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Schaaf, G.

Publications and source records attributed to Schaaf, G..

6 recordsLinked to original sources

Arabidopsis inositol polyphosphate kinases IPK1 and ITPK1 modulate crosstalks between SA-dependent immunity and phosphate-starvation responses

The propensity for polyphosphorylation makes myo-inositol derivatives, the inositol polyphosphates (InsPs), especially phytic acid or inositol hexakisphosphate (InsP6) the major form of phosphate storage in plants. Acts of pyrophosphorylation on InsP6 generates InsP7 or InsP8 containing high-energy phosphoanhydride bonds that are harnessed during energy requirements of a cell. Also implicated as co-factors for several phytohormone signaling networks, InsP7/InsP8 modulate key developmental processes. With recent identification as the common moeity for transducing both jasmonic acid (JA) and phosphate-starvation responses (PSR), InsP8 is the classic example of a metabolite that may moonlight crosstalks to different cellular pathways during diverse stress adaptations. We show here that Arabidopsis thaliana INOSITOL PENTAKISPHOSPHATE 2-KINASE (IPK1), INOSITOL 1,3,4-TRISPHOSPHATE 5/6-KINASE 1 (ITPK1), and DIPHOSPHOINOSITOL PENTAKISPHOSPHATE KINASE 2 (VIH2), but not other InsP-kinases, suppress basal salicylic acid (SA)-dependent immunity. In ipk1, itpk1 or vih2 mutants, elevated endogenous SA levels and constitutive activation of defense signaling lead to enhanced resistance against the virulent Pseudomonas syringae pv tomato DC3000 (PstDC3000) strain. Our data reveal that activated SA-signaling sectors in these mutants modulate expression amplitudes of phosphate-starvation inducible (PSI)-genes, reported earlier. In turn, via mutualism the heightened basal defenses in these mutants require upregulated PSI-gene expressions likely highlighting the increased demand of phosphates required to support immunity. We demonstrate that SA is induced in phosphate-deprived plants, however its defense-promoting functions are likely diverted to PSR-supportive roles. Overall, our investigations reveal selective InsPs as crosstalk mediators among diverse signaling networks programming stress-appropriate adaptations.

plant biology

Arabidopsis inositol polyphosphate kinases regulate COP9 signalosome functions in phosphate-homeostasis

Plant Cullin RING Ubiquitin E3 ligases (CRLs) facilitate targeted protein degradation during physiological development and adaptation to stress. The deneddylase activity of COP9 signalosome (CSN) regulates cellular ratios of neddylated cullins available for the continuum of CRL functions. While selective inositol polyphosphates (InsPs) function as co-factors in plant responses involving the ubiquitylation of negative regulators, a relationship to CSN-CRL activities has not yet been established. Here, we show that the two Arabidopsis thaliana InsP-kinases IPK1 and ITPK1 physically interact and metabolically connect with the CSN holo-complex to modulate cullin deneddylation efficiency. Specifically, functional deficiency of ITPK1 lowers cullin deneddylation rates and disrupts the dissociation equilibrium of CSN5, the deneddylase catalytic subunit, and CUL1 with the holo-complex. Our results identify a novel auto-regulatory switch of CSN functions, defined by deneddylation activity. We further demonstrate that phosphate starvation response (PSR), which is induced in Pi-starved wild-type plants and constitutive in the above InsP-kinase mutants, is orchestrated in part by reduced deneddylation rates that, in turn, affect the stability of SPX4, a key negative regulator of PSR. Pharmacological inhibition of cullin neddylation stabilizes SPX4 and impairs PSR, thus linking CSN-CRL dynamics to phosphate (Pi)-sensing. Conversely, when exposed to compounds that inhibit CSN5 deneddylase activity, wild-type plants display phenotypes similar to the above InsP-kinase mutants. Overall, our data reveal that the regulation of plant Pi-starvation responses by specific InsP-kinases is caused by a direct role of these kinases in balancing coordination between CRL-CSN activities.

plant biology

Analysis of Inositol Phosphate Metabolism by Capillary Electrophoresis Electrospray Ionization Mass Spectrometry (CE-ESI-MS)

The analysis of myo-inositol phosphates (InsPs) and myo-inositol pyrophosphates (PP-InsPs) is a daunting challenge due to the large number of possible isomers, the absence of a chromophore, the high charge density, the low abundance, and the instability of the esters and anhydrides. Given their importance in biology, an analytical approach to follow and understand this complex signaling hub is highly desirable. Here, capillary electrophoresis (CE) coupled to electrospray ionization mass spectrometry (ESI-MS) is implemented to analyze complex mixtures of InsPs and PP-InsPs with high sensitivity. Stable isotope labeled (SIL) internal standards allow for matrix-independent quantitative assignment. The method is validated in wild-type and knockout mammalian cell lines and in model organisms. SIL-CE-ESI-MS enables for the first time the accurate monitoring of InsPs and PP-InsPs arising from compartmentalized cellular synthesis pathways, by feeding cells with either [13C6]-myo-inositol or [13C6]-D-glucose. In doing so, we uncover that there must be unknown inositol synthesis pathways in mammals, highlighting the unique potential of this method to dissect inositol phosphate metabolism and signalling.

