Progressive oxygenation of developing leaves directs morphogenesis

Oxygen availability underpins energy production in multicellular organisms, yet internal oxygen gradients arise in both plants and animals. Plants sense these variations via the plant cysteine oxidase branch of the N-degron pathway, which regulates the stability of key transcription factors. Originally linked to metabolic control, this pathway recently emerged as a development regulator. While the shoot apical meristem was shown to be hypoxic, the oxygen dynamics of organs originating from this low-oxygen niche remain unknown. Here, we show that developing leaves form a spatiotemporal oxygen gradient that is sensed through the oxygen-sensing machinery. This pathway integrates local oxygen availability to regulate leaf morphogenesis: Early hypoxia restricts cell expansion, whereas subsequent distal-to-proximal oxygenation depletes group VII ethylene response factors enabling specialized cell-fate acquisition and controlling proliferation. Our findings reveal that oxygen acts as a positional cue in normal growth, guiding developmental trajectories. This highlights opportunities to harness oxygen gradients and sensing to direct plant form and function.

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Publication Details

Journal
Science Advances
Published
2026-08-28
DOI
https://doi.org/10.1126/sciadv.aef2430
Citations
2
Primary Topic
Plant responses to water stress
Type
article
Field-Weighted Citation Impact
9.63

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article

Progressive oxygenation of developing leaves directs morphogenesis

Daan A. Weits, Leonardo Jo, Gabriele Panicucci, Federico M. Giorgi et al.
2 citations
Science Advances
Plant responses to water stress
9.63
article

Progressive oxygenation of developing leaves directs morphogenesis

Daan A. Weits, Leonardo Jo, Gabriele Panicucci, Federico M. Giorgi, Vinay Shukla, Sara Buti, Viktoriia Voloboeva, Francesco Licausi, Laura Dalle Carbonare, Kees van Kollenburg
article en
2 citations

Abstract

Oxygen availability underpins energy production in multicellular organisms, yet internal oxygen gradients arise in both plants and animals. Plants sense these variations via the plant cysteine oxidase branch of the N-degron pathway, which regulates the stability of key transcription factors. Originally linked to metabolic control, this pathway recently emerged as a development regulator. While the shoot apical meristem was shown to be hypoxic, the oxygen dynamics of organs originating from this low-oxygen niche remain unknown. Here, we show that developing leaves form a spatiotemporal oxygen gradient that is sensed through the oxygen-sensing machinery. This pathway integrates local oxygen availability to regulate leaf morphogenesis: Early hypoxia restricts cell expansion, whereas subsequent distal-to-proximal oxygenation depletes group VII ethylene response factors enabling specialized cell-fate acquisition and controlling proliferation. Our findings reveal that oxygen acts as a positional cue in normal growth, guiding developmental trajectories. This highlights opportunities to harness oxygen gradients and sensing to direct plant form and function.

Science AdvancesVol. 12(35)
University of Nottingham (GB), Utrecht University (NL), University of Oxford (GB), University of Bologna (IT)
UK Research and Innovation, Universiteit Utrecht, Nederlandse Organisatie voor Wetenschappelijk Onderzoek, European Research Council
Openalex Percentile: Top 4%
Plant responses to water stress
9.63
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