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Meyer, G. W.

Publications and source records attributed to Meyer, G. W..

2 recordsLinked to original sources

Thiol depletion and disruption of proteostasis contribute to the phytotoxicity of juglone

O_LIJuglone is the phytotoxic 1,4-naphthoquinone responsible for the allelopathic effects of black walnut (Juglans nigra), yet how plants perceive and respond to juglone remain poorly understood. C_LIO_LIWe conducted transcriptome profiling of rosettes and roots of Arabidopsis thaliana exposed to juglone from 30 min to 5 d, along with targeted metabolic profiling, biochemical assays, and untargeted proteomics to gain a systems-level understanding of how plants respond to juglone and to test hypotheses underlying its phytotoxicity. C_LIO_LIJuglone exposure induced expression of genes involved in glutathione, cysteine, and sulfur metabolism pathways, and in protein homeostasis. We found that juglone depletes the pool of reduced glutathione (GSH) in roots, in part, through conjugation. We demonstrate that via upregulation of transcription factors (NAC53 and NAC78), the response to juglone activates components of the proteasome stress regulon and triggers extensive proteome remodeling with engagement of the autophagy pathway when proteasome capacity is limited. C_LIO_LIOur findings (i) indicate that thiol depletion and disruption of proteostasis through juglones dual redox cycling and alkylation activities are central to its phytotoxicity, (ii) cast doubt on previous reports that juglone targets a specific enzyme in plants or other organisms, and (iii) provide insight into how the chemical properties of allelopathic quinones shape their ecological roles. C_LI

plant biology↗

Association of the benzoxazinoid pathway with boron homeostasis in maize

Both deficiency and toxicity of the micronutrient boron lead to severe reductions in crop yield. Despite this agricultural importance, the molecular basis underlying boron homeostasis in plants is not resolved. To identify molecular players involved in boron homeostasis in maize (Zea mays), we measured boron levels in the Goodman-Buckler association panel and performed genome-wide association studies. These analyses detected the benzoxazinless (bx) gene, bx3, involved in the biosynthesis of benzoxazinoids, like DIMBOA, major defense compounds in maize. Genes involved in DIMBOA biosynthesis are all located in close proximity in the genome and the biosynthesis mutants, including bx3 are all DIMBOA deficient. We show that the bx3 mutant has enhanced boron concentration in leaves compared to the B73 control plants, which correlates with enhanced leaf tip necrosis, a phenotype associated with boron toxicity. In contrast, other DIMBOA-deficient maize mutants did not show altered boron levels nor the leaf tip necrosis phenotype, suggesting that boron is not associated with DIMBOA. Instead, our analyses suggest that the accumulation of boron is linked to the benzoxazinoid intermediates indolin-2-one (ION) and 3-hydroxy-ION. Therefore, our results connect boron homeostasis to the benzoxazinoid plant defense pathway through bx3 and specific intermediates, rendering the benzoxazinoid biosynthesis pathway a potential target for crop improvement in inadequate boron conditions. One sentence summaryGWAS identified benzoxazinless3 in the benzoxazinoid biosynthesis pathway to play a role in boron homeostasis in maize.

plant biology↗