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May 10, 20260 citationsOpen Access

Single-nucleus transcriptomics resolves multiple fate dynamics between inflorescence meristem and primary stem

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SRSebastian Moreno RamirezMLMartin O. LenzJLJames Locke

Key Points

  • The study aims to investigate the transcriptional dynamics of differentiation in the inflorescence meristem of flowering plants.
  • Utilized single-nucleus RNA-sequencing to analyze transcriptional patterns in the inflorescence meristem.
  • Performed trajectory inference analysis to understand cell cycle phases and differentiation pathways.
  • Identified gene expression programs associated with various specialized cell types.
  • Uncovered the role of GH3 gene family in meristematic activity and phyllotaxis.
  • Revealed unknown transcriptional patterns influencing early cortex patterning within developing primordia.
  • Described dynamics of the S-G2-M cell cycle phases linked to differentiation toward early primordia, cortex, cambium, xylem, and phloem.

Abstract

The inflorescence meristem (IM) of flowering plants is a stem cell niche that is the source of above-ground organs such as stems and flowers. Although transcriptional profiling has elucidated some cell types within this tissue, the transcriptional dynamics of differentiation from stem cells into the diverse cell types in these organs remain unknown. We employed single-nucleus RNA-sequencing to characterize the transcriptional landscape of the IM, linking shoot stem cells to early differentiation cell types. While our analysis of previously known domains uncovered the role of GH3 gene family members in meristematic activity and phyllotaxis, we also identified unknown transcriptional patterns, including early cortex patterning within developing primordia. Trajectory inference analysis revealed the dynamics of the S-G2-M cell cycle phases, as well as gene expression programs driving differentiation toward specialized cell types such as early primordia, cortex, cambium, xylem and phloem. Collectively, our findings advance the understanding of the cell fate transcriptional dynamics shaping shoot organ development.

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Cite This Study

Ramirez et al. (2026) studied this question.

synapsesocial.com/papers/6a00217ac8f74e3340f9c560https://doi.org/10.17863/cam.130002
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