precedes H3K4-trimethylation chromatin modifications

The phytochrome (phy)-PIF (Phytochrome Interacting Factor) sensory module perceives and transduces light signals to Direct-Target Genes (DTGs), which then drive the adaptational responses in plant growth and development, appropriate to the prevailing environment. These signals include the first exposure of etiolated seedlings to sunlight upon emergence from subterranean darkness, and the change in color of the light that is filtered through, or reflected from, neighboring vegetation ( shade). Previously, we identified three broad categories of rapidly signal-responsive genes: those repressed by light and conversely induced by shade; those repressed by light, but subsequently unresponsive to shade; and those responsive to shade only. Here, we investigate the potential role of epigenetic chromatin modifications in regulating these contrasting patterns of phy-PIF module-induced expression of DTGs. Using RNA-seq and ChlP-seq, time-resolved profiling of transcript and histone 3 lysine 4 trimethylation (H3K4me3) levels, respectively, we show that, whereas the initial dark-to-light transition triggers a rapid, apparently temporally-coincident decline of both parameters, the light-to-shade transition induces similarly rapid increases in transcript levels that precede increases in H3K4me3 levels. Together with other recent findings, these data raise the possibility that, rather than being causal in the shade-induced expression changes, H3K4me3 may function to buffer the rapidly fluctuating shade/light switching that is intrinsic to vegetational canopies under natural sunlight conditions.

plant biology↗