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- W2979666045 abstract "Summary Wood (secondary xylem) formation in tree species is dependent on auxin‐mediated vascular cambium activity in stems. However, the complex regulatory networks underlying xylem formation remain elusive. Xylem development in Populus was characterized based on microscopic observations of stem sections in transgenic plants. Transcriptomic, quantitative real‐time PCR, chromatin immunoprecipitation PCR, and electrophoretic mobility shift assay analyses were conducted to identify target genes involved in xylem development. Yeast two‐hybrid, pull‐down, bimolecular fluorescence complementation, and co‐immunoprecipitation assays were used to validate protein–protein interactions. PaC3H17 and its target PaMYB199 were found to be predominantly expressed in the vascular cambium and developing secondary xylem in Populus stems and play opposite roles in controlling cambial cell proliferation and secondary cell wall thickening through an overlapping pathway. Further, Pa C3H17 interacts with Pa MYB199 to form a complex, attenuating Pa MYB199‐driven suppression of its xylem targets. Exogenous auxin application enhances the dual control of the Pa C3H17‐ Pa MYB199 module during cambium division, thereby promoting secondary cell wall deposition. Dual regulation of xylem formation by an auxin‐mediated Pa C3H17‐ Pa MYB199 module represents a novel regulatory mechanism in Populus , increasing our understanding of the regulatory networks involved in wood formation." @default.
- W2979666045 created "2019-10-18" @default.
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- W2979666045 date "2019-11-23" @default.
- W2979666045 modified "2023-10-16" @default.
- W2979666045 title "Dual regulation of xylem formation by an auxin‐mediated <i>Pa</i>C3H17‐<i>Pa</i>MYB199 module in <i>Populus</i>" @default.
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- W2979666045 doi "https://doi.org/10.1111/nph.16244" @default.
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