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Biology subjects

Aizezi, Y.

Publications and source records attributed to Aizezi, Y..

5 recordsLinked to original sources

Brassinosteroids promote sugar synthesis by inhibiting BIN2 phosphorylation of phosphoenolpyruvate carboxykinase

Sugar is both an essential energy source and the major substrate for cell wall biosynthesis during plant growth, yet how growth-promoting hormones regulate sugar synthesis remains unclear. Here, we show that the brassinosteroids (BRs) promote gluconeogenic and photosynthetic sugar synthesis by activating phosphoenolpyruvate carboxykinase (PCK), which catalyzes the conversion of oxaloacetate to phosphoenolpyruvate, a central step in primary metabolism. Arabidopsis BR-deficient mutants display reduced PCK1 activity and elevated phosphorylation at conserved Ser-62 and Thr-66 residues. BR treatment induces PCK1 dephosphorylation and activation, whereas the GSK3-like kinase BIN2 phosphorylates these sites, altering quaternary structure and inhibiting PCK1. Phospho-blocking mutations of Ser-62/Thr-66 confer BR-independent PCK1 activity and enhance seedling growth, while phosphomimetic mutations reduce PCK1 activity and impair seedling growth and establishment. BR also promotes PCK dephosphorylation and activation in photosynthetic leaves of maize and sorghum. Our study demonstrates that BR regulates primary metabolism via GSK3/BIN2-mediated phosphorylation of PCK, thereby promoting gluconeogenesis and photosynthesis.

plant biology↗

Mitotic entry is controlled by the plant-specific phosphatase BSL1 and cyclin-dependent kinase B

Cell cycle regulation is well understood in opisthokonts (fungi and metazoans) but not in plants and Apicomplexa, as some cell cycle regulators are not conserved1-3. In opisthokonts, cell cycle progression requires dephosphorylation of cyclin-dependent kinase (CDK) by the CDC25 phosphatase4. Plants have no CDC25, and thus their mechanisms of cell cycle regulation remain elusive1,5,6. Here, we show that the BSL1 phosphatase dephosphorylates CDKB1 to promote mitotic entry in Chlamydomonas. Mutations of BSL1 or CDKB1 block mitotic entry after DNA replication. BSL1 shows dynamic localization through the cell cycle at the basal bodies, spindle poles, and cleavage furrow. CDKB1 is hyperphosphorylated at T14 and Y15 residues in the bsl1 mutant and in wild-type cells treated with DNA replication inhibitors. BSL1 binds to CDKB1 and dephosphorylates CDKB1 pT14/pY15 in vitro. Phospho-mimicking mutations of T14/Y15 inactivate CDKB1 function, whereas phospho-blocking mutations cause sensitivity to DNA replication inhibitors, which delay cytokinesis in wild-type cells more than cells expressing unphosphorylatable mutant CDKB1. These results indicate that CDKB1 T14/Y15 is phosphorylated to block mitotic entry before DNA replication is complete, and BSL1 dephosphorylates CDKB1 to promote mitosis. Our study demonstrates that BSL1, a phosphatase conserved in plants and Apicomplexa but absent in fungi and animals, is a CDKB1-activating mitosis-promoting factor that has evolved additional signaling functions in receptor kinase pathways in higher plants. One-Sentence SummaryBSL1 is a mitosis-promoting phosphatase that activates CDKB1 in plants.

plant biology↗

Direct Nuclear Delivery of Proteins on Living Plant via Partial Enzymatic Cell Wall Digestion

While many variations of protein delivery methods have been described, it can still be difficult or inefficient to introduce exogenous proteins into plants. A major barrier to progress is the cell wall which is primarily composed of polysaccharides and thus only permeable to small molecules. Here, we report a partial enzymatic cell wall digestion-mediated uptake method that efficiently delivers protein into the nucleus of plant cells. Such a method allowed efficient nuclear delivery of GFP proteins into Arabidopsis root cells throughout all cell layers. This study establishes that a partial enzymatic cell wall degradation could enable a myriad of plant biotechnology applications that rely on functional protein delivery into walled plant cells.

bioengineering↗

Structure-based virtual screening identifies small molecule inhibitors of O-fucosyltransferase SPINDLY

Protein O-glycosylation is a nutrient-signaling mechanism that plays essential roles in maintaining cellular homeostasis across different species. In plants, SPINDLY (SPY) and SECRET AGENT (SEC) catalyze posttranslational modifications of hundreds of intracellular proteins by O-fucose and O-linked N-acetylglucosamine, respectively. SPY and SEC play overlapping roles in cellular regulation and loss of both SPY and SEC causes embryo lethality in Arabidopsis. Using structure-based virtual screening of chemical libraries followed by in vitro and in planta assays, we identified a SPY O-fucosyltransferase inhibitor (SOFTI). Computational analyses predicted that SOFTI binds to the GDP-fucose-binding pocket of SPY and competitively inhibits GDP-fucose binding. In vitro assays confirmed that SOFTI interacts with SPY and inhibits its O-fucosyltransferase activity. Docking analysis identified additional SOFTI analogs that showed stronger inhibitory activities. SOFTI treatment of Arabidopsis seedlings decreased protein O-fucosylation and caused phenotypes similar to the spy mutants, including early seed germination, increased root hair density, and defect in sugar-dependent growth. By contrast, SOFTI had no visible effect on the spy mutant. Similarly, SOFTI inhibited sugar-dependent growth of tomato seedlings. These results demonstrate that SOFTI is a specific SPY O-fucosyltransferase inhibitor and a useful chemical tool for functional studies of O-fucosylation and potentially for agricultural management.

plant biology↗

Chemical genetic screening identifies nalacin as an inhibitor of GH3 amido synthetase for auxin conjugation

Root system is critical for plant growth and development. To develop plant growth regulators functioning in root development, we performed a phenotype-based chemical screen in Arabidopsis and identified a chemical, nalacin, that mimicked the effects of auxin on root development. Genetic, pharmacological and biochemical approaches demonstrated that nalacin exerts its auxin-like activities by inhibiting indole-3-acetic acid (IAA) conjugation that is mediated by Gretchen Hagen 3 (GH3) acyl acid amido synthetases. The crystal structure of Arabidopsis GH3.6 in complex with D4 (a derivative of nalacin) together with docking simulation analysis revealed the molecular basis of the inhibition of group II GH3 by nalacin. Sequence alignment analysis indicated broad bioactivities of nalacin and D4 as inhibitors of GH3s in vascular plants, which were confirmed, at least, in tomato and rice. In summary, our work identifies nalacin as a potent inhibitor of IAA conjugation mediated by group II GH3 that plays versatile roles in hormone-regulated plant development and has potential applications in both basic research and agriculture.

plant biology↗