biochemistry

ITPK1 is an InsP6/ADP phosphotransferase that controls systemic phosphate homeostasis in Arabidopsis

In plants, phosphate (Pi) homeostasis is regulated by the interaction of Pi starvation response transcription factors (PHRs) with stand-alone SPX proteins, which act as sensors for inositol pyrophosphates (PP-InsPs). Recently, ITPK1 was shown to generate the PP-InsP InsP7 from InsP6 in vitro, but the importance of this activity in Pi signaling remained unknown. Here, we show that uncontrolled Pi accumulation in ITPK1-deficient plants is accompanied by impaired Pi-dependent InsP7 and InsP8 synthesis. Reciprocal grafting demonstrates that Pi starvation responses are mainly controlled by ITPK1 activity in shoots. Nuclear magnetic resonance assays and PAGE analyses with recombinant protein reveal that besides InsP6 phosphorylation, ITPK1 is also able to catalyze ATP synthesis using 5-InsP7 but not any other InsP7 isomer as a P-donor when ATP is low. Additionally, we show that the dynamic changes in InsP7 and InsP8 to cellular Pi are conserved from land plant species to human cells, suggesting that Pi-dependent PP-InsP synthesis is a common component of Pi signaling across kingdoms. Together, our study demonstrates how Pi-dependent changes in nutritional and energetic states modulate ITPK1 activities to fine-tune the synthesis of PP-InsPs.

plant biology

ITPK1-Dependent Inositol Polyphosphates Regulate Auxin Responses in Arabidopsis thaliana

The combinatorial phosphorylation of myo-inositol results in the generation of different inositol phosphates (InsP), of which phytic acid (InsP6) is the most abundant species in eukaryotes. InsP6 is also the precursor of higher phosphorylated forms called inositol pyrophosphates (PP-InsPs), such as InsP7 and InsP8, which are characterized by a diphosphate moiety and are also ubiquitously found in eukaryotic cells. While PP-InsPs regulate various cellular processes in animals and yeast, their biosynthesis and functions in plants has remained largely elusive because plant genomes do not encode canonical InsP6 kinases. Recently, it was shown that Arabidopsis ITPK1 catalyzes the phosphorylation of InsP6 to the natural 5-InsP7 isomer in vitro. Here, we demonstrate that Arabidopsis ITPK1 contributes to the synthesis of InsP7 in planta. We further find a critical role of ITPK1 in auxin-related processes including primary root elongation, leaf venation, thermomorphogenic and gravitropic responses, and sensitivity towards exogenously applied auxin. Notably, 5-InsP7 binds to recombinant auxin receptor complex, consisting of the F-Box protein TIR1, ASK1 and the transcriptional repressor IAA7, with high affinity. Furthermore, a specific increase in 5-InsP7 in a heterologous yeast expression system results in elevated interaction of the TIR1 homologs AFB1 and AFB2 with various AUX/IAA-type transcriptional repressors. We also identified a physical interaction between ITPK1 and TIR1, suggesting a dedicated channeling of an activating factor, such as 5-InsP7, to the auxin receptor complex. Our findings expand the mechanistic understanding of auxin perception and lay the biochemical and genetic basis to uncover physiological processes regulated by 5-InsP7.

plant biology

Zebrafish macrophage developmental arrest underlies depletion of microglia and reveals Csf1r-independent metaphocytes

Macrophages derive from multiple sources of hematopoietic progenitors. Most macrophages require colony-stimulating factor 1 receptor (CSF1R), but some macrophages persist in the absence of CSF1R. Here, we analyzed mpeg1:GFP-expressing macrophages in csf1r-deficient zebrafish and report that embryonic macrophages emerge followed by their developmental arrest. In larvae, mpeg1+ cell numbers then increased showing two distinct types in the skin: branched, putative Langerhans cells, and amoeboid cells. In contrast, although numbers also increased in csf1r-mutants, exclusively amoeboid mpeg1+ cells were present, which we showed by genetic lineage tracing to have a non-hematopoietic origin. They expressed macrophage-associated genes, but also showed decreased phagocytic gene expression and increased epithelial-associated gene expression, characteristic of metaphocytes, recently discovered ectoderm-derived cells. We further demonstrated that juvenile csf1r-deficient zebrafish exhibit systemic macrophage depletion. Thus, Csf1r deficiency disrupts embryonic to adult macrophage development. Csf1r-deficient zebrafish are viable and permit analyzing the consequences of macrophage loss throughout life.

developmental biology