In response to partial plant shading, the lack of phytochrome A does not directly induce leaf senescence but alters the fine-tuning of chlorophyll biosynthesis.

scientific article published on 6 March 2014

In response to partial plant shading, the lack of phytochrome A does not directly induce leaf senescence but alters the fine-tuning of chlorophyll biosynthesis. is …
instance of (P31):
scholarly articleQ13442814

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P356DOI10.1093/JXB/ERU060
P932PMC publication ID4106438
P698PubMed publication ID24604733
P5875ResearchGate publication ID260611838

P50authorBastiaan BrouwerQ59548518
P2093author name stringOlivier Keech
Per Gardeström
P2860cites workSenescence Is Induced in Individually Darkened Arabidopsis Leaves, but Inhibited in Whole Darkened PlantsQ28363848
Phytochrome functions in Arabidopsis developmentQ33567595
An integrative model for phytochrome B mediated photomorphogenesis: from protein dynamics to physiologyQ33587453
Multiple transcription-factor genes are early targets of phytochrome A signalingQ33931463
PIFs: pivotal components in a cellular signaling hubQ34137345
Shade AvoidanceQ34274679
Biosynthesis of chlorophyll b and the chlorophyll cycleQ34460103
The control of chlorophyll catabolism and the status of yellowing as a biomarker of leaf senescence.Q34812020
Phytochrome regulates translation of mRNA in the cytosolQ35709132
The role of sugars in integrating environmental signals during the regulation of leaf senescenceQ36255644
The molecular analysis of leaf senescence--a genomics approachQ36674230
Tetrapyrrole biosynthesis in higher plantsQ36709518
PIF1 directly and indirectly regulates chlorophyll biosynthesis to optimize the greening process in ArabidopsisQ36756821
Decoding of light signals by plant phytochromes and their interacting proteinsQ37079163
PIF3 is a repressor of chloroplast developmentQ37183008
Phytochromes promote seedling light responses by inhibiting four negatively-acting phytochrome-interacting factorsQ37183164
Senescence-associated degradation of chloroplast proteins inside and outside the organelleQ37249767
Leaf nitrogen remobilisation for plant development and grain fillingQ37249772
Regulation and evolution of chlorophyll metabolism.Q37290999
Plant hormone signaling lightens up: integrators of light and hormonesQ37782494
Chlorophyll cycle regulates the construction and destruction of the light-harvesting complexesQ37826935
Post-translational control of tetrapyrrole biosynthesis in plants, algae, and cyanobacteriaQ37974523
Photoreceptor Signaling Networks in Plant Responses to ShadeQ38078419
Phytochrome‐mediated regulation of plant respiration and photorespirationQ38114926
Species-specific variation in the importance of the spectral quality gradient in canopies as a signal for photosynthetic resource partitioningQ43027258
Succinate dehydrogenase in Arabidopsis thaliana is regulated by light via phytochrome A.Q43237119
Pheophytin pheophorbide hydrolase (pheophytinase) is involved in chlorophyll breakdown during leaf senescence in ArabidopsisQ44615835
The histidine kinase-related domain of Arabidopsis phytochrome a controls the spectral sensitivity and the subcellular distribution of the photoreceptorQ45777733
Control of senescence in marchantia by phytochromeQ46158665
Comparative transcriptome analysis reveals significant differences in gene expression and signalling pathways between developmental and dark/starvation-induced senescence in ArabidopsisQ46462448
The different fates of mitochondria and chloroplasts during dark-induced senescence in Arabidopsis leavesQ46912242
Mutant analyses define multiple roles for phytochrome C in Arabidopsis photomorphogenesisQ47650170
Expression of enzymes involved in chlorophyll catabolism in Arabidopsis is light controlled.Q50272894
STAY-GREEN and chlorophyll catabolic enzymes interact at light-harvesting complex II for chlorophyll detoxification during leaf senescence in ArabidopsisQ50501788
The impact of light intensity on shade-induced leaf senescence.Q50520608
Photoconversion and nuclear trafficking cycles determine phytochrome A's response profile to far-red light.Q50526985
Phytochrome A is an irradiance-dependent red light sensorQ50703092
Chlorophyll breakdown in senescent Arabidopsis leaves. Characterization of chlorophyll catabolites and of chlorophyll catabolic enzymes involved in the degreening reactionQ50757535
A new type of mutation in phytochrome A causes enhanced light sensitivity and alters the degradation and subcellular partitioning of the photoreceptorQ50779058
Phytochrome-interacting factor 1 is a critical bHLH regulator of chlorophyll biosynthesisQ52087287
Developmental and age-related processes that influence the longevity and senescence of photosynthetic tissues in arabidopsisQ52225106
Leaf senescence is accompanied by an early disruption of the microtubule network in ArabidopsisQ52604559
Determination of accurate extinction coefficients and simultaneous equations for assaying chlorophylls a and b extracted with four different solvents: verification of the concentration of chlorophyll standards by atomic absorption spectroscopyQ56040895
Heterologous expression of Arabidopsis phytochrome B in transgenic potato influences photosynthetic performance and tuber developmentQ57147753
Missense mutation in the PAS2 domain of phytochrome A impairs subnuclear localization and a subset of responsesQ61919007
Two Photobiological Pathways of Phytochrome A Activity, Only One of Which Shows Dominant Negative Suppression by Phytochrome BQ61919023
A deletion in the PHYD gene of the Arabidopsis Wassilewskija ecotype defines a role for phytochrome D in red/far-red light sensingQ73671374
Phytochrome A and Phytochrome B Have Overlapping but Distinct Functions in Arabidopsis DevelopmentQ74789557
Shade avoidanceQ94701539
P433issue14
P407language of work or nameEnglishQ1860
P304page(s)4037-4049
P577publication date2014-03-06
P1433published inJournal of Experimental BotanyQ6295179
P1476titleIn response to partial plant shading, the lack of phytochrome A does not directly induce leaf senescence but alters the fine-tuning of chlorophyll biosynthesis
P478volume65

Reverse relations

cites work (P2860)
Q34668833Age-triggered and dark-induced leaf senescence require the bHLH transcription factors PIF3, 4, and 5
Q90169668Arabidopsis FAR-RED ELONGATED HYPOCOTYL3 Integrates Age and Light Signals to Negatively Regulate Leaf Senescence
Q39837518AtPDCD5 plays a role during dark-senescence in Arabidopsis.
Q30152703Characterization of a novel β-barrel protein (AtOM47) from the mitochondrial outer membrane of Arabidopsis thaliana
Q38975139Dark-induced leaf senescence: new insights into a complex light-dependent regulatory pathway
Q63885889Darkened Leaves Use Different Metabolic Strategies for Senescence and Survival
Q47134677FAR-RED INSENSITIVE 219/JAR1 Contributes to Shade Avoidance Responses of Arabidopsis Seedlings by Modulating Key Shade Signaling Components.
Q39094905Molecular mechanisms and ecological function of far-red light signalling
Q48636817New insights into the regulation of leaf senescence in Arabidopsis
Q93012119Overexpression of the maize transcription factor ZmVQ52 accelerates leaf senescence in Arabidopsis
Q91814965Regulation of Photomorphogenic Development by Plant Phytochromes

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