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March 15, 2026Molecular Plant0 citationsOpen Access

WIND1 controls cell fate transition through coordinately integrating histone acetylation and deacetylation-mediated transcriptional reprogramming during somatic embryogenesis

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AIAkira IwaseATArika TakebayashiFHFu-Yu Hung

Key Points

  • The research aims to uncover the role of WIND1 in transcriptional changes during somatic embryogenesis.
  • Utilized genetic and biochemical approaches to study WIND1 interactions.
  • Analyzed histone modifications at target gene loci.
  • Assessed gene expression changes related to embryogenesis and cell fate transition.
  • WIND1 promotes somatic embryogenesis by repressing specific cell fate genes.
  • It activates embryogenesis regulators like LEC2 and suppresses organ-primordium development genes.
  • WIND1 mediates histone acetylation and deacetylation at distinct gene targets.

Abstract

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 organ-primordium/procambium development 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.

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Cite This Study

Iwase et al. (2026) studied this question.

synapsesocial.com/papers/69b64c33b42794e3e660d8dchttps://doi.org/10.1016/j.molp.2026.03.005
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