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Takebayashi, A.

Publications and source records attributed to Takebayashi, A..

4 recordsLinked to original sources

Photosynthesis-derived carbon gates cell cycle activation to enable hormone-autonomous shoot regeneration

Shoot regeneration is a powerful model for cell fate reprogramming but how it occurs in nature remains poorly understood because studies in Arabidopsis thaliana conventionally rely on in vitro assays supplemented with exogenous hormones and sugars. In this study, we established the Hormone-autonomY Direct Regeneration Assay (HYDRA) in which removal of the shoot apical meristem (SAM) initiates shoot regeneration from the cotyledon-hypocotyl boundary domain without hormone or sugar supplementation. We show that photosynthesis-derived carbon and the boundary domain are two separable but convergent requirements for shoot regeneration in HYDRA. Carbon availability increases in the boundary domain where it activates cell cycle progression via the RETINOBLASTOMA-RELATED1 (RBR1) pathway. Carbon deprivation blocks regeneration despite induction of SAM marker genes, indicating that carbon-dependent cell cycle activation is a limiting factor for regeneration. In parallel, perturbation of the boundary domain or its regulators reduces regeneration despite sufficient carbon, indicating that boundary domain identity is independently required. Additionally, exogenous carbon supply overcomes the requirement for SAM removal to induce shoot formation, indicating that carbon availability also acts as an initiation cue. Together, this study reveals an inherent capacity for hormone-autonomous shoot regeneration and identifies photosynthesis-derived carbon as a central regulator of this process.

Plant Biology↗

Prolonged cold exposure enhances regeneration potential in Arabidopsis

Prolonged cold exposure over winter impacts plant growth and development but its role beyond flowering regulation remains underexplored. In this study, we show that extended cold enhances regenerative capacity, promoting both callus formation and shoot regeneration in Arabidopsis. This enhancement is mediated by the cold-induced AP2/ERF transcription factors C-REPEAT/DRE-BINDING FACTOR 1 (CBF1), CBF2 and CBF3 which interact with the histone acetyltransferase HISTONE ACETYLTRANSFERASE OF THE GNAT FAMILY 1 (HAG1). The CBFs recruit HAG1 to the loci of key regeneration regulators, such as WUSCHEL-RELATED HOMEOBOX 5 (WOX5), to promote their expression via histone acetylation. Our findings thus uncover an epigenetic mechanism by which prolonged cold primes plants for enhanced regeneration, highlighting how environmental cues influence developmental plasticity in plants.

plant biology↗

Wounding activates the HSFA1 transcription factors to promote cellular reprogramming in Arabidopsis

Mechanical injury is a primary trigger for cellular reprogramming during organ regeneration, yet the molecular mechanisms that link wounding to reprogramming remain poorly understood. In this study we identify the Arabidopsis HEAT SHOCK FACTOR A1 (HSFA1) class of transcription factors, being key regulators of the heat stress response, as central players in wound-induced callus formation and shoot regeneration. Loss of HSFA1 function in the hsfa1abd triple mutants severely impairs cellular reprogramming, reducing callus formation from wounded hypocotyls, as well as shoot regeneration from explants. Conversely, overexpression of the HSFA1d gain-of-function variant markedly enhances regeneration. Time-series RNA-seq and ChIP-seq analyses revealed that HSFA1s directly activate the key reprogramming regulators WOUND-INDUCED DEDIFFERENTIATION 1 (WIND1), PLETHORA 3 (PLT3) and ZINC FINGER OF ARABIDOPSIS THALIANA 6 (ZAT6). Furthermore, we demonstrate that HSFA1d activity is attenuated by SIZ1-mediated SUMOylation, linking post-translational modification to the regulation of wound responses. Our findings establish HSFA1s as an early transcriptional hub that integrates wound signals with the activation of a broad gene network that drives cellular reprogramming, thereby providing a mechanistic framework for understanding how stress-responsive transcription factors control regeneration.

plant biology↗

WIND1 controls cell fate transition through histone acetylation and deacetylation during somatic embryogenesis

Regeneration involves large-scale transcriptional reprogramming to drive cell identity transitions. These transcriptional changes are tightly coupled with chromatin remodelling but molecular mechanisms that coordinate these changes remain unclear. Here we show that WOUND INDUCED DEDIFFERENTIATION 1 (WIND1) transcription factor promotes somatic embryogenesis by repressing pre-existing cell fate and activating new cell identity programmes. WIND1 interacts with histone deacetylase HISTONE DEACETYLASE 9 (HDA9) and histone acetyltransferase complex component HOMOLOG OF YEAST ADA1 2a (ADA2a) via conserved N-terminal domain. These interactions enable WIND1 to mediate both H3K27 deacetylation and acetylation at distinct target loci, leading to repression of shoot identity genes such as AINTEGUMENTA (ANT) and activation of embryogenesis regulators including LEAFY COTYLEDON 2 (LEC2). Our findings identify WIND1 as a bifunctional chromatin regulator that integrates opposing histone acetylation dynamics to coordinate transcriptional reprogramming. This mechanism provides a molecular framework for how a transcription factor directs complex cell fate transitions during regeneration

plant biology↗